QUESTION BOOKLET SPECIFIC PAPER - …kpsc.kar.nic.in/21.pdf · Booklet Version Code in the OMR...

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INSTRUCTIONS 1. Immediately after the commencement of the Examination, before writing the Question Booklet Version Code in the OMR sheet, you should check that this Question Booklet does NOT have any unprinted or torn or missing pages or questions etc. If so, get it replaced by a complete ‘Question Booklet’ of the available series. 2. Write and encode clearly the Register Number and Question Booklet Version Code A, B, C or D as the case may be, in the appropriate space provided for that purpose in the OMR Answer Sheet. Also ensure that candidate’s signature and Invigilator’s signature columns are properly filled in. Please note that it is candidate’s responsibility to fill in and encode these particulars and any omission/discrepancy will render the OMR Answer Sheet liable for Rejection. 3. You have to enter your Register Number in the Question Booklet in the box provided alongside. DO NOT write anything else on the Question Booklet. 4. This Question Booklet contains 100 questions. Each question contains four responses (choices/options). Select the answer which you want to mark on the Answer Sheet. In case you feel that there is more than one correct response, mark the response which you consider the most appropriate. In any case, choose ONLY ONE RESPONSE for each question. 5. All the responses should be marked ONLY on the separate OMR Answer Sheet provided and ONLY in Black or Blue Ballpoint Pen. See instructions in the OMR Answer Sheet. 6. All questions carry equal marks. Attempt all questions. 7. Sheets for rough work are appended in the Question Booklet at the end. You should not make any marking on any other part of the Question Booklet. 8. Immediately after the final bell indicating the conclusion of the examination, stop making any further markings in the Answer Sheet. Be seated till the Answer Sheets are collected and accounted for by the Invigilator. 9. Questions are printed both in English and Kannada. If any confusion arises in the Kannada Version, refer to the English Version of the questions. Please Note that in case of any confusion the English Version of the Question Booklet is final. ˜μåÔåêÅÜÝ ‘ ÜÈåëôåÄð˜μåâÿå ’åÄåÆ´μå „Ôåï½¾²ìåêê † ÇÈåÐ×ðÆ ÇÈåí Üݾ’ð²ìåê àÒÊ·æ˜μåÁμåÑ–Ó ÔåêêÁ™ÐÜÈåÑÉ°±Áμð. DO NOT OPEN THIS QUESTION BOOKLET UNTIL YOU ARE ASKED TO DO SO Time Allowed : 2 Hours Maximum Marks : 200 Version Code QUESTION BOOKLET SPECIFIC PAPER (PAPER-II) A SUBJECT CODE : 21 Serial No. : Use of Mobile Phones, Calculators and other Electronic/Communication gadgets of any kind is prohibited inside the Examination venue. Register Number 21-A

Transcript of QUESTION BOOKLET SPECIFIC PAPER - …kpsc.kar.nic.in/21.pdf · Booklet Version Code in the OMR...

Page 1: QUESTION BOOKLET SPECIFIC PAPER - …kpsc.kar.nic.in/21.pdf · Booklet Version Code in the OMR sheet, you should check that this Question Booklet does NOT have any unprinted or torn

INSTRUCTIONS

1. Immediately after the commencement of the Examination, before writing the Question

Booklet Version Code in the OMR sheet, you should check that this Question Booklet

does NOT have any unprinted or torn or missing pages or questions etc. If so, get it

replaced by a complete ‘Question Booklet’ of the available series.

2. Write and encode clearly the Register Number and Question Booklet Version Code

A, B, C or D as the case may be, in the appropriate space provided for that purpose

in the OMR Answer Sheet. Also ensure that candidate’s signature and Invigilator’s

signature columns are properly filled in. Please note that it is candidate’s

responsibility to fill in and encode these particulars and any omission/discrepancy

will render the OMR Answer Sheet liable for Rejection.

3. You have to enter your Register Number in the

Question Booklet in the box provided alongside.

DO NOT write anything else on the Question Booklet.

4. This Question Booklet contains 100 questions. Each question contains four responses

(choices/options). Select the answer which you want to mark on the Answer Sheet.

In case you feel that there is more than one correct response, mark the response which

you consider the most appropriate. In any case, choose ONLY ONE RESPONSE for each

question.

5. All the responses should be marked ONLY on the separate OMR Answer Sheet provided

and ONLY in Black or Blue Ballpoint Pen. See instructions in the OMR Answer Sheet.

6. All questions carry equal marks. Attempt all questions.

7. Sheets for rough work are appended in the Question Booklet at the end. You should not

make any marking on any other part of the Question Booklet.

8. Immediately after the final bell indicating the conclusion of the examination, stop

making any further markings in the Answer Sheet. Be seated till the Answer Sheets are

collected and accounted for by the Invigilator.

9. Questions are printed both in English and Kannada. If any confusion arises in the

Kannada Version, refer to the English Version of the questions. Please Note that in

case of any confusion the English Version of the Question Booklet is final.

µåÔåêÅÜÝ ‘ ÜÈåëôåÄð µåâÿå ’åÄåÆ µå „Ôåï½¾²ìåêê † ÇÈåÐ×ðÆ ÇÈåíúÜݾ’ð²ìåê àÒÊ·æ µåÁµåÑ–Ó ÔåêêÁ™ÐÜÈåÑÉ°±Áµð.

DO NOT OPEN THIS QUESTION BOOKLET UNTIL YOU ARE ASKED TO DO SO

Time Allowed : 2 Hours Maximum Marks : 200

Version Code

QUESTION BOOKLET

SPECIFIC PAPER

(PAPER-II)

A

SUBJECT CODE : 21 Serial No. :

Use of Mobile Phones, Calculators and other Electronic/Communicationgadgets of any kind is prohibited inside the Examination venue.

Register Number

21-A

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21 (2 – A)

1. ÇÈ æ² ìå êÜÈ åÄóÞ µ åâ ÿå ƒÄå êÇÈæ¼ å Ôå Äå êÆ † ’ð âÿ å ™ Äå Ôå íú˜µå âÿ å ƒÄå êÇÈæ¼ å ŠÒÁµ å ê ÕÔå ² ™ ÜÈå Ñ昵 å ê¼ å¾ Áµ ð .

(a) ˆÁ· µå ùÖ¤˜µå Ôå êÄå Õ’åï½ µ å ë ÇÈ æØÖ¤’å Õ’å ï½ µ å ë …² µå êÔå ƒÄå êÇÈ æ¼ å

(b) ÇÈ æØÖ¤’å Õ’å ï½ ˜µå ë ˆÁ· µ å ùÖ¤ µ å Ôå êÄå Õ’å ï½ µ å ë …² µå êÔå ƒÄå êÇÈ æ¼ å

(c) ƒ“Û é² ìå ê ÇÈå н ÊÑ’å ë ” £ð éÁµ å Äå ÇÈ å н ÊÑ’å ë ” …²µ å êÔå ƒÄå êÇÈæ¼ å

(d) ƒ“Û é² ìå ê ÇÈ å н ÊÑ’åë ” Ê昵 å êÕ’ð² ìå ê ÇÈ å н ÊÑ’å ë ” …²µ å êÔå ƒÄå êÇÈæ¼ å

2. £ð éÁµ å Äå ÇÈå н ÊÑÔå íú

(a) Ôð êéÑð Íþñ ˜µ ð ÜÈå ßå ¦Ô昙 Ôå½ ¤ÜÈ å ê¼å ¾ Áµð

(b) Ôð êéÑð Íþñ ˜µ ð ÇÈ å ÐÔå ìæº ¼å Ô昙 Ôå ½ ¤ÜÈ å ê¼ å ¾ Áµ ð

(c) Ôð êéÑð Íþñ ˜µ ð ÜÈå É ×å ¤’å ˜µ åâÿ 昙 Ôå½ ¤ÜÈå ê¼å ¾ Áµð

(d) Ôð êéÑð Íþñ ² ìå ê ²µ ð é•ÿæÒØé² ìå ê ƒ’å Û Áµð ëÒÁ™ ˜µ ð Ôå ½¤ÜÈå ê¼å ¾ Áµð

3. E Ôå ê¼ å ê¾ G Äå µ å êÕÄå ÜÈ å ÒÊÒÁ· µ å Ôå íú

(a) E = 2G (1 – γ)

(b) E = 2G (1 + γ)

(c) E = 2G (1 – 2γ)

(d) E = 2G (1 + 2γ)

4. E, G Ôå ê¼å ê¾ K ˜µå âÿ å ÜÈå ÒÊÒÁ· µåÔå íú

(a) E = 3KG

2K + G

(b) E = 9KG

3K + G

(c) E = 5KG

2K + G

(d) G = 9EK

3E + K

5. Ôå ìæ´ µ å êÏÑÜÈó „Ç· Èó ² ™ ¨´ ™ °² ìå êÄå êÆ † ’ð âÿ å ’å Ò µ å Ôå íú˜µå âÿ å ƒÄå êÇÈ æ¼å Áµ å Ò¼ð ÕÔå ² ™ ÜÈå Ñ昵 å ê¼ å¾ Áµ ð .

(a) £ð éÁµ å Äå ÇÈ å н ÊÑ’åë ” £ð éÁµ å Äå Õ’å ï½ µ å ë …² µå êÔå ƒÄå êÇÈ æ¼ å

(b) £ð éÁµ å Äå Õ’å ï½ ˜µ åë ÔæÑêÏÔð ê°Ð’ó Õ’å ï½ µ å ë …² µå êÔå ƒÄå êÇÈ æ¼ å

(c) ÜÈ å ßå ¦ ÇÈ å н ÊÑ’åë ” £ð éÁµ å Äå Õ’å ï½ µ å ë …² µå êÔå ƒÄå êÇÈ æ¼ å

(d) ÜÈ å ßå ¦ ÇÈ å н ÊÑ’å ë ” ² µð é• – é² ìå ê Õ’å ï½ µ å ë …² µå êÔå ƒÄå êÇÈ æ¼ å

6. ÇÈ å ÐÁ· µ æÄå ÜÈ å Ôå ê¼å јµ åâ ÿð ÒÁµå ² µð (a) µåå²™ÚÈå³ £ð éÁµåÄå ÇÈå нÊÑÁµå ÜÈå Ôå ê¼åÑ µåâÿåê (b) µåå²™ÚÈå³ ÜÈå ßå ¦ ÇÈåнÊÑÁµå ÜÈåÔå ê¼åÑ µåâÿåê (c) ’åÅÚÈå³ £ð éÁµåÄå ÇÈå нÊÑÁµå ÜÈåÔå ê¼åÑ µåâÿåê (d) ×åëÄå Ï £ðéÁµå Äå ÇÈåнÊÑÁµå ÜÈåÔå ê¼åÑ µåâÿåê

7. ÇÈ å ÐÁ· µ æÄå ÇÈå н Êјµåâ ÿ å Äå êÆ † ² ™ é½ Ôå Ï’å ¾ ÇÈå ™ ÜÈå Ñ昵 å ê¼ å ¾ Áµ ð .

(a) σx + σy

2 ±

(σx + σy)2 – 4τxy

2

2

(b) σx + σy

2 ±

(σx – σy)2 + 4τxy

2

2

(c) σx – σy

2 ±

(σx + σy)2 + 4τxy

2

2

(d) σx – σy

2 ±

(σx + σy)2 – 4τxy

2

2

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21 (3 – A)

1. Poisson’s ratio is defined as the

ratio of

(a) Longitudinal strain to

Lateral strain

(b) Lateral strain to

Longitudinal strain

(c) Axial stress to Shear stress

(d) Axial stress to Bending

stress

2. Shear stress acts

(a) normal to the surface

(b) inclined to the surface

(c) tangential to the surface

(d) along the longitudinal axis

3. The relationship between E and

G is

(a) E = 2G (1 – γ)

(b) E = 2G (1 + γ)

(c) E = 2G (1 – 2γ)

(d) E = 2G (1 + 2γ)

4. The relationship of E, G and K is

(a) E = 3KG

2K + G

(b) E = 9KG

3K + G

(c) E = 5KG

2K + G

(d) G = 9EK

3E + K

5. Modulus of rigidity is defined as

the ratio of

(a) Shear stress to Shear strain

(b) Shear strain to Volumetric

strain

(c) Normal stress to Shear strain

(d) Normal stress to Linear strain

6. Principal planes are planes of

(a) Maximum shear stress

(b) Maximum normal stress

(c) Minimum shear stress

(d) Zero shear stress

7. Principal stresses are given as

(a) σx + σy

2 ±

(σx + σy)2 – 4τxy

2

2

(b) σx + σy

2 ±

(σx – σy)2 + 4τxy

2

2

(c) σx – σy

2 ±

(σx + σy)2 + 4τxy

2

2

(d) σx – σy

2 ±

(σx + σy)2 – 4τxy

2

2

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21 (4 – A)

8. l ÇÈ æ×å Ö¤Õ² µå êÔå §ÒÁµ å ê ÜÈ å Ôå êÊ· å ê¨é² ìå ê ½ Ð’ðëéÄå Áµå ÜÈð Ò¯æÐÎê´ µó, ² ìå ìæÔå íúÁµ ð é ÇÈ æ×å Ö¤Á™ ÒÁµ å ’ðâ ÿå ’å Ò´ µå ƒÒ¼ å² µå Áµ å Ñ– Ó ( ÑÒÊæ¼ å Í’å ) Ô昙 Äð Ñð Üݲ µå ê¼ å ¾ Áµ ð .

(a) 2l

3

(b) 2 3

l

(c) l

2 3

(d) 3

2 l

9. §ÒÁµ å ê I - £ð éÁµ å ’ð ”, £ð éÁµ å Äå ÇÈå н ÊÑÁµå Ôå ϼ æÏÜÈ å Ôå íú ’ð âÿ å ’å Ò µ å Ò½ ²µ å ê¼ å ¾Áµ ð .

(a)

(b)

(c)

(d)

10. Ê昵 å êÕ’ð ² ìå ê ÇÈ å н ÊÑÔå íú † ’ð âÿ å ˜™ Äå Áµå ’ð ” ÜÈ å Ôå ìæÄå êÇÈ æ¼ å ’å Ô昙 ²µ å ê¼ å ¾ Áµ ð .

(a) ¦´ µ å¼ å ÖÁµ å Ê· æÐÔå êϼ𠘵 ð

(b) ¼ å ®ÜÈå À ƒ’å Û Á™ ÒÁµ å …²µ å êÔå Áµ åë² µå ’ð ”

(c) Ôå ìæ´ µ å êÏÑÜÈó „Ç· Èó ŠÑæÜÝ ±ÜÝ °˜µ ð

(d) ÜÈ ð ’åÛ Äó Ôå ìæ´ µ å êÏÑÜÈ ó ˜µð

11. T ‹’å ’ð éÒÁ™ Ðé’å ï¼ å Ê· æ²µ åÔå Äå êÆ ÅÔå ¤àÜÈå ê ½ ¾ ²µ å êÔå §ÒÁµ å ê ÜÈ å ²µ åâ ÿå ÔæÁµ å ¼ð ëÑð² ìå ê Ôå êÁ· µ åùÏÁµ å ßå² ™ ÕÄå Ñ– Ó …â–¦ÿ æ² µ å ê ß昵 åë ƒÇÈ å ÜÈå ² µå ¸ Ôå íú † ’ð âÿ å ’å Ò µ å Ò½ ² µå ê¼å ¾ Áµ ð .

(a) zero, zero

(b) zero, ˜µå ²™ ÚÈ å³

(c) ˜µ å ²™ ÚÈ å³, zero

(d) ’å ÅÚÈ å³, ˜µ å² ™ ÚÈå ³

12. Ê· å ùÐÔå ê¸ ÜÈ ðâ ÿ ð¼ å Áµ å Áµ å ï´ ·µå ¼ ð² ìå êÄå êÆ † ’ð âÿ å ’å Ò µ å Ò¼ ð ÕÔå² ™ ÜÈå ê¼ æ¾ ² µð .

(a) ¯æ’ó¤ Ôå ê¼ å ê¾ ‡Áµå  Áµå “в ìå ìæÇ· È å Ñ ( ÇÈ æÐ µ å ’ó±)

(b) ¦´ µ å¼ å ÖÁµ å Áµå êÐÕé² ìå ê Ê· åùÐÔå ê¸ ¼ð Ôå ê¼å ê¾ Ôå ìæ´ µ å êÏÑÜÈó „Ç· È ó ² ™ ´ ™ °² ìå ê “Ð² ìå ìæÇ· Èå Ñ

(c) ¦´ µ å¼ å ÖÁµ å Áµå êÐÕé² ìå ê Ê· åùÐÔå ê¸ ¼ð Ôå ê¼å ê¾ Ôå ìæ´ µ å êÏÑÜÈó „Ç· È ó ² ™ ´ ™ °² ìå ê Ôð ë¼å ¾

(d) ¦´ µ å¼ å ÖÁµ å Áµå êÐÕé² ìå ê Ê· åùÐÔå ê¸ ¼ð Ôå ê¼å ê¾ ½ ² ™ôå êÕ’ð² ìå ê ’ð ëéÄå Áµ å “Ð²ìå ìæÇ· È å Ñ

13. ÜÝ Ôð êÒ¯ó ¼ å² ìå ìæ²™ ’ð² ìå êÑ– Ó , ¨ÇÈ å Þ Ôå ìó ƒÄå êÆ ÜÈ ð é² ™ ÜÈ å êÔå ‡Áµ ð é×å Ôð éÄð ÒÁµ å² µ ð ,

(a) ’æÒ“Ðé°Äå ÊÑÔå Äå êÆ ßð ¡¢ÜÈ åêÔå íúÁµ å ê

(b) ÜÝ Ôð êÒ°Äå ʸ » Ôå Äå êÆ Ôå ìæÇÈ å ¤ ™ ÜÈå êÔå íúÁµ å ê

(c) ÜÝ Ôð êÒ®ê ’å êÁµå ê² ™’ð ëâ ÿå êäÔå ’æÑÔå Äå êÆ ßð ëÒÁµ æº ÜÈ å êÔå íúÁµå ê

(d) ¦ÑÜÈ å Ò² ìðëé¦Äð ² ìå ê ×æ• Ôå Äå êÆ ’å ™ Ôð ê Ôå ìæ´ µå êÔå íúÁµ å ê

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21 (5 – A)

8. The centroid of an equilateral

triangle of side l lies at the

following distance (perpendicular)

from any side :

(a) 2l

3

(b) 2 3

l

(c) l

2 3

(d) 3

2 l

9. Shear stress variation for an

I-section is

(a)

(b)

(c)

(d)

10. The bending stress is proportional

to

(a) moment of Inertia

(b) distance from neutral axis

(c) modulus of elasticity

(d) section modulus

11. The slope and deflection at mid

span of a simple beam carrying

concentrated load (at mid span) is

(a) zero, zero

(b) zero, maximum

(c) maximum, zero

(d) minimum, maximum

12. Torsional rigidity is defined as

the

(a) product of torque and length

(b) product of polar moment of

inertia and modulus of

rigidity

(c) sum of polar moment of

inertia and modulus of

rigidity

(d) product of polar moment of

inertia and angle of twist

13. During the manufacture of

cement, gypsum is added to

(a) increase the strength of

concrete

(b) modify colour of cement

(c) adjust settling time of cement

(d) reduce heat of hydration

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21 (6 – A)

14. ˜µ æÏÇÈ ó ˜µð Ðé´ µð µ ó ƒ˜™Ð˜µ ð é¯ó ŠÒÁµ å ² µð ,

(a) ƒ˜™ Иµ ð é®ê˜µå âÿ å §ÒÁµå ê ƒÁ¿· µåÔæ ßð ¡¢Ä å Ôå êÁ· µ åùÏÒ¼ å² µå „ÒØ’å ˜µ åâÿ å ê …ÑÓ Á™ ² µå êÔå íúÁµ å ê

(b) ƒ˜™ Иµ ð é®ê˜µå âÿ å ê ˜µ æ¼ å ÐÁµå „ÒØ’å Áµ å ÜÈ å Ò’å ꡼ å Õê½ ² ìå êÑ– Ó §â ÿå ÇÈ å µ å êÔå íúÁµå ê

(c) ÜÈ å ë’å Û ûÍ ß昵 åë ÜÈ åë À Ñ ƒ˜™ Иµ ð é®ê˜µ åâ ÿå ÕÕÁ· µ å „ÒØ’å µ åâ ÿå ê

(d) ƒ˜™ Иµ ð é®ê˜µå âÿ å ê §ÒÁµ ð é ² ™ é½ ² ìå ê ˜µ æ¼ å ÐÁµ å Ñ–Ó ²µ å êÔå íúÁµ å ê

15. Ê– Ó é´ ™ Ò µ ó „Ç·È ó ’æÒ“Ðé¯ó ŠÒÁµ å ² µð ,

(a) ÜÈ å ë’å Û ûÍ’å ¸ µ åâ ÿå ê ¼ åâ ÿåÊ· 昵 å Áµå Ñ– Ó ’å êÁµ å ê² ™ ’ð ëâ ÿå êäÔå íúÁµ å ê

(b) Áµ å ÇÈ åÉ §² µå ®ê ’å ¸ µ åâ ÿ å ê ÇÈ å мð Ïé“ÜÈ å ÑÉ µ å êÔå íúÁµå ê

(c) ÜÝ Ôð êÒ°Äå ÇÈ ð éÜÈå ê± ’æÒ“Ðé°Äå Ôð êéÑð Íþ ñ Ê· 昵 å ’ð ” ‹² µ å êÔå íúÁµ å ê

(d) ÜÈ å ë’å Û ûÍÔæÁµå ’å ˜µå âÿ å ê ÇÈ å м ð Ïé’å ÔæÁµå ÇÈ æ’ð ¯ó˜µå âÿ å Ñ–Ó ÜÈå Ò˜µ å Ðßå ˜µð ëâ ÿ åêäÔå íúÁµ å ê

16. ÜÈ å êÔå êÍÄð „Á· µ æ² ™¼ å ÔæÁµ å ß昵 å ë §ÒÁµ ð é „˜™ ÇÈ å íúÄå ʤÑÄå µ ðëâ– ÜÝ Áµå „² µ óÜÝ ÜÝ ¼ ðëÑð ² ìå êÑ– Ó , ÕÄæÏÜÈ å ˜µ ðëâ– ÜÝ Áµå ÇÈ å íúÄå ʤÑÄå Ôå Äå êÆ ² ìå ìæÔå ’å µ ð … µ å Ñ昵 å ê¼ å¾ Áµð ?

(a) ÜÈ ð âÿ ð¼ å …² µ å êÔå ’å µ ð

(b) ÜÈ å Ò’ðëéôå Äå …² µå êÔå ’å µð

(c) ÇÈ æ×å Ö¤ Ôå êê• Áµå Ñ–Ó

(d) ÜÈ ð âÿ ð¼ å ß昵 åë ÜÈå Ò’ðëéôåÄå …² µå êÔå Š² µ å µ åë ’å µð

17. ÇÈ å ²™ ¹æÕêéßå ² µ å Ôå íú 3.6 m Ôå ê¼ å ê¾ 150 mm Áµ å ÇÈ åÉ …² µ å êÔå §Äó Ôð é ôå ÇÈ å É ™² ìå êÄå êÆ ÜÈ å êÔå ìæ² µå ê 10 kN /m2. Äå ÚÈ å ê± Ç· È æÏ’å ±² µó¶ Ñð ñ Ôó Ñð ëé´ µó ß昵å ë ´ µ ð µóÑð ëé´ µ ó µ ð §â ÿ å ÇÈ å ™ ÜÈå Ñ昙 Áµ ð . …Áµ å ²µ å ÕÄæÏÜÈ å Ê昵 å êÕ’ð ² ìå ê Ê· æÐÔå êϼ ð ß昵 å ë £ð éÁµå Äå ÊÑ ŠÚÈ å ê± ?

(a) 16.2 kN-m & 18 kN

(b) 16.2 kN-m & 17 kN

(c) 15.2 kN-m & 18 kN-m

(d) 18 kN-m & 16.2 kN

18. §ÒÁµ å ê ’æÒ¦êϘµ ð é¯ó ¼ ðëÑð² ìå êÑ–Ó Äð ñ ¦¼ð ëÑð² ìå êÑ–Ó ² µå êÔå ÜÝ À² µå „Á· µ æ² µ å Ôå Äå êÆ _____ ŠÒÁµ å ê Ê· æÕÜÈ å Ñ昵 å ê¼ å ¾ Áµ ð .

(a) ÜÝ À ²µ å µ ð ëÒ´ µå „Á· µ æ²µ å

(b) ² µ ðëéѲ µó „Á· µ æ²µ å

(c) ’å ë´ ™ ’ð Ôå ìæ´ ™ Áµ å „Á·µ æ² µå ( Hi nged suppor t )

(d) Ôå êê’å ¾ ¼ å êÁ™

19. §ÒÁµ å ê ôå ÇÈ åÉ ™ ² ìå êÑ– Ó ’å ÅÚÈ å ³ ÇÈ å íúÄå ʤÑÄå Ôå íú ( HY SD ’å ÒÊ– ˜µå âÿ å ê) §®ê± ƒ´ µ å¶ £ð éÁµ å ’ð Û é¼ å ÐÁµå _______ „˜™ ² µ å ê¼ å ¾ Áµ ð.

(a) 0.15%

(b) 0.21%

(c) 0.51%

(d) 0.12%

20. §ÒÁµ å ê ôå Áµå ê² µ æ’æ²µ å Áµ å , „² ìå ê¼ æ’æ²µ å Áµå Ôå ê¼ å ê¾ Ôå ¼ å ê¤Ñæ’æ² µå Áµ å ÜÈ å À ÒÊ· å Áµ å Ñ–Ó ²µ å êÔå ’å ÅÚÈ å³ ’å ÒÊ µ åâ ÿå ÜÈ å Ò• ÿð Ï

(a) 4, 4, 8

(b) 4, 6, 8

(c) 4, 6, 6

(d) 4, 8, 6

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21 (7 – A)

14. Gap graded aggregate is

(a) one or more intermediate

fraction of aggregates are

absent

(b) aggregates fall within a

narrow limit of size fraction

(c) different fractions of fine

and coarse aggregates

(d) aggregates are of uniform

size

15. Bleeding of concrete is

(a) finer particles settle down at

the bottom

(b) coarser particles gets

separated

(c) cement paste raises to

surface of concrete

(d) finer particles collect in

isolated pockets

16. The designed reinforcement in a

simply supported singly

reinforced RCC beam is placed on

(a) Tension side

(b) Compression side

(c) Lateral face

(d) both on tension and

compression side

17. One way slab of effective span

3.6 m and 150 mm thick.

subjected to factored live load

and dead load of about 10 kN/m2.

The designed bending moment

and shear force are

(a) 16.2 kN-m & 18 kN

(b) 16.2 kN-m & 17 kN

(c) 15.2 kN-m & 18 kN-m

(d) 18 kN-m & 16.2 kN

18. The fixed support in real beam is

assumed as ______ in the

conjugate beam.

(a) Fixed support

(b) Roller support

(c) Hinged support

(d) Free end

19. Minimum reinforcement (HYSD

bars) in a slab is _______ of total

cross-sectional area.

(a) 0.15%

(b) 0.21%

(c) 0.51%

(d) 0.12%

20. Minimum number of bars in

square, rectangular and circular

columns are

(a) 4, 4, 8

(b) 4, 6, 8

(c) 4, 6, 6

(d) 4, 8, 6

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21 (8 – A)

21. l ex/ bx Ôå ê¼ å ê¾ ley/ by Äå ¼ ðâ ÿ å ê µ æ¼å ÐÁµ å ƒÄå êÇÈ æ¼å Ôå íú † ’ð â ÿå ˜™ Äå Ò½ Áµ æ µ å , ƒÒ¼å ßå „² ìå ê¼ æ’æ²µ å Áµå ÜÈå Ò’ðëéôå ’å ƒÒ µ å ÔåÄå êÆ I S : 456 - 2000 ÜÈ å Ò༠ð² ìå êê ˜™ µ å¶ Ô昙 Áµ ð ŠÒÁµ å ê ÜÈ åÉ ÚÈ å ±ÇÈ å ™ ÜÈå ê¼å ¾ Áµð .

(a) <12, <12

(b) <12, >12

(c) >12, <12

(d) >12, >12

22. §ÒÁµ å ê ÇÝ Äó ¦ÿ æÎêÒ ð µ ó ôò ’å °±Äå Ñ– Ó BD ƒÒ˜µ å Áµå Ñ– Ó² µå êÔå ÊÑ ŠÚÈ å ê± ?

(a) 4 t

(b) 0 t

(c) 4/3 t

(d) 2 t

23. Ôå êë²µ å ê ’åë ™ ’ð µ åâ ÿ å ÇÈ å ² µå Ôå Ѳ ìå êÁµ å ’å Ôå ìæÅÄå Ôð êéÑ–² µ å êÔå , ¼ å Äå Æ ßå ² µ å ÕÄæÁµå ÏÒ¼å W/ ‹’å Ôå ìæÄå ‡Áµ å  Áµ å U DL ˜µ ð §â ÿå ÇÈ å °±²µ å êÔå §ÒÁµ å ê ßå ² µå ÕÄå 1/4 Ê· 昵 å Áµå Ñ– Ó , Š µ å „Á· µ æ² µå Á™ ÒÁµå Ê昵 å êÕ’ð² ìå ê Ê· æÐÔå êϼð ŠÚÈ å ê± ?

(a) wl2/4

(b) wl2/2

(c) 0

(d) wl/2

24. §ÒÁµ å ê Ôå ¼å ê¤Ñæ’æ² µå £ð éÁµ åÁµ å x- x ƒ’åÛ Áµ å Ñ– Ó ƒÁµ å ²µ å CG Ôå êëÑ’å ÜÈ ð ’å ÛÄó Ôå ìæ µ å êÏÑÜÈ ó ŠÚÈ å ê± ?

(a) πd3

2

(b) πd3

16

(c) πd3

192

(d) πd3

32

25. I S:800-2007 ² µå ÇÈå Ð’æ² µ å , ÜÈ ðâ ÿð ¼å Õ² µå êÔå Ê· 昵 å ˜µå âÿ å Ñ–Ó Êð ëéÑó± Äå ² µå ÒÁ· µ å ùÐ µ åâ ÿå Äå µå êÕÄå ’å ÅÚÈ å³ ß昵 åë µ å² ™ÚÈ å ³ ƒÒ¼ å² µå Ôå íú ’ð âÿ å ’å Ò µ å Ò½ ² µå Êð é’å ê. …Ñ– Ó

d ²µ å ÒÁ·µ å ùÐÁµ å ÔæÏÜÈ å Ôå ê¼å ê¾ t ʷ昵 å Áµ å ’å ÅÚÈå ³ Áµå ÇÈ åÉ

(a) 2.5 d & 2.5 t

(b) 2.5 t & 16 t

(c) 2.5 d & 16 t

(d) 16 d & 2.5 t

26. §ÒÁµ å ê18 ÕêÕê Áµ å ÇÈå ÉÁµ å Ç·È å Ñ’å Ôå Äå êÆ 16 ÕêÕê Áµ å ÇÈ å É Áµ å Ç·È å Ñ’å’ð” 200 ÕêÕêé ‡Áµ å  Áµå Ê¯ó ˜µ å µ å êÊðÜÈ å ê µ ð ÎêÒÁµå ’å ë´ ™ ÜÈå Ñ昙 Áµð . §ÒÁµ å ê Ôðéâ ÿ ð µ å ÊÑó V-Ê¯ó ˜µ å µ å ê Êð ÜÈå ê˜µð ² ìå êÄå êÆ Êâ ÿ å ÜÝ Áµ å² µð , Ôå ê¼ å ê¾ Fe 410 Áµ å ¦ÿ𠤲 ìå ê ‡’å ”ÄåêÆ Êâ ÿ å ÜÝ Áµå ² µð † ’å ë´ ™ ’ð ² ìå ê ÊÑ ŠÚÝ ±² µå ÊßåêÁµ å ê ŠÒÊêÁµ å Äå êÆ Å¸ ¤ÎêÜÝ .

(a) 605.987 kN

(b) 695.98 kN

(c) 650.8 kN

(d) 600.5 kN

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21 (9 – A)

21. IS : 456 – 2000 code clarifies a

rectangular compression member

as short when the slenderness

ratio of lex/bx and ley/by are

(a) <12, <12

(b) <12, >12

(c) >12, <12

(d) >12, >12

22. In a pin-jointed frame the force in

the member BD is

(a) 4 t

(b) 0 t

(c) 4/3 t

(d) 2 t

23. Bending moment at 1/4th of the

span from left support on a three

hinged parabolic arch subjected

to udl of w/unit length throughout

its span is

(a) wl2/4

(b) wl2/2

(c) 0

(d) wl/2

24. The section modulus of circular

section about x-x axis through its

CG is

(a) πd3

2

(b) πd3

16

(c) πd3

192

(d) πd3

32

25. According to IS:800-2007 the

minimum & maximum pitch of

bolt holes in the tension member

are,

where d–dia of the hole and

t–minimum thickness of the

member

(a) 2.5 d & 2.5 t

(b) 2.5 t & 16 t

(c) 2.5 d & 16 t

(d) 16 d & 2.5 t

26. A 18 mm thick plate is joined to a

16 mm plate by 200 mm long butt

weld. Determine the strength of

joint if a double V-butt weld is

used, if Fe 410 grade steel is used :

(a) 605.987 kN

(b) 695.98 kN

(c) 650.8 kN

(d) 600.5 kN

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21 (10 – A)

27. Š² µ å µ åë ¼ å êÁ™ µ åâ ÿå Äå êÆ ÇÝÄó Ôå ìæ ™ ² µå êÔå ,

˜µ ð ñ² µð é×å ÅÆÄå ’å ÅÚÈå ³ ½ ЦÏÔå íú 51.8 ÕêÕêé

…² µ å êÔå 3m ‡Áµ å  Áµ å §ÒÁµ å ê ÜÈå À ÒÊ·å Áµ å

¼ ðâ ÿ å êÕ’ð ² ìå ê ƒÄå êÇÈ æ¼ å Ôå íú

(a) 60.92

(b) 56.92

(c) 58.92

(d) 57.92

28. ÇÝ Ð- ÜÈð ±øÜÈ ó¶ ’æÒ“Ðé¯ó ŠÒÁµ å ²µ ð,

(a) Ñð ëé´ ™ Ò µ ó µ ð Ôð ëÁµ å Ñð é

’æÒ“Ðé°Äå Ñ– Ó ÜÈåÒ’ð ëéôå’å

ÇÈ å н ÊÑÔå Äå êÆ ÇÈ ð Ðé²™ Üݲ µ å êÔå Ò¼ å ßå

’æÒ“Ðé¯ó.

(b) Ñð ëé´ ™ Ò µ ó µ ð ÔðëÁµå Ñð é ‡“”Äå Ñ– Ó

ÜÈ å Ò’ðëéôå ’å ÇÈå нÊÑÔå Äå êÆ

ÇÈ ð Ðé² ™ ÜÝ ²µ å êÔå Ò¼ å ßå ’æÒ“Ðé¯ó.

(c) Ñð ëé´ ™ Ò µ ó µ ð Ôð ëÁµ å Ñð é

’æÒ“Ðé°Äå Ñ– Ó Á· µ æ²µ å ÇÈå нÊÑÔå Äå êÆ

ÇÈ ð Ðé² ™ ÜÝ ²µ å êÔå Ò¼ å ßå ’æÒ“Ðé¯ó.

(d) ’æÒ“Ðé¯ó Ôå ê¼å ê¾ ‡“”Äå Ñ–Ó

‹’å ’æÑ’ð ” Á· µ æ² µ å ÇÈå нÊÑÔå Äå êÆ

ÇÈ ð Ðé² ™ ÜÝ ²µ å êÔå Ò¼ å ßå ’æÒ“Ðé¯ó.

29. (D = ’ð ëâÿ å Ôð² ìå ê ÔæÏÜÈ å , f = ’ð ëâ ÿ å Ôð ² ìå ê ›å ÚÈ å ¤¸ ÜÈ å ßæÒ’å ( ’ðëŠÇ· ÝÜÝ ² ìå êÒ¯ó „Ç· Èó Ç· Ý ùÐ’å Û Äó Ôå ê¼ å ê¾ l = ’ðëâÿ å Ôð² ìå ê ‡Áµå  „˜™ Áµ æ ˜µå )

˜µ å ²™ ÚÈ å ± ÕÁµå êϼ ó ÇÈå ÐÜÈå ² µå ¸ ’攘™ ÜÈ å ëÜÈå ê’å Áµ å ( Äð ëé² µå ªêÑó) (d) ÔæÞ ÜÈå ______

(a) d =

D5

8 f l

1/2

(b) d =

D5

8 f l

1/3

(c) d =

D5

8 f l

1/4

(d) d =

D5

8 f l

1/5

30. Š¼ å ¾² µ å Áµ å Ôå² µð ˜µ ð (H1) Áµ å ÐÔå Ôå Äå êÆ

§â ÿ å µ ðëÒ ™ ² µå êÔå ‹’å ²µ å ëÇÈ å ƒ´ µå ¶ - Ôð éÁ· µå Äå ’ð Û é¼ å ÐÁµå ( ² ìå êëÅÇ·È å Ôå ìó¤ ’æÐÜÈ ó- ÜÈ ð ’å Û Äå Ñó ‹² ™ ² ìå ìæ) (A) §ÒÁµ å ê ÜÈ åÒÇÈ å íú ( ¯æÏÒ’ó) ƒÁµ å ²µ å ¼ åâ ÿå Áµ å Ñ– Ó ƒ´ µ å¶ - £ð éÁµ åÄå Áµ å ² µ å ÒÁ· µå ùÐÔå Äå êÆ (a) ßðëÒÁ™ Áµð . ÜÈ å ÒÇÈåÄå êÆ ( ¯æÏÒ’ó) ÜÈ å ÒÇÈå î¸ ¤Ô昙 •ÿ æÑ– Ôå ìæ´ µ å Ñê ƒ˜µ å¼ å ÏÕ²µ å êÔå ÜÈ å Ôå ê² ìå êÔð ÚÈå ê± ?

(a) 2 A H1

Cd × a 2g

(b) 2 AH1

Cd × a 2g

(c) 2 AH1

3/2

Cd × a 2g

(d) 2 AH1

2

Cd × a 2g

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21 (11 – A)

27. The slenderness ratio of column

of length 3 m, both ends pinned,

having minimum radius of

gyration 51.8 mm is

(a) 60.92

(b) 56.92

(c) 58.92

(d) 57.92

28. Pre-stressed concrete means

(a) Compressive stress induced

in concrete before loading

(b) Compressive stress induced

in steel before loading

(c) Tensile stress induced in

concrete before loading

(d) Tensile stress induced in

concrete and steel

simultaneously

29. The diameter of the nozzle (d) for

maximum transmission of power

is given by

(where D = Diameter of pipe,

f = Darcy’s coefficient of friction

for pipe, and l = Length of pipe)

(a) d =

D5

8 f l

1/2

(b) d =

D5

8 f l

1/3

(c) d =

D5

8 f l

1/4

(d) d =

D5

8 f l

1/5

30. A tank of uniform cross-sectional

area (A) containing liquid upto

height (H1) has an orifice of

cross-sectional area (a) at its

bottom. The time required to

empty the tank completely will

be

(a) 2 A H1

Cd × a 2g

(b) 2 AH1

Cd × a 2g

(c) 2 AH1

3/2

Cd × a 2g

(d) 2 AH1

2

Cd × a 2g

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21 (12 – A)

31. ‡˜™ ’æ² ìå ê¤Ψ …Áµ å ²µ å Ñ’åÛ ¸ Ôð éÄå ê ?

(a) Ψ …Áµ å ê ² ìå ìæÔå íúÁµ ð é ‡˜™ ² µ ð é•ÿ ð ² ìå ê Ôð êéÑð ŠÑÓ ’å µ ð² ìå êê ÜÝÀ ² µå Ô昙 ² µå ê¼å ¾ Áµð .

(b) Ų µ å Ò¼ å² µå ßå² ™² ìå êêՒ𠘵 昙 ( Ç· Èå ùîúÓ Îê´ µ ó) ² ìå ìæÔå íúÁµð é ÇÈ å Á¿ · µå Áµ å ÜÈ å ê¼å ¾ Ñ–Äå ßå² ™ Ôå íú ×åëÄå ÏÔ昙² µ å ê¼ å¾ Áµ ð .

(c) Ôå êÁ· µ åùÏÜÈ åÀ Á™ “”Äå Ñ– Ó Äå („Ê– ¤®Ð² ™

´ µ ðñ ²µ ð ’å Û Äó) Áµå ë² µå Áµ ðëÒÁ™ ˜µð Ψ …Áµ å ² µå ÊÁµ å ÑæÔå ¹ð ð ÇÈ åÐÔå ìæ¸ Ôå íú, ÜÈ æÔå ìæÄå ÏÔ昙 „ Á™’ð ”Äð µ ð² ìå ê Ôð 阵 å Áµå ( Ôð ÑæÜÝ °) ›å ®’å ’ð ” ƒÄå ꘵ å ê¸ Ô昙 ²µ å ê¼ å ¾ Áµ ð .

(d) Ôð êéÑ– Äå ŠÑÓ Ôå î.

32. Êð Ó üñ’Äå (Bligh) ¨Äå ꘵åê¹ð ÜÝ Áµ æ à Ҽ å Ôå íú ( ÜÝ éÇÈ ð é¦ÿó Á¿· ™² ìå ê²™ ) † ’ð âÿ å ™ Äå Ò¼ð ˆàÜÈ å ê¼ å¾ Áµ ð .

(a) ƒ´ µ å¶ Ôå ê¼å ê¾ ‡Áµå  ¦² µå꘵ å êÕ’ð µ ð ( ßæ² ™ ¦Ò®Ñó ƒÒ´ µó Ôå °¤’å Ñó “ÐéÇÈ ó) „’åå ÚÈ å¤¸ ÊÑ’ð ” ( Ôð é² ìð ê±é¦ÿ ó) ÜÈå Ôå êÔ昙² µ å ê¼ å¾Áµ ð .

(b) ‡Áµ å  ¦²µ å ê µ å êÕ’ð ™ Ò¼å ƒ´ µå ¶ ¦² µ å ꘵å êÕ’ð² ìð ê µ ð „’å ÚÈå ¤¸ ÊÑÔå íú ßð ô梘™ ² µ å ê¼ å¾ Áµð .

(c) ‡Áµ å  ¦²µ å ê µ å êÕ’ð ™ Ò¼å ƒ´ µå ¶ ¦² µ å ꘵å êÕ’ð² ìð ê µ ð „’å ÚÈå ¤¸ ÊÑÔå íú ’å ™ Ôð ê …² µå ê¼å ¾ Áµð .

(d) ÑæÜÈ ó „Ç· Èó ßð µó ÜÈ ð ñ Äó Ôå ’å ÐÔå Äå êÆ ƒÄå êå ÜÈå ²™ ÜÈ å ê¼ å¾ Áµ ð .

33. Ôå êº » Äå ’ðÛ é¼å Ð ÜÈ æÔå êÁ¿ · µå ùϤ (Ç· Ý éÑó¶ ’ð ÇÈ æÜÝ °)

25%, ƒÁµå ²µ å ×æ×å Ö¼å Êæ´ µ å êÔå Ê– ÒÁµ å ê

( ÕÑ– ±Ò˜µó ÇÈ æÎêÒ¯ó) 15% Ôå ê¼ å ê¾

ÅÁ™ ¤ÚÈ å ± ×å êÚÈ ð ” Œ’å ϼ ð ¼ åë’å ( ´ µð Ðûñ ² ìå êëůó

Ôð é² ìå ìó±) 1.5. Êðâ ÿð ² ìå ê Êð é² µ å ê Ôå Ѳ ìå êÁµ å

„â ÿ å Ôå íú 80 ÜÈ ð Ò.Õë. „˜™ Áµ å ² µð , Ôå êº » Äå

×ð é• ²µ å ¹æ ÜÈ æÔå êÁ¿· µå ùϤ ŠÚÈ å ê± ?

(a) 8 ÜÈ ð Ò.Õêé.

(b) 10 ÜÈ ð Ò.Õêé.

(c) 12 ÜÈ ð Ò.Õêé.

(d) 14 ÜÈ ð Ò.Õêé.

34. §ÒÁµ å ê Äå Á™ ² ìå êÄå êÆ _______ ŠÒÁµ å ê

’å ² µð ² ìå êÑ昵 å ê¼ å ¾ Áµ ð .

(a) ƒÁµ å ê ¼å Äå Æ ÇÈ æ¼å ÐÔå Äå êÆ ’ðÑÔå íú …â –

¦ÿ æ² µ å ꘵åâ ÿ å Ñ– Ó ÅÕê¤ÜÝ ’ðëÒ´ µå ²µ ð

ˆÁ· µå ùÖ¤Ôå êê• – ÕÁ· µå Áµð  ÒÁµå ê

(b) ƒÁµ å ê ¼å Äå Æ ½ éÔå ÐÔå Äå êÆ ’ðÑÔå íú …â –

¦ÿ æ² µ å ꘵åâ ÿ å Ñ– Ó £ð éÁ™ ÜÝ Áµ å² µð

ƒÁ· µ ðëéÔå êê• – ÕÁ· µ å Áµ ð ÒÁµ å ê

(c) ƒÁµ å ê ƒÒ’å ê µ ðëÒ½² µå êÕÄå Ñ– Ó ßå ² ™ Ôå²µ ð

Ôå ’å Иµå ½ ÕÁ· µ å Áµ ð  ÒÁµ å ê

(d) Ôð êéÑ– Äå ŠÑÓ Ôå î

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21 (13 – A)

31. The property of steam function Ψ is :

(a) Ψ is constant everywhere on

any stream line.

(b) The flow around any path in

the fluid is zero for

continuous flow.

(c) The rate of change of Ψ

with distance in an arbitrary

direction is proportional to

the component of velocity

normal to that direction.

(d) All the above

32. Bligh’s theory of seepage assumes

(a) equal weightage to the

horizontal and vertical creep

(b) more weightage to

horizontal creep than

vertical creep

(c) less weightage to horizontal

creep than vertical creep

(d) loss of head follows the sine

curve

33. The field capacity of a soil

is 25%, its permanent wilting

point is 15% and specific dry

unity weight is 1.5. If the depth

of root zone of a crop is 80 cm,

the storage capacity of the soil

is

(a) 8 cm

(b) 10 cm

(c) 12 cm

(d) 14 cm

34. A river is said to be of

(a) aggrading type if it builds up

its bed to a certain slope

(b) degrading type if it cuts its

bed to a certain slope

(c) meandering type if it flows

in sinuous curve

(d) All the above

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21 (14 – A)

35. † ’ð â ÿ å ™ Äå ßð éâ – ’𠘵å âÿ å Ñ–Ó ÜÈ å ²™ ² ìå ìæÁµå ßð éâ –

’ð ² ìå êÄå êÆ „² ìð ê” Ôå ìæ ™ .

(a) Ôå êâ ÿð Ê– éâÿ å êÔå ÇÈ å ÐÔå ìæ¸ Ôå íú ¨Äå ꘵ å êÔå

( ƒÒ¼å ÔæϤÇÈ å Äå ) ÜÈ æÔå êÁ¿ · µ åùϤÔå Äå êÆ

Õêé² ™ Áµ 昵 å , Åé² µå ê ÜÈ åÒÇÈ å î¸ ¤

ÜÈ æÔå êÁ¿ · µå ùϤ ÇÈ å ÐÔå ìæ¸ Áµ å Ñ–Ó

Ôå êº » Äð ëâ ÿ å µ ð ÇÈ å ÐÔð éØÜÈ å ê¼ å ¾ Áµ ð .

(b) Ôå êâ ÿð Ê– éâÿ å êÔå ÇÈ å ÐÔå ìæ¸ Ôå íú ¨Äå ꘵ å êÔå

( ƒÒ¼å ÔæϤÇÈ å Äå ) ÜÈ æÔå êÁ¿ · µ åùϤ“”Ò¼ å

’å ™ Ôð ê …Áµ æ µ å , ¨Äå ꘵ å êÔå

( ƒÒ¼å ÔæϤÇÈ å Äå å) ÇÈå ÐÔå ìæ¸Ôå íú Ôå êâ ÿð

Ê– éâ ÿå êÔå ÇÈå ÐÔå ìæ¸ ’ð ” ÜÈ å² ™ ÜÈ å êÔå ìæ² µ 昙

ÜÈ å Ôå êÔ昙² µ å ê¼ å¾ Áµ ð .

(c) ² ìå ìæÔå íúÁµ ð é ÜÈ å Ôå ê² ìå êÁµ å Ñë Ó ÔæÜÈ å ¾ Ôå

¨Äå ꘵ å êÔå ( ƒÒ¼ åÔæϤÇÈ å Äå)

ÇÈ å ÐÔå ìæ¸ Ôå íú ¨Äå ꘵ å êÔå

( ƒÒ¼å ÔæϤÇÈ å Äå ) ÜÈ æÔå êÁ¿ · µå ùϤ’ð ”

ÜÈ å Ôå êÔ昙² µ å Êßå êÁµ å ê ƒÁ¿ · µ å Ôæ

’å ™ Ôð ê² ìå ì昙² µå Êßå êÁµ å ê.

(d) Ôð êéÑ– Äå ŠÑÓ Ôå î.

36. ² µ å Ê· å ÜÈå Ô昙 Ôå êâÿ ð Ê– éâ ÿ å êÔå 60 ÅÕêÚÈ å ƒÔå Á· ™ ² ìå êÑ– Ó Å²µ å Ò¼ å² µ å 10 ÅÕêÚÈ å µ åâ ÿå ’æÑÁµ å Ñ– Ó Ê– Áµ å Ôå êâÿ ð² ìå ê ÇÈå ÐÔå ìæ¸ Ôå Äå êÆ †

’ð âÿ å ™ Äå ²µ ð é•ÿ 桼å ÐÁµå Ñ– Ó ¼ ðëé² ™ ÜÈ å Ñ昙 Áµð ϕ ÜÈ å ëôæÏÒ’å Áµ å Ôå ìò ÑÏÔå íú 3 ÜÝ ŠÒ/ ˜µå Ò ð „˜™ Áµ å ² µð , ßå ²™ Áµ å ê ßð ëéÁµå Ôå êâ ÿð ÇÈ å ÐÔå ìæ¸ Ôå íú ______ „˜™ Áµ ð .

(a) 2 ÜÈ ð Ò.Õë.

(b) 3 ÜÈ ð Ò.Õë. (c) 4 ÜÈ ð Ò.Õë.

(d) 5 ÜÈ ð Ò.Õë.

37. Á¿ · ™² ìð êÒÄå ÇÈå Ð’æ²µ å , ¦ÑÁ· µ å² µ å / ¦Ñ’å êßå ²µ å ( „“ÖÇ· È ðÈ å² µ ó) Äå ÔæÏÇÈ å ϼ ð ² ìå êÄåêÆ † ’ðâ ÿå ˜™ Äå ² ìå ìæÔå ÜÈ åë¼å ÐÁ™ ÒÁµå ÇÈå ´ µð ² ìå êÊßå êÁµ å ê.

(a) K =

2.3 Q log10 r2

r1

∏ (h22 – h1

2)

(b) K =

2.3 Q loge r2

r1

∏ (h22 – h1

2)

(c) K =

2.3 Q log10 r2

r1

2∏ (s1 – s2)

(d) Ôð êéÑ– Äå ŠÑÓ Ôå î

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21 (15 – A)

35. Pick up the correct statement

from the following :

(a) When rainfall rate exceeds

the infiltration capacity, the

water enters the soil at full

capacity rate.

(b) When rainfall rate is

less than the infiltration

capacity, the infiltration

rate is approximately

equal to the rainfall

rate.

(c) The actual infiltration rate at

any time may be equal to or

less than the infiltration

capacity.

(d) All the above.

36. The rate of rainfall for successive

10 minute periods of a 60 minute

duration storm, are shown in the

below figure. If the value of ϕ

index is 3 cm/hour, the runoff

will be

(a) 2 cm (b) 3 cm

(c) 4 cm (d) 5 cm

37. According to Thiem, the

permeability of an aquifer may be

obtained from the equation

(a) K =

2.3 Q log10 r2

r1

∏ (h22 – h1

2)

(b) K =

2.3 Q loge r2

r1

∏ (h22 – h1

2)

(c) K =

2.3 Q log10 r2

r1

2∏ (s1 – s2)

(d) All the above

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21 (16 – A)

38. ¦ÑæÄå ² ìå êÄå ÇÈ æ¼å ÐÁµ å ÇÈå’å ”Áµ å ÜÈå Ôå êÔå ïÚÝ ± ² µ ð é• ÿ ðÎêÒÁµ å „Ôå ï¼ å ÇÈ å ÐÁµðé×å Ôå Äå êÆ ’ð âÿ å ˜µð ¼ ðëé² ™ ÜÈ å å Ñ昙 Áµ ð . ¦ÑæÄå ²ìå êÄå ÇÈ æ¼ å ÐÁµ å Ñ–Ó ÔæÚÝ ¤’å ƒÔå ’ð Û éÇÈå Äå ( ÇÈ ð ÐéÜÝ ÇÝ ð ÚÈå Äó) ÜÈ å ²µ æÜÈ å² ™ „â ÿ å Ôå íú _____ „˜™ Ôð .

ÜÈ å Ôå êÔå ïÚÝ ± ² µ ð é• ÿ ð ÜÈ ð Ò.Õë. ˜µ å âÿ å Ñ– Ó .

40-50 50-60 60-70 70-80 80-90

ÇÈ å ÐÁµ ð é×å ôå Áµ å² µ å “.Õë. ˜µ å âÿ å Ñ– Ó

1500 2500 3000 2000 1000

(a) 60.0 ÜÈ ð Ò.Õë.

(b) 60.5 ÜÈ ð Ò.Õë.

(c) 61.5 ÜÈ ð Ò.Õë.

(d) 63.5 ÜÈ ð Ò.Õë.

39. † ’ð â ÿå ˜µ ð Åé´ µ å ÑæÁµå ² µð é• ÿ 桼å ÐÔå íú Ê– é’ó …Äó …â – ¦ÿ æ² ™² µå êÔå ¼ð ² µðÁµ å ’æÑêÔð ² ìå êÑ–Ó ƒÄå ê’å ÐÔå êÔ昙 ÕÊ– · Äå Æ ßå ² ™ Ôå Äå êÆ ¼ ðëé² ™ ÜÈ å ê¼ å ¾ Áµ ð . Š µ å Á™ÒÁµ å ÊÑ’ð ” ‡Ò¯æ˜µ å êÔå ¦ÑÔð êéÑð Ͳ ìå ê ÇÈ æ×å Ö¤ ¡¼ å ÐÁµ å ÕÁ· µ å ˜µå âÿ å ê ² ìå ìæÔå íúÁµ å ê ?

(a) H2, S3

(b) H2, S2

(c) H2, M2

(d) H3, M2

40. † ’ð â ÿå ˜™ Äå ² ìå ìæÔå ˆßð ² ìå êÄå êÆ ÜÈ æÔå ìæÄå ÏÔ昙 ôå Ñ– ÜÈ å êÔå Ç· È å Ñ’å Áµå ( Ôå êëÕÒ µ ó ÇÈð Ó é¯ó) Ôð êéÑð Á· µ æ²µ æ ÜÈ å Ò›å ®±Äð² ìå êÄå êÆ ¦ÿð ¯ó …ÒÇÝ Ò¨Ò˜µ ó Õ×ð Ó éÚÝ ÜÝ Ôå ìæ´ ™ Áµå êÔ昙 Áµ ð ?

1. Á· µ æ² µð Ôå ê¼ å ê¾ Ç·È å Ñ’å Áµ å Äå µ å êÕÄå ›å ÚÈ å ¤¹ð ² ìå êÄå êÆ ÅѤ“Û ÜÈ å Ñ昵 å ê¼å ¾ Áµð .

2. ßå ² ™ Ôå íú ÜÝ À ²µ å Ô昙² µå ê¼ å¾ Áµð .

3. Á· µ æ² µð ² ìå ê ÜÈ å ÒÔð 阵å ( ¦ÿ ð ¯ó Ôð ëÔð êÒ®Ôå ìó) ÊÁµ å Ñ昵å êÔå íúÁ™ ÑÓ .

4. Ç· È å Ñ’å Ôå íú ÜÝ À² µå Ôð 阵å Áµ å Ñ– Ó ôå Ñ–ÜÈ å ê¼å ¾ Áµð .

† ’ð â ÿå ˜™ Äå ÜÈå Ò’ð é¼ å µ åâ ÿå Äå êÆ Êâ ÿ å ÜÝ ÜÈ å² ™ ² ìå ìæÁµ å ‡¼ å ¾² µå Ôå Äå êÆ „² ìð ê” Ôå ìæ´ ™ .

(a) 1, 2 Ôå ê¼ å ê¾ 4

(b) 1, 2 Ôå ê¼ å ê¾ 3

(c) 2, 3 Ôå ê¼ å ê¾ 4

(d) 1, 3 Ôå ê¼ å ê¾ 4

41. Ôå êë²µ å êÜÈå ¾² µ å Áµ å Ôå 꺻 Äå Ñ–Ó, ÜÈ å ¾ ²™ é’å ²µ å ( ÜÈ æ±ø°Ç· Ý ’ð éÚÈå Äó) ÜÈ å Ôå ìæÒ¼å² µ å Ô昙 Áµ ð . Ôå êÁ· µå ùÏ ÜÈ å ¾² µ å Áµ å Áµå ÇÈ åÉ Ôå íú Ôð êéÑ– Äå Ôå ê¼ å ê¾ ’ðâ ÿ å ™ Äå ÜÈ å ¾² µ å“”Ò¼å Š² µå ´ µå ²µ å ÚÝ ±Áµ ð . Ôå êÁ· µ åùÏ ÜÈ å¾ ² µå Áµå

ÔæÏÇÈ å ϼ ð² ìå ê ÜÈå ßæÒ’å Ôå íú (2K) Ôð êéÑ– Äå

Ôå ê¼ å ê¾ ’ð âÿ å ˜™ Äå ÜÈ å ¾² µå Áµ å Š² µå µ å² µ å ÚÝ ±Áµ ð (K). † ßå ² ™ ÕÄå ÜÈå ²µ æÜÈ å² ™ ÔæÏÇÈå ϼ ð ² ìå ê ÜÈå ßæÒ’å ( ’ðëé ŠÇ· Ý ÚÝ ² ìå êÒ¯ó „Ç· È ó Ç· È å Èå Õꤲ ìå êÊ– Ñ–°) † ’ð âÿ å ™ Äå Ôå íú˜µåâ ÿ å Ñ– Ó ² ìå ìæÔå íúÁµ å ê

(a) K

(b) 1.33 K

(c) 1.5 K

(d) 0.66 K

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21 (17 – A)

38. The area enclosed by the adjacent

isohyets of a catchment basin are

shown below :

Isohyets

in cms

40-50 50-60 60-70 70-80 80-90

Area in

sq. km.

1500 2500 3000 2000 1000

The average depth of annual

precipitation in the catchment

basin will be

(a) 60.0 cm

(b) 60.5 cm

(c) 61.5 cm

(d) 63.5 cm

39. The given figure shows gradually

varied flow in an open channel

with a beak in bed slope. Types

of water surface profiles

occurring from left to right are

(a) H2, S3

(b) H2, S2

(c) H2, M2

(d) H3, M2

40. Which of the following

assumptions are made in the

analysis of jet impinging

normally on a moving plate ?

1. Friction between jet and

plate is neglected

2. Flow is steady

3. Momentum of jet is

unchanged

4. Plate moves at a constant

velocity

Choose the correct answer using

the codes given below :

(a) 1, 2 and 4

(b) 1, 2 and 3

(c) 2, 3 and 4

(d) 1, 3 and 4

41. In a three-layered soil, water flows

parallel to stratification. The

thickness of the middle layer is

twice that of top and bottom layer.

The coefficient of permeability of

middle layer (2K) is twice that of

top and bottom layer (K). What is

the average coefficient of

permeability for this flow ?

(a) K

(b) 1.33 K

(c) 1.5 K

(d) 0.66 K

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21 (18 – A)

42. † ’ð âÿ å ™ Äå ² µð é• ÿ 桼 å ÐÁµ åÑ– Ó Äå ¼ ðëé²™ ÜÝ Áµå Ų µ åëÇÈ å ¹ð ² ìå êÑ– Ó , Åé²™ Äå ÅÁ™ ¤ÚÈ å ± ¼ åë’å Ôå Äå êÆ

10,000 N/m3 ŠÒÁµ å ê ˆàÜÝ Áµ 昵å , A

Ôå ê¼ å ê¾ B Ê– ÒÁµ å ꘵å âÿ å Äå µ å êÕÄå §¼å ¾ µ å Ôå ϼ æÏÜÈ å Ôå Äå êÆ ½ â– ÜÝ .

(a) 10 N/m2

(b) –10 N/m2

(c) 20 N/m2

(d) – 20 N/m2

43. §ÒÁµ å ê ¼ ð² µ ð Áµ å ’æÑêÔð ² ìå ê Ôå ìæÁµ å ² ™² ìå êÄå êÆ

1/100 Ôå ìæÇÈ å Äå Áµ å (scale) ƒÄå êÜÈ å² ™ ÜÝ ÅÕê¤ÜÈ å Ñ昙 Áµð . Ôå ìæÁµ å² ™²ìå êê Ôå ìæÏÅÒ˜µ óÞ

n = 0.013 ² ìå êÄå êÆ ßðëÒÁ™ Áµ å ²µ ð , …Áµå ê Ôå êëÑ Ôå ìæÁµ å² ™² ìå ê ²µ å Ê· åÜÈ å Áµå ÜÈå ßæÒ’å Áµå ( Ç· Èð ùîÐ ð ëé ðñ ÇÈ ó ² µ å Ç·È óÄð ÜÈó ’ð ëéŠÇ· Ý ÚÝ ² ìå êÒ¯ó) ² ìå ìæÔå Ôå ìò ÑÏ’ð ” ÜÈ å ÒÔæÁ™ ( ƒÄå ê²µ å ëÇÈ å) ² ìå ì昙 ² µå ê¼å ¾ Áµð .

(a) 0.028

(b) 0.28

(c) 2.8

(d) 28

44. † ’ð â ÿå ˜™ Äå ² µ ð é•ÿ 桼å ÐÁµ å Ñ– Ó

¼ ðëé² ™ ÜÈ å ÑæÁµ å Ò¼ ð A, B Ôå ê¼ å ê¾ C †

Ôå êë²µ å ê ¦Ñæ×å ² ìå ꘵å âÿ å ÄåêÆ ’ð ëâÿ å Ô𠘵 åâ ÿå

Ôå êëÑ’å ÇÈå ²µ å ÜÈå ɲ µ å ¦ÿ ð ëé ™ ÜÈ å Ñæ ™ Áµ ð .

¦Ñæ×å ² ìå ꘵ åâ ÿå Ñ– Ó Åé²™ Äå Ôð êéÑð Íþñ Š¼å ¾ ²µ å

( ‹² ™ ’ð ) Ôå Äå êÆ Ôå ê¼ å ê¾ J ÜÈ å ÒÁ·™ ÜÈå Àâ ÿå Áµ å Ñ– Ó Äå

ÜÈ å ÒÇÝ é µ å Äå Ôå ìæÇÈå ’å Áµå ¼ å êÁ™ ² ìå êÄå êÆ

( ÇÝ é¦ÿ ðëé² ìðëéÔð ê°Ð’ó ßð ´ µó) ’ð âÿ å ˜™ Äå

² µ ð é• ÿ 桼å ÐÁµå Ñ– Ó ÜÈ åë¡ÜÈå Ñ昙 Áµ ð . Q1, Q2

Ôå ê¼ å ê¾ Q3 † Ôå êë² µå ² µå Åé² ™ Äå ßð ë² µå

ßå ² ™ Ôå íú ( ™ ÜÈ óô榤ÜÈ ó) †

’ð âÿ å ™ Äå Ôå íú˜µå âÿ å Ñ–Ó ² ìå ìæÔå íúÁµ å ’ð ” ÜÈ å ÒÊÒÁ· ™ ÜÝ Ôð ?

(a) Q1 + Q2 = Q3

(b) Q1 = Q2 + Q3

(c) Q2 = Q1 + Q3

(d) Q1 + Q2 + Q3 = 0

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21 (19 – A)

42. In the set up shown in the below

figure, assuming the specific

weight of water as 10,000 N/m3,

the pressure difference between

the points A and B will be

(a) 10 N/m2

(b) –10 N/m2

(c) 20 N/m2

(d) – 20 N/m2

43. A model of an open channel is

built to a scale of 1/100. If the

model has a Manning’s

n = 0.013, to what value of

prototype roughness coefficient

would this correspond ?

(a) 0.028

(b) 0.28

(c) 2.8

(d) 28

44. Three reservoirs A, B and C are

interconnected by pipes as shown

in the below figure. Water

surface elevations in the

reservoirs and the Piezometric

Head at the junction J are

indicated in the below figure.

Discharges Q1, Q2 and Q3 are

related as

(a) Q1 + Q2 = Q3

(b) Q1 = Q2 + Q3

(c) Q2 = Q1 + Q3

(d) Q1 + Q2 + Q3 = 0

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21 (20 – A)

45. A-2 ˜µ å Ò ð ›å ®’å ¦Ñ¡¼ åи Ôå Äå êÆ ’ð âÿ å ™ Äå ² µ ð é• ÿ 桼å ÐÁµå Ñ– Ó ¼ð ëé² ™ ÜÈåÑæÁµ å ÕÚÈ å Ôå ê ôå ¼å êÊ· å ꤦÁµå Ñ– Ó² µå êÔå Ò¼ ð ƒÒÁµ æ¨ÜÈ å Êßå êÁµ 昙 Áµ ð . ›å ®’å ¦Ñ¡¼ å и Ôå íú _____ ¦ÑæÄå ² ìå êÄå ÇÈ åÐÁµ ð é×å Ôå Äå êÆ ‡Ñð Ó é• – ÜÈ å ê¼ å¾ Áµ ð .

(a) 138.24 km2

(b) 0.0384 km2

(c) 384 m2

(d) 3840 m2

46. † ’ð â ÿå ˜™ Äå ² µð é• ÿ 桼 å ÐÁµå Ñ–Ó ’ð âÿ å ßå² ™ Ôå íú Ç·È å Èå Ñ’å

ÜÈ å ¾ ÒÊ· å Áµð ëÒÁ™ µ ð ( Øé¯ó ÚÈ ð ñ Ñ– Äð ëÒÁ™ ˜µ ð) ÔæÏÇÈ å Ï ( ÇÈå Õê¤é² ìð êéÊÑó) ¼ åâ ÿå ßå Á™² ìå ê Ôð êéÑ– Äå ƒ¹ð ’å ®±Äå êÆ ¼ ðëé² ™ ÜÈ å Ñ昙 Áµð . • ÿ ðëéÜÈ æÓ ÕÁµ æÄå Áµå ÇÈ å Ð’æ² µ å ص å¤Ôå êÄå ÇÈ å ÐÔå ì渼 ð ( Š“© ¯ó ˜µð Ð ™ ² ìå êÒ¯ó) ______

(a) 6.0 ²µ å Ñ– Ó 1 (b) 5.0 ²µ å Ñ– Ó 1

(c) 3.4 ²µ å Ñ– Ó 1

(d) 2.5 ²µ å Ñ– Ó 1

47. † ’ð â ÿå ˜™ Äå ²µ ð é•ÿ 桼å ÐÁµ å Ñ– Ó ’å Ôæ®Áµ å ( ˜µ ð é¯ó) ’ðâ ÿå ßå² ™ ÕÅÒÁµå ‡Ò¯æ˜µ å êÔå ¦Ñ Ôð êéÑð Íþñ ÇÈ æ×å Ö¤ ¡¼å и ( Ô殲 µó ÜÈ å ²µ óÇ·È ð éÜÈó ÇÈ ð îÐÇ· È ðñ Ñó) ² ìå ìæÔå íúÁµ å ê ?

(a) H3

(b) M1

(c) H2

(d) S2

48. ÜÈ å Ôå ìæÄå Õê½² ìå ê ¦ÑÁ· µ å² µ å ( ¦Ñ’å êßå ²µ å) ˜µ å âÿ å Ñ– Ó , Š²µ å µ å ê ÜÈ å ÒÇÈ å  §â ÿå ÇÈå ÐÔð éØ’å ÊæÕ˜µ å â ÿå ê ÇÈå мð Ïé’å Ô昙 L (Õ뮲 µ å ê µ åâ ÿ å Ñ– Ó)

…Ôð . Q1 m3/ÜÈ ð ’å Ò µó ‹’å ÜÝ À² µå ÇÈ å ÐÔå ìæ¸ Ôå Ñ– Ó Š² µå ´ µå ê ÊæÕ˜µ å â– ˜µð Åé² µ å Äå êÆ ÇÈ å ÒÇÈ ó Ôå ìæ´ ™ Áµ æ˜µå Š² µ å µå ê ÊæÕ µ å âÿ å Äå ´ µå êÕÄå Ôå êÁ·µ åùÏÊ– ÒÁµ å êÕÄå Ñ– Ó ( Š² µå µ å ë ÊæÕ˜µ å â – ÒÁµ å 0.5 L Áµ å ë² µ å Áµ å Ñ–Ó ) ƒâ ÿð ð ² ìå êÑæÁµ å ´ µ æÐ µ ò Äó 2.0 ŠÒ. Š² µ å µå ë

ÊæÕ˜µ å â – µ ð Q2 m3/ÜÈ ð ’åÒ´ ™ Äå ‹’å ÜÝ À²µ å ÇÈ å ÐÔå ìæ¸ Áµå Ñ– Ó Åé² µå Äå êÆ ÇÈ å ÒÇÈ ó Ôå ìæ ™ Áµ 昵 å ƒÁµ ð é ÜÈå Àâ ÿ å Áµ å Ñ–Ó ƒâ ÿð ² ìå êÑæÁµ å ´ µ æÐ µ ò Äó 8.0

ŠÒ. ÇÈ å ÒÇÈ å íú Ôå ìæ´ ™ Áµ 昵åÑð ÑÓ ÊæÕ˜µ å âÿ å Ñ–Ó ´ µ æÐ µ ò Äó ² ìå ìæÔ昵 å Ñë 10.0 ŠÒ. „˜™ ² µå ê¼å ¾ Áµð ÒÁµ å ê Ê· æÕÜÈ å Êßå êÔ昙 Áµ ð , „˜µå 0.5 L Q1/ Q2 ˜™ Ò¼ å ßð ¡¢Äå ÇÈ å ÐÊ· æÔå Áµ å ½ Ð¦Ï (² µ ð é´ ™² ìå êÜÈó) † ’ðâ ÿå ™ Äå ² ìå ìæÔå íúÁµ å ’ð ” ÜÈ å Ôå ìæÄå Ô昙 Áµ ð

(a) 8/5

(b) 4/3

(c) 5/8

(d) ln (L/2)

(› å®’å µå âÿ åê)

(› åÒ ð)

28 Units (›å®’å µ åâÿ åê)

(Äð Ñ)

’ðâÿåßå ²™Ô åíú

Ç·ÈåÑ’å ÜÈ å¾ÒÊ· å

(ÜÈåÔ åê¼ åÑ)

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21 (21 – A)

45. A-2 hour unit hydrograph can be

approximated as trapezoidal as

shown in the below figure. The

unit hydrograph refers to

catchment of area

(a) 138.24 km2

(b) 0.0384 km2

(c) 384 m2

(d) 3840 m2

46. A weir on a permeable

foundation with downstream

sheet pile is shown in the figure

below. The exit gradient as per

Khosla’s method is

(a) 1 in 6.0

(b) 1 in 5.0

(c) 1 in 3.4

(d) 1 in 2.5

47. The water surface profile

resulting from flow underneath

the gate in the below figure is :

(a) H3

(b) M1

(c) H2

(d) S2

48. Two completely penetrating

wells are located L (in metres)

apart, in homogeneous confined

aquifer. The drawdown measured

at the midpoint between the two

wells (at a distance of 0.5 L from

both the wells) is 2.0 m when

only the first well is being

pumped at the steady rate of

Q1 m3/sec. When both the wells

are being pumped at identical

steady rate of Q2 m3/sec, the

drawdown measured at the same

location is 8.0 m. It may be

assumed that the drawdown at the

wells always remains at 10.0 m

when being pumped and the

radius of influence is larger than

0.5 L Q1/ Q2 is equal to

(a) 8/5

(b) 4/3

(c) 5/8

(d) ln (L/2)

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21 (22 – A)

49. §ÒÁµ å ê „Ç· È ó ÜÈ ð °±Äå ÑÒÊÁ™ ’å ”Äå êÆ ’åº » ÅÒÁµ å „ô𠘵 ð …²™ ÜÝ Áµ æ µ å , „Ç· Èó ÜÈ ð®Äå Ñ– Õê°Ò˜µ ó ‡Áµ å  ŠÚÈ å ê± ?

(a) 5 m

(b) 10 m

(c) 15 m

(d) 20 m

50. ƒÑÉ ’ð ëéÅé² ìå ê ƒÒ¼ å ²µ å Á™ ÒÁµ å ÇÈ å мð Ïé“ÜÈ å ÑæÁµå Ò¼å ßå Ôå ÜÈåê¾ ˜µ åâ ÿå Ê– ÒÊÔå íú ÜÈ å É ÚÈ å ±Ô昙 ˜µ å ê² µå ê½ ÜÈ å Ñê ÜÈ æÁ· µ å ùÏÔ昵å êÔå Ò¼ð Ôå ìæ´ µ å êÔå , Áµ åë² µå Áµå ×å ¤Äå Áµ å ÜÈ æÔå êÁ¿ ·µ å ùϤÔå Äå êÆ à阵 ð Äå êƼ æ¾ ²µ ð .

(a) ´ µ ð Ç· Ý Å×å Äó

(b) ÇÈ å Е² µ å¼ð

(c) ÜÈ å ë’å Û ûÍ ÜÈ å ÒÔð éÁµå ’å¼ å Ö

(d) ÕÊ· ð éÁµ å Äå ÜÈ æÔå êÁ¿· µ åùϤ

51. ¯æÏ“² ìð ëéÔð ê°Ð² ìå ê ¼ å¼ å ÖÔå Äå êÆ ŠÑ– Ó Êâ ÿ å ÜÈ å Ñ昵å ê¼å ¾ Áµð ?

(a) ßð ë²µ å ²µ ð é• ÿ ð µ åâ ÿå Äå êÆ µ å ê²µ å ê½ ÜÈåÑê

(b) ßð ñ µ ð ëÐ阵 æÐÇ· Ý ’ó ÜÈå Õêé’ð Û² ìåêÑ– Ó

(c) ÜÈ å Àâ ÿ æ’å ï½ ÜÈå Õêé’ð Û µ åâ ÿå Ñ– Ó ÕÔå ² µå ˜µ åâ ÿå Äå êÆ Ê· å ½¤Ôå ìæ´ µå Ñê

(d) Ôð êéÑ– Äå ŠÑÓ Ôå î

52. ² µ ðñ Ñð Ö˜µ åâÿ å Ñ–Ó ÜÈ åëÇÈ å² µó ŠÑ– Ôð é×å ÅÆÄå ÇÈ å ÐÔå ìæ¸ Ôå íú ’ð âÿ å ’å Ò µ å Áµå  ’ð ” ÜÈ åÔå êÔ昙 ² µå ê¼å ¾ Áµð .

(a) gr2/GR

(b) Gr2/gR

(c) GR/gr2

(d) gR/Gr2

53. ¼ å ÇÈ æÉ Áµ å ƒâÿ å¼ ð ÇÈ å °±ÎêÒÁµ å Ôå ìæ´ µ å ÑæÁµ å ƒâ ÿå ¼ð ˜µ åâ ÿå Äå êÆ ’ð âÿ å ’å Ò µ å ÜÈ å ÒÊÒÁ· µ å Ôå Äå êÆ Êâ ÿå ÜÝ ÜÈ å ²™ ÇÈ å ™ ÜÈ å Êßå êÁµå ê.

(a) ŦÔæÁµ å ‡Áµ å  = ÜÈ å ²™ ² ìå ìæÁµå ƒâÿ å¼ ð

¼ å ÇÈå íþÉ ƒâ ÿå ¼ð ×

ƒâ ÿð Áµ å ‡Áµå Â

(b) ŦÔæÁµ å ‡Áµ å  =

ÜÈ å ²™ ² ìå ìæÁµå ƒâÿ å¼ ð

¼ å ÇÈå íþÉ ƒâ ÿå ¼ð2

× ƒâ ÿð Áµ å ‡Áµ å Â

(c) ŦÔæÁµ å ‡Áµ å  =

ÜÈ å ²™ ² ìå ìæÁµå ƒâÿ å¼ ð

¼ å ÇÈå íþÉ ƒâ ÿå ¼ð3

× ƒâ ÿð Áµ å ‡Áµ å Â

(d) Ôð êéÑ– Äå ² ìå ìæÔå íúÁµå ë ƒÑÓ

54. ŦÔæÁµ å Ôå ìò ÑÏÁ™ ÒÁµ å , §ÒÁµ å ê ƒâ ÿå ¼ð ² ìå êê

Ôå ϼ æÏÜÈ å Ô昵å êÔå íúÁµ å’ð ”, ƒÄå êÔå ê½ ÜÈ å ÑæÁµ å ˜µ å ²™ ÚÈ å³ Õê½² ìå êÄå êÆ à阵ð Äå êÆ¼æ¾ ² µ ð .

(a) ƒÄå êÔå ê½ ÜÈ å Êßå êÁµ æÁµ å ¼ å ÇÈå íþÉ

(b) Ų ™ é“Û ÜÝ Áµ å ¼å ÇÈ å íþÉ

(c) ¼ å ÇÝÉ Äå ÔæÏÇÝ ¾

(d) Ñ– éÜÈ ó ¼ å ÇÈå íþÉ

55. Äð ñ ¦Ô昙 ÑÒʲ µ ð é•– é² ìå êÔæÁµå £æ² ìå ì桼 å ÐÁµå Ñ– Ó ’ðâ ÿ å ™ Äå ² ìåìæÔå Ê– ÒÁµ å ꘵ åâ ÿå ê ÜÈ å ÒÇÈå ¼å Äå Ô昵 å ê¼ å¾ Ôð ?

1. ÇÝ ÐÅÞ ÇÈ å Ñó ÇÈ æÎêÒ¯ó

2. ŒÜÈ ð ëéÜÈð Ò®² µ ó

3. ÇÈ å Ó ÒÊó ÇÈ æÎêÒ¯ó

(a) 1 Ôå ê¼å ê¾ 2 Ôå ìæ¼ å Ð

(b) 2 Ôå ê¼å ê¾ 3 Ôå ìæ¼ å Ð

(c) 1 Ôå ê¼å ê¾ 3 Ôå ìæ¼ å Ð

(d) 1, 2 Ôå ê¼ å ê¾ 3

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21 (23 – A)

49. The limiting length of the offset

is ______ when its perpendicular

direction is set out by an eye.

(a) 5 m

(b) 10 m

(c) 15 m

(d) 20 m

50. The power of a telescope to form

distinguishable images of objects

separated by small angular

distance is called as

(a) definition

(b) brightness

(c) sensitivity

(d) resolving power

51. The principle of tacheometry is

used

(a) for locating contours

(b) on hydrographic survey

(c) for filling in detail in

topographic surveys

(d) All of the above

52. The amount of super-elevation on

railways is equal to

(a) gr2/GR

(b) Gr2/gR

(c) GR/gr2

(d) gR/Gr2

53. Measurements taken with a

wrong scale can be corrected by

using the relation

(a) True length = Correct scale

Wrong scale ×

Measured length

(b) True length =

Correct scale

Wrong scale

2

×

Measured length

(c) True length =

Correct scale

Wrong scale

3

×

Measured length

(d) None of the above

54. The maximum allowable limit

that a measurement may vary

from the true value is called

(a) Permissible error

(b) Expected error

(c) Range of error

(d) Lease error

55. In case of a truly vertical

photograph, which of the

following points coincide ?

1. Principal point

2. Isocenter

3. Plumb point

(a) 1 and 2 only

(b) 2 and 3 only

(c) 1 and 3 only

(d) 1, 2 and 3

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21 (24 – A)

56. ’å ¼å ¾ ²™ ÜÝ ßæ’å êÕ’ð ² ìå ê ’æ² ìå ê¤ôå² µå ¹ð ² ìå êê ’ð âÿ å ’å Ò µ å ßå Ò¼ å µ åâ ÿå Äå êÆ §â ÿ å µ ðëâÿ å êä¼å ¾ Áµ ð .

1. ÇÈ ð Ó éÄó ð éÊÑ–Ó Äå ² µ å Ç·È ó õ² ™ ² ìð êÒ ð é×å Äó

2. ¼åÇÈåíþÉ ½Ð’ðëéÄåÁ™ ÒÁµå Ôå êë²µå ê ²µðé•ÿð µåâÿå ê

3. Ôå êë²µ å ê Ų ìå êÒ¼ å и Ê– ÒÁµ å ê µå âÿ å Ôå êëÑ’å àÒÁµå ’ð ” ²µ ð é• ÿ ð µ åâ ÿå Äå êÆ Šâ ÿ ð² ìå êêÔå íúÁµ å ê

4. ÇÈ å н² ìð ëÒÁµ å ê “² µå ¸ Ôå íú ÇÈ å ÐÁµå “Û¸ …ÑÓ Ôð é ƒÇÈ å ÐÁµ å “Û ¸ Ô昙 ÜÈ å Ôå êÔæ ™ ½ ² µå ꘵å êÔå Ò¼ð ¼ å ÇÈå íþÉ ½ Ð’ðëéÄå Áµ å Ñ– Ó §ÒÁµ å ê Ê– ÒÁµ å êÔåÄå êÆ „² ìð ê” Ôå ìæ´ µ å êÔå íúÁµå ê

5. Ôåêë²µå ê “²µå µåâ– ÒÁµå ÇÈå µð²ìåêÑæÁµå Ê–ÒÁµåê µåâÿåê ÜÈå²™²ìå ìæÁµå ÜÈæÀ ÄåÔæ ™ ²µåê¼å¾ Ôð

…Ôå íú˜µ å âÿ å ÜÈå ²™ ² ìå ìæÁµå ƒÄå ê’å ÐÔå êº ’ð ½â – ÜÝ . (a) 1, 3, 2, 4, 5

(b) 1, 2, 3, 4, 5

(c) 1, 4, 3, 2, 5

(d) 1, 3, 2, 5, 4

57. 50 kg ¡éÑÁµ å Ñ– Ó ²µ å êÔå ÜÝ Ôð êÒ°Äå ›åÄå ÇÈ å ²™ Ôå ìæ¸ ŠÚÈ å ê± ?

(a) 27 Ñ– 鮲µ ó µ åâ ÿ å ê

(b) 34.7 Ñ– 鮲 µ ó µ åâ ÿå ê

(c) 44.7 Ñ– 鮲 µó˜µ åâÿ å ê

(d) 42.9 Ñ– 鮲 µ ó µ åâ ÿ å ê

58. 1 : 4 : 8 ÜÝ Ôð êÒ¯ó ’æÒ“Ðé°Äå 10 cu.m. ¼ å ² ìå ìæ² ™ ÜÈ å êÔå íúÁµå ’ð ” ŠÚÈ å ê± Ôå ê² µ åâ ÿå ê Êð é’昵 å Êßå êÁµå ê ?

(a) 0.7 cu.m.

(b) 3.07 cu.m.

(c) 1.15 cu.m.

(d) 4.74 cu.m.

59. ² ìå ìæÔå „Á· µ æ² µå Áµ å Ôð êéÑð Äå µ å ²µ å µ åâ ÿå Äå êÆ A , B, C ŠÒÁµ å ê Ôå ˜™ ¤é’å ²µ å Ôå ìæ´ µå ê¼ æ¾² µð ?

(a) ÜÈ å Àâ ÿå

(b) ¦Äå ÜÈ å Ò•ÿ ð Ï

(c) ƒÔå íú ² ìå ìæÔå ² µ æ¦Ï’ð ” ÜÈð é² ™Ôð ŠÒÊ „Á· µ æ² µå

(d) ÑÊ· å ùÏÕ² µå êÔå ÜÈò ÑÊ·å ùϘµ åâÿ å ê

60. …Ôå íú˜µ å âÿ å Ñ–Ó ƒÔå ×å Ï’å Ô昙 …² µ å Êð é’æÁµ å Å• ² µå ƒÒÁµ æ¦ê ² ìå ìæÔå íúÁµ å ê ?

(a) ÇÝ Ó Ò¼ó ‹² ™² ìå ìæ ƒÒÁµ æ¦ê

(b) ’å ë ÏÊ– ’å Ñó ’å Ò ð Ò¯ó ƒÒÁµæ¦ê

(c) ÇÈ å ²™ ÚÈ å ”þï¼å ƒÒÁµ æ¦ê

(d) Ôð êéÑ– Äå ² ìå ìæÔå íúÁµå ë ƒÑÓ

61. ² ìå ìæÔå ’ð ÑÜÈ å Áµ å Ñ–Ó , Á™ Äå Ôð îÒÁµ å ’ð ” §ÊÌ ’å ÑêÓ Ôå ê¸ ê» ’ð ÑÜÈå Áµ å Ôå Äå ê Ôå ìæ´ µ å Êßå êÁµ æÁµ å ’ð ÑÜÈ å Ôå íú Cu-m Ñð ’å ”Áµ å Ñ– Ó , µ å² ™ ÚÈå ³ Ô昙 ²µ å ê¼ å¾ Áµð ŠÒÁµ å ê Ų ™ é“Û ÜÈ å Êßå êÁµ å ê ?

(a) ² µ æÏÒ´ µå Ôå ìó ²µ å ÊÑó Ôð êéÜÈ å Äå² ™ …Äå ð ñ Ôå ìó

(b) ÜÈ ð ë ±éÄó „ôó¤ ’ð ÑÜÈå

(c) R.B. ’ð ÑÜÈå

(d) R.C.C. ’ð ÑÜÈ å

62. §ÒÁµ å ê ›å Äå Õê鮲 µ ó ÇÈ ð îé¯ó¤ ÑæÏÒ´ µ ó ÜÝ Ôð êÒ®ê ŠÚÈ å ê± ¼å ë’å Õ² µå ê¼å ¾Áµ ð ?

(a) 100 kg

(b) 1100 kg

(c) 1220 kg

(d) 1440 kg

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21 (25 – A)

56. The operation of resection

involves the following steps :

1. Rough orientation of the

plane table.

2. The three lines from a

triangle of error.

3. Drawing lines back through

the three control points.

4. Select a point in the triangle

of error such that each ray is

equally rotated either

clockwise or anticlockwise.

5. The points obtained by three

rays is the correct location.

The correct sequence is

(a) 1, 3, 2, 4, 5

(b) 1, 2, 3, 4, 5

(c) 1, 4, 3, 2, 5

(d) 1, 3, 2, 5, 4

57. The volume of cement in a 50 kg

bag is

(a) 27 litres

(b) 34.7 litres

(c) 44.7 litres

(d) 42.9 litres

58. For preparing 10 cu.m. of 1 : 4 : 8

cement concrete, the requirement

of sand would be

(a) 0.7 cu.m.

(b) 3.07 cu.m.

(c) 1.15 cu.m.

(d) 4.74 cu.m.

59. A, B, C classification of cities is

based on

(a) Location

(b) Population

(c) State to which they belong

(d) Facilities available

60. Which of the following is

necessarily an accurate estimate ?

(a) Plinth area estimate

(b) Cubical content estimate

(c) Revised estimate

(d) None of the above

61. In which work the output in cu.m.

per Mason per day can be

expected to be maximum

(a) Random rubble masonry in

lime

(b) Stone arch work

(c) R.B. work

(d) R.C.C. work

62. One cubic metre of Portland

cement weights

(a) 100 kg

(b) 1100 kg

(c) 1220 kg

(d) 1440 kg

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21 (26 – A)

63. §ÒÁµ å ê ÇÈ å² ™² ìð ëé¦Äð µ ð Êð é’昵 å êÔå ÜÈ å ÒÇÈå Äå ë ÍÑ „˜µ å¼å ϼ ð µ åâ ÿ å Ñð’æ”ôæ²µ å Ôå ìæ´ µ å êÔå ÇÈ å Гв ìð ê² ìå êÄå êÆ à阵 ð Äå êƼ æ¾ ²µ ð .

(a) ƒÄå êÜÈ å롘µð ëâ – ÜÈ å êÔå íúÁµå ê

(b) ÜÈ å Ôå êÄå Ö² ìå ꘵ð ëâ – ÜÈ å êÔå íúÁµå ê

(c) ÜÈ å ÒÇÈå Äå ë ÍÑ §®ê±˜µå ë ™ ÜÈå êÔå íúÁµ å ê

(d) Ôð êéÑ– Äå ŠÑÓ Ôå î

64. §ÒÁµ å ê ÅÔå ì椸 Áµ å Ôð éâÿ ð ß昵 å ë ÇÈ å Ð µ å½ ² ìå ê ô殤Äå êÆ à阵 å ë ’å ²µ ð² ìå êê¼ æ¾ ²µ ð .

(a) Êæ² µ ó ôæ¯ó¤

(b) ˜µ æÏÒ¯ó ôæ¯ó¤

(c) Ôå ìæÇÈ å ¤ ™ ÜÝ Áµå Ôð êñ ÑóÜÈ ðë ±éÄó ôæ¯ó¤

(d) Ôð êéÑ– Äå ŠÑÓ Ôå î

65. D ŠÒÊêÁµ å ê ƒÔå Á·™ ² ìå ì昙Áµ å ² µ ð , ES Ôå ê¼å ê¾ EF ˜µ åâ ÿå ê ƒ² ™ Ó² ìð êÜÈó± ÜÈ æ±¯ó¤ Ôå ê¼ å ê¾ ƒ² ™ Ó² ìð êÜÈó± Ç·Ý Å×ó ŠÒÁµ 昙 Áµ å ² µð , LS Ôå ê¼å ê¾ LF ˜µ åâ ÿå ê Ñð é ð ÜÈ ó± ÜÈ æ±¯ó¤ Ôå ê¼å ê¾ Ñð é ð ÜÈ ó± Ç· Ý Å×ó ŠÒÁµ æ ™ Áµ å ²µ ð , † ’ðâ ÿå ’å Ò´ µå ÜÈ å ÒÊÒÁ· µå Ôå íú ÜÈå ² ™² ìå ì昙 ƒÄå ÖÎêÜÈ å ê¼å ¾ Áµ ð .

(a) EF = ES + D

(b) LF – EF = LS – ES

(c) LF = LS + D

(d) All of the above

66. Êæ² µ ó ôæ¯ó¤ Äå Äå ë ÏÄå ¼ð ‹Äð ÒÁµ å ²µ ð ,

(a) …Ñ– Ó ôå ®êÔå °’𠘵 åâÿ å ƒÄåê’å ÐÔå 꺒ð

² ìå êÄå êÆ ÜÈå É ÚÈ å ±Ô昙 ½ â– Üݲ µ å êÔå íúÁ™ ÑÓ .

(b) ÇÈ å н ÅÁ· ™¼ å ÔæÁµ å ŠÑæ Ó

ôå ®êÔå °’𠘵å âÿ å ë §ÒÁµ å² ™ÒÁµ ð ëÒÁµå ê

ÜÈ å Ö¼å Ò¼å ÐÔ昙 ²µ å ê¼ å ¾ Ôð .

(c) §ÒÁµ å ê ôå ®êÔå °’ð

ÇÈ å î¸ ¤ µ ðëÒ ™ Áµ ð² ìð ëé …ÑÓ Ôð îé

ŠÒÊêÁµ å Äå êÆ ½ éÔå ìæ¤ÅÜÈ å êÔå íúÁµ å ê ’å ÚÈ å ±.

(d) ôå ®êÔå °’ð ² ìå êê, ƒÄå êÜÈå롘™ Ò¼ å

Ôå êêÒÁ™ Áµ ð² ìð ëé ƒÁ¿ · µ å Ôæ

àÒÁ™ Áµ ð ² ìð ëé ŠÒÊêÁµ å Äå êÆ

½ éÔå ìæ¤ÅÜÈå Ñê ÜÈ æÁ· µå ùÏÔ昵 å êÔå íúÁ™ ÑÓ .

67. ÅÔå ¤ßå ¹ð² ìå êÑ– Ó Ôå ê¦ë²™

ÇÈ ð îÐé¼ æÞ ßå’å µ åâ ÿ å Äå êÆ Åé´ µ å êÔå ‡Áµ ð é×å ˜µåâ ÿ å ê

’ð âÿ å ’å Ò µ å Ò½ Ôð .

1. ’å ™ Ôð ê ² ìå êëůó Ôð ôå ¢˜µ åâ ÿå ê

2. ÜÈ å êÁ· µ æ² ™¼ å Ôð ôå ¢ Ų ìå êÒ¼ å и

3. ’æÕê¤’å ²µ å ÜÈð À üϲ ìå ê¤ ßð ôæ¢ µ å ê¼å ¾ Áµ ð

(a) 1 Äð ² ìå êÁµ å ê Ôå ìæ¼ å Ð

(b) 2 Äð ² ìå êÁµ å ê Ôå ìæ¼ å Ð

(c) 1 Ôå ê¼å ê¾ 2 Ôå ìæ¼ å Ð

(d) 1, 2 Ôå ê¼ å ê¾ 3

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21 (27 – A)

63. The process of calculating the

resource requirements of a

project is known as

(a) Scheduling

(b) Coordinating

(c) Resource aggregation

(d) All of the above

64. Time and progress chart of a

construction is also known as

(a) Bar chart

(b) Gantt chart

(c) Modified Milestone chart

(d) All of the above

65. If D is the Duration, ES and EF

are the Earliest Start and Earliest

Finish, LS and LF are Latest Start

and Latest Finish times, then the

following relation holds good :

(a) EF = ES + D

(b) LF – EF = LS – ES

(c) LF = LS + D

(d) All of the above

66. A drawback of bar chart is :

(a) The sequence of activities is

not well defined.

(b) All the activities represented

are independent of each

other.

(c) It is difficult to judge

whether an activity is

completed or not.

(d) It is not possible to

judge whether the activity is

ahead or behind the

schedule.

67. In management the following are

objectives of wage incentives :

1. Lower unit costs

2. Improved cost control

3. Increased worker morale

(a) 1 only

(b) 2 only

(c) 1 and 2 only

(d) 1, 2 and 3

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68. Êð 阵 å Äð ÇÈ æв µå ÒÊ– ÜÝ Êð 阵 å Äð Ôå êꘙ ÜÈå êÔå ÜÈ å Ôå ê² ìå ê’ð ” ÜÈ å ÒÊÒÁ· ™ ÜÝ Áµ åÒ¼ ð ’ðâ ÿå ’å Ò µ å ÕÔå ² µ å ¹ð ˜µå âÿ å Äå êÆ ÇÈ å ²™ ØéÑ– ÜÝ .

1. §ÒÁµ å ê ’ð ÑÜÈå Ôå íú ÜÈ æÁ· µåùÏÔæÁµ å ÚÈ å ê± Êð 阵 å Äð ÇÈ æв µ å ÒÊ· å ÔæÁµ å Ñ– Ó , ƒÁµ å Äå êÆ Êð 阵 å Äð ÇÈ æвµ å ÒÊ·å ÔæÁµ å ’ð ÑÜÈå ŠÄå êƼ æ¾ ²µ ð .

2. §ÒÁµ å ê ’ð ÑÜÈ å Êð é µ å Äð Ôå êê ™² ìå êêÔå íúÁµ å ê ŠÒÁµ å ² µð , ÇÈ æвµ å ÒÊ–· ÜÝ Áµ å ’æÑ Ôå ê¼ å ê¾ ’ð ÑÜÈ å ÇÈ å ˜µð ëÒ µ å ’æÑ.

3. ² ìå ìæÔå íúÁµ ð é ÇÈå îÔå ¤Ê· æÕ˜µ å â– ÑÓ Áµå ’ð ÑÜÈ å µ åâ – µ ð , Êð 阵å Äð ÇÈ æв µ å ÒÊ·å ŠÒÊêÁµ å ê ÇÈ å² ™ ² ìð ëé¦Äð ² ìåê „² µ å ÒÊ· å ’æÑ’ð ” ÜÈ å Ôå ê.

4. §ÒÁµ å ê ’ð ÑÜÈå Ôå Äå êÆ Êð 阵 å Äð ÇÈ æв µ å ÒÊ– · ÜÈå êÔå íúÁµ å ê ŠÒÁµ å² µ ð, ƒÁµ å²µ å Å’å ®ÇÈ å îÔå ¤ ÇÈ å îÔå¤Ê· æÕ˜µ å âÿ å ŠÑÓ Êð 阵 å Äð ƒÒ¼ å Ï µ ðëâ– ÜÝ Áµå ’æјµ å â– ˜™ Ò¼ å Êßå â ÿå Áµ ðë µ å ¶ Áµ å ê.

…Ôå íú˜µ å âÿ å Ñ–Ó

(a) 1 ÜÈ å² ™ .

(b) 1 Ôå ê¼å ê¾ 3 ÜÈ å² ™ .

(c) 1, 2 Ôå ê¼ å ê¾ 3 ÜÈå ² ™ .

(d) 1, 2, 3 Ôå ê¼ å ê¾ 4 ÜÈå ²™ …Ôð .

69. §ÒÁµ å ê ÜÈ ð é¼ å êÔð² ìå ê ßå² µ å Ôå íú 20 m ÅÒÁµ å 30 m , µ ð Ôå ϼ æÏÜÈ å ÔæÁµ æ µ å , ² ìå ìæÔå ²™ é½ ² ìå ê ÜÈ ð é¼å êÔð ² ìå êê ßð ôå ê¢ ÜÈå ë’å ¾ ?

(a) ÜÈ æÓ üÏÊó ÜÈ ð é¼ å êÔð

(b) T- ¼ð ëÑð ² ìå ê ÜÈ ð é¼å êÔð

(c) ÜÈ å Ôå ê¼ ðëéÑ– ¼å ôæôå ê¼ ð ëÑð ÜÈ ð é¼å êÔð

(d) Ôð êéÑ– Äå ² ìå ìæÔå íúÁµå ë ƒÑÓ

70. §ÒÁµ å ê ÜÈ ð é¼å êÔð ² ìå ê Õê¼ å Ôåϲ ìå ê’æ² ™² ìå ìæÁµ å ßå ² µå Ôå íú ‡Áµ å Ôå Äå êÆ † ² ™ é½ ’ð ë´ µ å Êßå êÁµ å ê.

(a) l = L/(n + 1)

(b) l = (n + 1)/L

(c) l = L/(n – 1)

(d) l = (n – 1)/L

l = Õê¼ å Ôå ϲ ìå ê’æ² ™ ßå² µ å Ôåíú L = ÜÈ ð é¼å êÔð ² ìå ê §®ê± ‡Áµ å  n = „ÜÈ å² µð ’å Òʘµ åâ ÿå ÜÈå Ò•ÿ ð Ï

71. “Ó ÚÈ å ±¼ ð …ÑÓ Áµ ð „Á· µ æ²™ ¼åÔæÁµ å ßå ²µ å Ôå íú ÜÈ ð é¼å êÔð ² ìå êÑ– Ó Äå Á· µ æ²µ å’å ˜µå âÿ å ê

(a) Š² µ å µ åë ÜÈå ßå ÕÜÈ å ¾² µ å ¹æ Á· µ æ² µå ’å µ åâ ÿ 昙² µå ê¼å ¾ Ôð .

(b) §ÒÁµ å ê ’å ´ µð ÜÝ À² µ å ÔæÁµå Á· µ æ²µ å’å Õ² µå ê¼å ¾ Áµð …Äð ë ÆÒÁµ å ê ’å µð ÕÜÈ å ¾² µå ¹æ Á· µ æ² µå ’å Õ² µ å ê¼ å¾ Áµ ð .

(c) Š² µ å µ åë ’å ë´ µ å ÜÝ À²µ å Á· µ æ² µå ’å µ åâ ÿ 昙² µå ê¼å ¾ Ôð .

(d) Ôð êéÑ– Äå ² ìå ìæÔå íúÁµå ë ƒÑÓ

72. ÜÈ ð é¼å êÔ𠘵å âÿ å ÕÄæÏÜÈå Ôå ìæ´ µ å êÔ昵å , ÑÒÊæ¼ å Í’å ÜÈ å² µ å’å ®ê±˜µ åâ ÿå Ñ–Ó ÜÈ å “Ð² ìå ê Ñðëé´ µó ˜µ å âÿ å Õ¼ å² µ å ¹ð ² ìå êÄå êÆ ’ðâ ÿå ’åÒ´ µ å ÕÁ·µ æÄå Áµå Ñ– Ó ƒÒÁµ æ¦ê Ôå ìæ´ µ å Êßå êÁµå ê.

1. ’ò ʤÄå ÆÄå ÕÁ·µ æÄå

2. ÇÝ ˜µ æ´ µó¤ Äå ÕÁ· µ æÄå

3. ˜µ å ² ìå ìæÄó Ôå ìæÏÜÈ ðëÄð ¯ó ÕÁ· µ æÄå

4. ßð Ò´ ™ Ð ¨é˜µå ² µó ÕÁ· µ æÄå ÜÈ å ²™ ² ìå ìæÁµå ‡¼å ¾ ²µ å µ åâ ÿå Äå êÆ „² ìð ê” Ôå ìæ´ ™ .

(a) 1, 2 Ôå ê¼ å ê¾ 3 ÜÈå ² ™ .

(b) 2, 3 Ôå ê¼ å ê¾ 4 ÜÈå ² ™ .

(c) 1, 3 Ôå ê¼ å ê¾ 4 ÜÈå ² ™

(d) ŠÑÓ Ôå î ÜÈ å ²™ .

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21 (29 – A)

68. Consider the following

statements regarding early start

and early finish time :

1. The earliest possible that the

job can begin is called the

early start of the job.

2. The early finish of a job is

only start time plus the jobs

completion time.

3. For jobs with no

predecessors, the early start

is equal to start time of the

project.

4. The early start of a job is the

largest of the early finish

times of all of the

immediately predecessors.

Of these statements :

(a) 1 is correct.

(b) 1 and 3 are correct.

(c) 1, 2 and 3 are correct.

(d) 1, 2, 3 and 4 are correct.

69. When the span of the bridge is

varies from 20 m to 30 m, which

type of bridge is most suitable ?

(a) Slab bridge

(b) T-Beam bridge

(c) Balanced cantilever bridge

(d) None of the above

70. The economical span length of

bridge is given by

(a) l = L/(n + 1)

(b) l = (n + 1)/L

(c) l = L/(n – 1)

(d) l = (n – 1)/L

Where l = economical span,

L = total length of bridge and

n = number of piers

71. In simply supported span bridge

generally bearings are :

(a) Both are expansion bearing

(b) Fixed bearing at one side

and expansion bearing at the

other side.

(c) Both are fixed bearing

(d) None of the above

72. In design of bridges, the

distribution of live loads among

the longitudinal girders can be

estimated by

1. Courbon’s method

2. Pigeaud’s method

3. Guyon Massonet method

4. Hendry Jaegar method

Choose the correct any three of

the above methods.

(a) 1, 2 and 3 are correct.

(b) 2, 3 and 4 are correct.

(c) 1, 3 and 4 are correct.

(d) All the above.

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21 (30 – A)

73. I RC ’æÓ ÜÈó A Ñð ëé ™ Ò˜µó ˜µ ð ÇÈ å ² ™ ¹æÔå êÁµ å ƒÔå ’æ×å Ôå Äå êÆ ƒÄå ÖÎêÜÝÁµ å ßð ë² µð ² ìå ê Ç· È æÐ’åÛ Äó „˜™ Ôå Ï’å ¾ ÇÈ å ™ ÜÈå Ñ昵 å êÔå íúÁµ å ê.

I = A / ( B + L) , a, b, c Ôå ê¼ å ê¾ d ˜µåâ – ÒÁµå ÜÈ å ²™ ‡¼å ¾² µ å Ôå Äå êÆ „² ìð ê” Ôå ìæ´ ™ .

…Ñ– Ó I = …ÒÇÈ æÏ’ó± Ç· È æÏ’å ±² µó Ç·È æÐ’åÛ Äó, „² µ óÜÝ ÜÝ Ôå ê¼ å ê¾ ‡“”Äå ÜÈ ð é¼å êÔ𠘵å â– ˜µð A Ôå ê¼ å ê¾ B ˜µå âÿ å ê ÜÝ À ²µ æÒ’å µ åâ ÿ å ê.

L = Õê鮲 µ ó˜µå âÿ å Ñ– Ó ßå² µ å Ôå íú.

(a) A = „² µóÜÝ ÜÝ µ ð 4.5 Ôå ê¼åê¾ ‡“”Äå ÜÈ ð é¼å êÔ𠘵å â– ˜µð 9 Ôå ê¼å ê¾ B = „² µ óÜÝ ÜÝ ˜µð 6 ß昵å ë ‡“”Äå ÜÈ ð é¼å êÔ𠘵å â– ˜µð 13.5

(b) A = „² µóÜÝ ÜÝ ˜µð 9 Ôå ê¼ åê¾ ‡“”Äå ÜÈ ð é¼å êÔ𠘵å â– ˜µð 4.5, B = „² µ óÜÝ ÜÝ ˜µð 13.5 Ôå ê¼å ê¾ ‡“”Äå ÜÈð é¼ å êÔð µ å â– ˜µð 6

(c) A = „² µóÜÝ ÜÝ ˜µð 6 Ôå ê¼ åê¾ ‡“”Äå ÜÈ ð é¼å êÔ𠘵å â– ˜µð 13.5, B = „² µ óÜÝ ÜÝ ˜µð 4.5 Ôå ê¼å ê¾ ‡“”Äå ÜÈ ð é¼ å êÔð µ å â– ˜µð 9

(d) A = „² µ óÜÝ ÜÝ µ ð 13.5 Ôå ê¼ å ê¾ ‡“”Äå ÜÈ ð é¼å êÔ𠘵å â– ˜µð 6, B = „² µóÜÝ ÜÝ µ ð 9 Ôå ê¼ å ê¾ ‡“”Äå ÜÈ ð é¼å êÔ𠘵å â– ˜µð 4.5

74. Ê· å ëÕê² ìå êÑ– Ó Áµð ë² µ ð² ìå êêÔå ÜÝ àÅé² ™ Äå ×ð é’å µ æÔæ² µ å ê ÇÈ å ÐÔå ìæ¸ ŠÚÈ å ê± ?

(a) 2.8%

(b) 2.2%

(c) 0.6%

(d) 2.15%

75. Åé² ™ Äå Ñ–Ó Äð ñ ð Ðé®ê˜µå âÿ å ÜÈ æÒÁµ å м𠃼 å ÏÁ·™ ’å Ô昙 Áµ å ² µð

(a) ßå Ñ– Ó Äå Ç· Èå ùîúÓ² µ ðëéÜÝ ÜÈ ó˜µð ’æ² µ å Ô昵 å ê¼ å¾ Áµð .

(b) Áµ å Ò¼å ’åÛ ² ìå ê’ð ” ’æ²µ å Ô昵 å ê¼ å ¾ Áµ ð . (c) Ôå êÏÁ¿ · µð Ôð ëé ˜µð ë Ó Ê– Äð éÕê² ìå ì昵 ð

’æ² µ å Ô昵 å ê¼ å¾ Áµ ð . (d) ² ìå ìæÔå íúÁµ å ë ƒÑÓ

76. ’å ê´ ™² ìå êêÔå Åé²™ Äå Ñ– Ó Ç·È ð ùîúÓ é² µ ðñ µ ó Äå ÜÈ æÒÁµ å мð ŠÚÝ ±² µ å êÔå íúÁµå ê ƒÇÈ ð é’å Ûº é² ìå ê ?

(a) 1 to 1.5 mg/l

(b) 0.5 to 2 mg/l

(c) 2 to 5 mg/l

(d) None

77. ’å ê´ ™² ìå êêÔå Åé² ™ Äå pH ÔæÏÇÝ ¾ ŠÚÈ å ê± ?

(a) 6 ² ™ ÒÁµå 9

(b) 6.5 ² ™ ÒÁµ å 8.5

(c) 6 ² ™ ÒÁµå 8.5

(d) 6.5 ² ™ ÒÁµ å 7.5

78. Åé² ™ Äå ÜÈå ÒÜÈå ”² µå ¹ð² ìå êÑ– Ó „ÏÑÒÄå êÆ Êâ ÿå ÜÈ å êÔå ‡Áµ ð  é×å

(a) Ôð êÁµ å ꘵ð ëâ – ÜÈ å êÔå íúÁµå ê (b) ›å Åé’å ²™ ÜÈ å êÔå íúÁµ å ê (c) ÜÈ ð ëéÜÈ å êÔå íúÁµå ê (d) ² µ ðë阵 æ¸ ê Äæ×å Äå

79. Ôð êéÑð Íþñ Åé² ™ ˜µð ’ðñ ˜µ æ²™ ’æ ÕÜÈ å ¦¤Äð µ åâ ÿ å Äå êÆ Ê– ´ µå êÔå íúÁµ å² ™ ÒÁµå ,

(a) ÕÚÈ å ’æ² ™ ÜÈ å Ò² ìå êê’å¾ ˜µå âÿ å ê ßðô梘µ å ê¼ å¾ Ôð (b) ÜÈ æÔå ² ìå êÔå ÇÈ å Áµ æÁ¿· µå ¤ ßð ôæ¢ µ å ê¼å ¾ Áµ ð (c) ( a) Ôå ê¼ å ê¾ ( b) Š² µå ´ µå ë

(d) ² ìå ìæÔå íúÁµ å ë ƒÑÓ

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21 (31 – A)

73. The impact allowance is

expressed as a fraction of the

applied load for IRC Class A

loading is computed by the

expression

I = A / (B + L), choose correct

values from a, b, c and d

where I = Impact factor fraction,

A and B are constants for RCC

and Steel bridges

L = Span in meters

(a) A = 4.5 for RCC and 9 for

Steel bridges and B = 6 for

RCC and 13.5 for Steel

bridges

(b) A = 9 for RCC and 4.5 for

Steel bridges and B = 13.5

for RCC and 6 for Steel

bridges

(c) A = 6 for RCC and 13.5 for

Steel bridges and B = 4.5 for

RCC and 9 for Steel bridges

(d) A = 13.5 for RCC and 6 for

Steel bridges and B = 9 for

RCC and 4.5 for Steel

bridges

74. Percentage of fresh water

available on the earth is

(a) 2.8%

(b) 2.2%

(c) 0.6%

(d) 2.15%

75. Excessive concentration of

nitrates in water causes

(a) Dental fluorosis

(b) Tooth decay

(c) Mathemoglobinemia

(d) None

76. Desired concentration of fluoride

in drinking water is

(a) 1 to 1.5 mg/l

(b) 0.5 to 2 mg/l

(c) 2 to 5 mg/l

(d) None

77. What is pH range of drinking

water ?

(a) 6 to 9

(b) 6.5 to 8.5

(c) 6 to 8.5

(d) 6.5 to 7.5

78. In water treatment, alum is used

for

(a) Softening

(b) Coagulation

(c) Filtration

(d) Disinfection

79. Discharge of industrial effluents

into surface water increases

(a) Toxic compounds

(b) Organic matter

(c) Both (a) and (b)

(d) None

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21 (32 – A)

80. ÇÈ å ²™ ÜÈ å² µå ×æÜÈ å ¾ øÔå Äå êÆ † ’ð â ÿå ’åÒ´ µ å ÕÚÈ å² ìå ꘵åâÿ å ƒÁ· µ å ùϲ ìå êÄå ŠÒÁµå ê ÕÔå ²™ ÜÈ å Ñ昵 å ê¼å ¾ Áµð .

(a) ¨éÕ˜µ å â – µ åë ƒÔå íú˜µå âÿ å ÇÈ å² ™ ÜÈå ²µ å ’å ë ” …² µ å êÔå ÜÈ å ÒÊÒÁ·µ å

(b) ¨éÕ˜µ å â ÿå ˜µ å êÒÇÈ å íú˜µ åâ– ˜µ åë ¼ å Ôå êÍ ÇÈ å ²™ ÜÈ å² µå ’åë ” …² µå êÔå ÜÈå ÒÊÒÁ· µ å

(c) ( a) Ôå ê¼ å ê¾ ( b) Š² µå ´ µå ë

(d) ² ìå ìæÔå íúÁµ å ë ƒÑÓ

81. ¨éÕ² ìå ê ð ë ÐéÇÝ ’ó Ôåê®± ŠÒÊêÁµ å ê ‹Äå Äå êÆ ÇÈ å н ÅÁ·™ ÜÈ å ê¼ å¾ Áµð ?

(a) §ÒÁµ å ê ʲ ìð ëéÔå ìóÄå Ñ– Ó ¨éÕ² ìð ëÒÁµ å² µ å ÜÈ æÀ Äå

(b) „ßæ² µ å ÜÈ å² µå ÇÈ åâ –² ìå êÑ–Ó ¨éÕ² ìð ëÒÁµå ²µ å ÜÈ æÀ Äå

(c) „ßæ² µ å ÜÈ å² µå ÇÈ åâ –² ìå êÑ–Ó ¨éÕ˜µ å â ÿ å ˜µ å êÒÇÈ å íú

(d) §ÒÁµ å ê ÇÈ å ²™ ÜÈå ²µ å Ôå ÏÔå ÜÈ ðÀ ² ìå êÑ–Ó ¨éÕ² ìð ëÒÁµ å² µ å ÜÈ æÀ Äå

82. ’å ïÚÝ ôå ®êÔå °’ð ÎêÒÁµ 昙 ÇÈ å ²™ ÜÈ å² µå Áµ å Ôð êéÑð

„˜™ ² µå êÔå Êßå êÁµð ë´ µ å¶ ÇÈ å² ™ ¹æÔå êÔð ÒÁµ å ²µ ð ,

(a) ƒ² µ å Ï Ê·å ëÕê² ìå êê, Êð âÿ ð Êð â ÿð ² ìå êêÔå Ê· å ëÕê² ìå ì昙 ÇÈå ² ™ Ôå½ ¤¼ å Ô昙 ² µ å êÔå íúÁµå ê.

(b) ßå êÑêÓ ˜µ æÔå Ñê, Ê·å ëÕê² ìåêê Êð âÿ ð Êð â ÿð ² ìå êêÔå Ê·å ëÕê² ìå ì昙 ÇÈå² ™ Ôå½ ¤¼ å Ô昙 ² µ å êÔå íúÁµ å ê.

(c) Êð â ÿð Êðâ ÿð ² ìå êêÔå Ê· åëÕê² ìå êÑ–Ó Ôå ê² µ å µ åâ ÿå Äå êÆ Äð ´ µå ê½¾ ²µ å êÔå íúÁµå ê.

(d) (a) Ôå ê¼å ê¾ (b) Š²µ å µ åë

83. ÇÈ å âÿ ð² ìå êêâ– ’ð …ÒÁ· µ å Äå ˜µå âÿ å Äå êÆ ‡² ™ ÜÈ å êÔå íúÁµ å-² ™ ÒÁµå ’ðâ ÿå ’å Ò´ µ å ƒÒ×å ‡Ò¯æ˜µ å ê¼å ¾ Áµð .

(a) NO

(b) SO2

(c) O3

(d) ŠÑÓ Ôå î

84. ˜µ ð ëÓ éÊÑó ÔæÕê¤Ò˜µó (Ê· å ëÕê² ìå ê Ê– ÜÝ ‹² µ å êÔå íúÁµ å ê) ’ðâ ÿå ’å Ò´ µå ƒÒ×å Áµ å Ôð êéÑð ÇÈ å ²™ ¹æÔå ê Ê– é² µå ê¼å ¾ Áµð .

(a) „ßæ² µ å Áµ å ‡¼ æÉ Áµ å Äð

(b) Å阵 å ¤Ñ–Ó Äå Äå Á™ ˜µå âÿ å ê ’å ²µ å ˜µå êÔå íúÁµ å ê

(c) Ôæ¼ æÔå ² µå ¸ Áµå ÊÁµ å ÑæÔå ¹ð

(d) ŠÑÓ Ôå î

85. † ’ð â ÿå ˜™ Äå Ôå íú˜µ åâÿ å Ñ–Ó ² ìå ìæÔå íúÁµ å ê Ôå ê² µå ê „Ôå ¼ å¤Äå ˜µð ëâ – ÜÈ å Êßå êÁµ æÁµ å Äå Õé’å ²™ ÜÈ å Ñ昵å Áµå ÜÈ å ÒÇÈ å Äå ë ÍÑÔ昙 Áµ ð ?

(a) • Ŧ˜µ åâ ÿå ê

(b) ÇÈ ò Úݳ ’æÒ×å ˜µå âÿ å ê

(c) Ñð ëéßå ˜µå âÿ å ê

(d) ŠÑÓ Ôå î

86. Ôå êº » Äå Ñ– Ó² µ å êÔå ßå ëâÿ å ê ’å Áµ å ˜µ æ¼ å Ð ŠÚÈ å ê± ?

(a) 0.475 ÅÒÁµ å 2.00 mm

(b) 0.475 ÅÒÁµ å 0.895 mm

(c) 0.075 ÅÒÁµ å 0.002 mm

(d) 0.002 ŠÒ.ŠÒ.˜™ Ò¼ å ’å ™ Ôåê

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21 (33 – A)

80. Ecology is defined as the study of

(a) Relation between organisms

to their environment

(b) Relation between groups of

organisms to their

environment

(c) Both (a) & (b)

(d) None

81. A tropic level of organism

represents

(a) An organism’s position in a

biome

(b) An organism’s position in a

food chain

(c) Group of organism’s in the

food chain

(d) An organism’s position in

an ecosystem

82. The major environmental impact

of agriculture is

(a) Conversion of forest land to

crop land

(b) Conversion of grass land to

crop land

(c) Planting trees in crop land

(d) Both (a) and (b)

83. Fossil fuel burning contributes

(a) NO

(b) SO2

(c) O3

(d) All

84. Global warming effects on

(a) Food production

(b) Melting of Glaciers

(c) Climatic change

(d) All

85. Which of the following is a

recyclable non-renewable

resource ?

(a) Minerals

(b) Nutrients

(c) Metals

(d) All

86. The range of silt particle size in

soils is

(a) 0.475 to 2.00 mm

(b) 0.475 to 0.895 mm

(c) 0.075 to 0.002 mm

(d) less than 0.002 mm

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21 (34 – A)

87. 20 kN/m3 ² µ å ÜÈ åë À Ñ ‹’å Ôå ìæÄå ¼ åë’å Õ²µ å êÔå ÜÈ æÒÁ™ Ðé’å ²™ÜÝ Áµ å Ôå 꺻 Äå

Ôå ìæÁµ å ² ™² ìå êê ×ð é’å µ å 15 ² µ å ÚÈå ê± Åé²™ Äå ƒÒ×å Ôå Äå êÆ ßðëÒÁ™ Áµð . † Ôå êº » Äå Ôå ìæÁµ å ² ™² ìå ê „Áµ å Ф¼ð ² ìåê ÇÈ å ÐÔå ìæ¸

(G = 2.65) ŠÚÈ å ê± ?

(a) 78.9%

(b) 89.7%

(c) 100%

(d) zero, ÜÈð ëÄð Æ ( ×å ëÄå Ï)

88. Ç· È å Åé’å ² µå ¸ Áµ å ( ÜÈ å Ò›å ®±Äð ² ìå ê) coefficient

Äå êÆ † ’ðâ ÿå ˜™ Äå Ôå íú˜µ åâ ÿå Ñ– Ó ² ìå ìæÔå íúÁµ å Äå êÆ Ñð ’å ”ßæ’å Ñê Êâÿ å ÜÈ å Ñ昵 å ê¼ å¾Áµ ð ?

(a) ›å Åé’å ²µ å Áµ å ÜÈ å Ôå ê² ìå êÁµå ÇÈ å ÐÔå ìæ¸

(b) ›åÅé’å²µå Áµå ÇÈåÐÔåìæ¸ (ÔåìæÏ ™Æ®ëÏ ó)

(c) ÜÈæÒÁµåмð²ìåê ÇÈåÐÔåìæ¸ (ÔåìæÏ ™Æ®ëÏ µó)

(d) ÜÈ æÒÁµ å м ð ² ìå ê ÜÈ å Ôå ê² ìå êÁµå ÇÈå ÐÔå ìæ¸

89. emax = 1.12, emin = 0.6 Ôå ê¼å ê¾

enat = 0.9 ßð ëÒÁ™ ² µå êÔå Ôå êº » Äå ÜÈ æÇÈð é’åÛ ÜÈ æÒÁµ å м ð ’ð âÿ å ˜™Äå Ôå íú˜µå âÿ å Ñ–Ó ² ìåìæÔå íúÁµ å ê ?

(a) 0.42

(b) 0.24

(c) 0.62

(d) 0.26

90. Ôå êº » Äå Ñ– Ó ÜÈ æÔå ìæÄå Ï Ôå ϼ æÏÜÈ åÁµ å ÕÇ·È å Ñ¼ð ² ìå êê _______

(a) e < 0.5

(b) e > 0.75

(c) e = 0.55 ²™ ÒÁµ å 0.75

(d) Ôð êéÑ– Äå Ôå íú˜µå âÿ å Ñ–Ó ² ìå ìæÔå íúÁµåë ƒÑÓ

91. Ôå êº » Äå ¼ æâ – ’ð ÜÈ æÔå êÁ¿ ·µ å ùϤ ÜÈ å Õêé’å ²µ å ¸ ( Ê–²ìåê²™Ò µó ’ðÇÈæÜÝ ° …’ðÖéÚÈåÄó) ²ìåìæÔå íúÁµåê ?

(a) Nc > Nq

(b) Nq < Nc

(c) Nc = Nq

(d) Nc = 2Nq

92. ¼ ðëÑð ² ìå ê Ôå ßåÄå Ê· æ² µå ÇÈ å ²™é’ð Û ² ìå êÑ– Ó , ÜÝ À² µå ¼ð ÇÈ å ÐÔå ìæ¸ Ôå íú ¼ð ëÑð ² ìå ê Ôð êéÑ– Äå ÇÈ å н Ê· æ² µ å Ôå ïÁ™ Âà ² ìå êÄå êÆ ______ ˜™ Ò¼ å ’å ™ Ôð ê „˜µ å êÔå Ôå² µ ð µ ð ÅÔå ¤àÜÈå Ñ昵 åê¼ å ¾ Áµ ð .

(a) 0.005 ŠÒŠÒ/ µ å Ò ð

(b) 0.02 ŠÒŠÒ/˜µ å Ò ð

(c) 0.1 ŠÒŠÒ/˜µå Ò ð

(d) 1 ŠÒŠÒ/˜µ å Ò ð

93. ÜÝ Ôð êÒ¯ó ’æÒ“Ðé¯ó Äð ÑßæÜÝ ˜µð

ÜÈ æÔå ìæÄå ÏÔ昙 §Áµ å ™ ÜÈ å Ñ昵 å êÔå ôð éÒʲ µó ŠÚÈ å ê± ?

(a) 50 ² µ å Ñ– Ó 1 ² ™ ÒÁµ å 60 ²µ å Ñ–Ó 1 ² µ å Ôå ²µ 𠘵ð

(b) 50 ² µ å Ñ– Ó 1 ² ™ ÒÁµ å 70 ²µ å Ñ–Ó 1 ² µ å Ôå ²µ 𠘵ð

(c) 40 ² µ å Ñ– Ó 1 ² ™ ÒÁµ å 50 ²µ å Ñ–Ó 1 ² µ å Ôå ²µ 𠘵ð

(d) 50 ² µ å Ñ– Ó 1 ² ™ ÒÁµ å 65 ²µ å Ñ–Ó 1 ² µ å Ôå ²µ 𠘵ð

94. 6 Õê鮲 µ ó ÕéÑó Êð éÜÈ ó˜µð 100

Õê鮲 µ ó˜µ åâ ÿå ÇÈ å ²™ Á·™ ² ìå ê ÜÈ å Ôå ìæÄæÒ¼ å²µ å ½ ² µå êÕÄå Ñ–Ó ‹’å ÇÈ å Á¿· µå ² µå ÜÈ ð¾² ìå ê ² ìå ìæÒ½ Ð’å ƒ˜µ å Ñ ŠÚÈ å ê± ?

(a) 0.20 Õêé

(b) 0.18 Õêé

(c) 0.10 Õêé

(d) 0.09 Õêé

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21 (35 – A)

87. A compacted soil sample with a

bulk unit weight of 20 kN/m3 has

a water content of 15%. The

degree of saturation (G = 2.65) of

this soil sample is

(a) 78.9%

(b) 89.7%

(c) 100%

(d) zero

88. The coefficient of consolidation

is used to calculate

(a) Time rate of consolidation

(b) Magnitude of consolidation

(c) Magnitude of compaction

(d) Time rate of compaction

89. The relative density of a soil

having emax = 1.12, emin = 0.6

and enat = 0.9 is

(a) 0.42

(b) 0.24

(c) 0.62

(d) 0.26

90. For general shear failure in soils :

(a) e < 0.5

(b) e > 0.75

(c) e = 0.55 to 0.75

(d) None of the above

91. In Bearing Capacity Equation for

soils :

(a) Nc > Nq

(b) Nq < Nc

(c) Nc = Nq

(d) Nc = 2Nq

92. In a pile load test, each load

increment on the pile is

maintained till the rate of

settlement becomes less than

(a) 0.005 mm/hour

(b) 0.02 mm/hour

(c) 0.1 mm/hour

(d) 1 mm/hour

93. The Camber generally provided

for cement concrete pavement is

(a) 1 in 50 to 1 in 60

(b) 1 in 50 to 1 in 70

(c) 1 in 40 to 1 in 50

(d) 1 in 50 to 1 in 65

94. The Mechanical widening of a

single lane road at a horizontal

curve of radius 100 metres for a

wheel base of 6 metre is

(a) 0.20 m

(b) 0.18 m

(c) 0.10 m

(d) 0.09 m

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21 (36 – A)

95. CL ½ ² µå êÔå íúÁµ æ²™ , SL Êð é² µ ð Á™ “”˜µð

½ ² µå ꘙ ÜÝ Áµ å (Switch Lead) Áµ æ² ™ Ôå ê¼å ê¾

L ßð ë² µ å ßð ë阵å êÔå íúÁµ å’ð” ÜÈ å ÒÊÒÁ· ™ ÜÝ Áµ åå Áµ æ² ™ ² ìå ê Áµ åë² µå „˜™ Áµ å ² µð , „˜µ ð

(a) CL = SL + L

(b) L = SL + CL

(c) SL = CL + L

(d) CL = L – SL

96. ˜µ å µ å ÜÈ å ê Äð ÑßæÜÈå ꘵ åâÿ å Ñ–Ó ð ñ Êæ² µ ó µ åâ ÿå Äå êÆ ’ð âÿ å ™ Äå Ò¼ ð §Áµå ˜™ ÜÈå Êßå êÁµ 昙 Áµ ð .

(a) ÕÜÈ å ¾² µ å ÜÈå ÒÁ· ™ ÜÈ æÀ Äå µ åâ ÿå Ñ– Ó

(b) ƒÄå êÑÒÊÄæ ÜÈ å ÒÁ· ™ ÜÈ æÀ Äå ˜µ åâ ÿ å Ñ– Ó

(c) ÕÜÈ å ¾² µ å ¹æ Ôå ê¼ å ê¾ ÜÈ å Ò’ð ëéôå Äå Š² µ ð µ åë ÜÈ å ÒÁ·™ ÜÈ æÀ Äå ˜µ åâ ÿå Ñ–Ó

(d) ÕÜÈ å ¾² µ å ¹æ ÜÈ å ÒÁ·™ ÜÈ æÀ Äå ÁµåÑë Ó ƒÑÓ …ÑÓ Ôð ÜÈ å Ò’ðëéôå Äå ÜÈ å ÒÁ· ™ ÜÈæÀ Äå Áµ å Ñë Ó ƒÑÓ .

97. ÜÈ å Òôæ²µ å ÜÈ æÔå êÁ¿ · µå ùϤ ŠÒÁµå ² µð

(a) ص å Á™¼ å ’æÑ’ð ” §ÒÁµå ê ÇÈ å Á¿ ·µ å Áµå Ñ– Ó ÜÈ å Òôå² ™™ ÜÈ å êÔå Ôæßå Äå ˜µå âÿ å µ å² ™ÚÈ å ³ ÜÈ å Ò•ÿ ð Ï

(b) §ÒÁµ å ê ÇÈ å Á¿ · µå Áµ å Ñ– Ó ÜÈ åÒôå ² ™™ ÜÈå êÔå Ôæßå Äå ˜µ åâ ÿå ˜µå ² ™ ÚÈ å ³ ÜÈ å Ò• ÿð Ï

(c) ص å Á™¼ å ‡Áµ å ’ð ” §ÒÁµ å ê ÇÈ å Á¿· µå Áµ å Ñ–Ó ÜÈ å Òôå² ™™ ÜÈ å êÔå Ôæßå Äå ˜µå âÿ å µ å² ™ÚÈ å ³ ÜÈ å Ò•ÿ ð Ï

(d) Ôð êéÑ– Äå ² ìå ìæÔå íúÁµå ê ƒÑÓ

98. † ’ð â ÿå ’å Ò´ µ å ² ìå ìæÔå ÜÈ åÒôæ² ™ ÜÈ å Ò’ð é¼å Ôå ÏÔå ÜÈ ðÀ ( traffic signal system) ˜µ å â ÿ å Ñ–Ó „Ôå ¼ å¤Äæ ‡Áµ å  (cycle length) Ôå ê¼ å ê¾ „Ôå ¼ å¤Äå ÕÊ· æ µ å Ôå íú (cycle division)

ÜÈ å Ö² ìå êÒôæÑ–¼ å Ô昙 Êðé² µ ð Êð é² µð -² ìå ì昙 ²µ å ê¼ å ¾ Áµ ð ?

(a) ‹’å ’æÑ– ’å Ôå ÏÔå ÜÈ ðÀ (Simultaneous)

(b) ÇÈ å ² ìå ì椲 ìå ê Ôå ÏÔå ÜÈ ðÀ

(c) ÜÈ å ²µ åâ ÿå Ôå êêÒôå ÑÄð² ìå ê Ôå ÏÔå ÜÈ ðÀ

(d) ÜÈ å êÑÊ· å Ô昙 Ê昵 å ÊÑÓ Ôå êêÒôå ÑÄð ² ìå ê Ôå ÏÔå ÜÈð À

99. §ÒÁµ å ê ² µå ÜÈ ð¾ ² ìå ê ÇÈå Á¿ ·µ å Áµ å Ñ–Ó Äå ÜÈ å ² µ æÜÈ å² ™ Áµ ðñ Å’å ÜÈ å Òôæ²µ å Ôå íú 300 ÜÝ ÕÇÝ ™ „˜™ Áµ ð . Õ´ ™ ŠÇ·È ó 2.5 Ôå ê¼ å ê¾ ÜÈ å Òôæ² µ å Áµ å Êð â ÿå Ôåº ˜µ ð² ìå êë ×ð é 7.5 ² µå ÚÝ ±Áµ æ µ å 10 Ôå ÚÈå ¤˜µå â– ˜µð ÜÈ å Òôæ²µ å Áµå ÇÈ å íúÄå² µ æÔå¼ å¤Äð µ å âÿ å Äå êÆ ²µ å ¡ÜÝ .

(a) 3.8 msa

(b) 23.5 msa

(c) 45.4 msa

(d) 16 msa

100. IRC ÇÈ å Ð’æ²µ å S.S.D. ² ìå êÄå êÆ Ñð ’å ”ßæ’å êÔ昵 å ôæÑ’å Å µð ’æ¸ Êð é’æÁµ å Ê· å ëÔð êéÑð Í Ôð êéÑ– Äå Ôå ÜÈåê¾ ÕÄå Š¼ å¾ ² µå Ôå íú ² ìå ìæÔå íúÁµ 昙 Áµ ð ?

(a) 0.10 Õêé

(b) 0.15 Õêé

(c) 0.25 Õêé

(d) 1.20 Õêé

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21 (37 – A)

95. If CL is the Curve Lead, SL is the

Switch Lead and L is the Lead

distance for a turnout, then

(a) CL = SL + L

(b) L = SL + CL

(c) SL = CL + L

(d) CL = L – SL

96. In rigid pavements, tie bars may

be provided in

(a) Expansion joints

(b) Longitudinal joint

(c) Both expansion and

contraction joints

(d) Neither in the expansion nor

in the contraction joint

97. Traffic capacity is

(a) Maximum number of

vehicles / Lane / Unit time

(b) Maximum number of

vehicles / Lane

(c) Maximum number of

vehicles/Lane/Unit length

(d) None of the above

98. In which of the following traffic

signal systems are the cycle

length and cycle division

automatically varied ?

(a) Simultaneous system

(b) Alternate system

(c) Simple progressive system

(d) Flexible progressive system

99. The average daily traffic on a

stretch of road is 300 CVPD.

Design traffic repetitions for

10 years, when VDF is 2.5 and

traffic growth is 7.5%.

(a) 3.8 msa

(b) 23.5 msa

(c) 45.4 msa

(d) 16 msa

100. As per IRC, in the calculation of

S.S.D., the height of the object

above the surface that should be

visible to the driver is

(a) 0.10 m

(b) 0.15 m

(c) 0.25 m

(d) 1.20 m

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¡¼åê¾ Ê²µåßå’攘™ ÜÈåÀâÿåSPACE FOR ROUGH WORK

21 (38 - A)

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¡¼åê¾ Ê²µåßå’攘™ ÜÈåÀâÿåSPACE FOR ROUGH WORK

(39 - A) 21

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ÔåÚÈå¤Äó ’ðëé µó

† ÇÈåÐ×ðÆÇÈåíúÜݾ’ð²ìåêÄåêÆ ¼ð²µð²ìåêêÔåÒ¼ð ÅÔå꘵ð ½â–ÜÈåêÔåÔå²µð˜µåë …ÁµåÄåêÆ ¼ð²µð²ìåê’åë´µåÁµåê.

ÇÈåÐ×ðÆÇÈåíúÜݾ’ðÅÁ™¤ÚÈå± ÇÈå½Ð’ð

(ÇÈå½Ð’ð-II)úúúúú

µå²™ÚÈå³ ÜÈåÔåê²ìåê ‘ 2 µåÒ ð µåâÿåê µå²™ÚÈå³ ƒÒ’å µåâÿåê ‘ 200

DA

’åÐÔåê ÜÈåÒ•ÿðÏ :ÕÚÈå²ìåê ÜÈåÒ’ðé¼å :21

ÜÈåëôåÄð˜µåâÿåê1. ÇÈå²™é’ðÛ ÇÈæвµåÒÊ·å µðëÒ µå ¼å’åÛ¸Ôðé õ.ŠÒ.„²µó. ‡¼å¾²µå ßæâÿð²ìåêÑ–Ó ÇÈåÐ×ðÆ ÇÈå½Ð’ð ×ðÐ麲ìåêÄåêÆ µåê²µåê¼åê Ôåìæ µåêÔå

ÔðëÁµåÑê, † ÇÈåÐ×ðÆ ÇÈåíúÜݾ’ð²ìåêÑ–Ó ÔåêêÁ™Ð¼åÔæ µåÁµå ƒÁ¿·µåÔæ ßå²™Á™²µåêÔå ƒÁ¿·µåÔæ ²ìåìæÔåíúÁµðé ÇÈåíú® …ÑÓÁ™²µåêÔå ƒÁ¿·µåÔæÔåêêÁ™Ð¼åÔæ µåÁµå ÇÈåÐ×ðÆ µåâÿåê …¼æÏÁ™ §âÿå µðëÒ ™ÑÓÔðÒÊêÁµåÄåêÆ ÅéÔåíú ÇÈå²™é“ÛÜÈå¼å’å”ÁµåêÂ. ÔðêéÑ–Äå ²ìåìæÔåíúÁµðé ÁµðëéÚÈå’åÒ µåêÊÒÁµåÑ–Ó ƒÁµåÄåêÆ àÒ½²µåê ™ÜÝ ÑÊ·åùÏÕ²µåêÔå ×ðÐ麲ìåê ÇÈå²™ÇÈåÔæÁµå Êðé²µð ÇÈåÐ×ðÆ ÇÈåíúÜݾ’ð²ìåêÄåêÆ ÇÈå µð²ìåê¼å’å”ÁµåêÂ.

2. ƒÊ·åùÏÁ¿·™¤²ìåêê ÇÈåÐ×ðÆ ÇÈåíúÜݾ’ð²ìåê ÔåÚÈå¤Äó ’ðëé µó A, B, C ƒÁ¿·µåÔæ D, ƒÄåêÆ Ôåê¼åê¾ ÄðëéÒÁµåº ÜÈåÒ•ÿðϲìåêÄåêÆ OMR

‡¼å¾²µå ÇÈå½Ð’ð²ìåêÑ–Ó ƒÁµå’æ” ™ §Áµå ™ÜÈåÑæ ™²µåêÔå ÜÈåÀâÿåÁµåÑ–Ó Ê²µðÁµåê ÜÈåÒ’ðé¼å (ŠÄó ’ðëé µó) µðëâ–ÜÈåÊðé’åê. ßæ µåëصåÁ™¼å ÜÈåÀâÿåÁµåÑ–Ó ¼æÔåíú Ôåê¼åê¾ ÜÈåÒÕé’åÛ’å²µåê ÜÈåà Ôåìæ´™²µåêÔåíúÁµåÄåêÆ •¡¼å ÇÈå´™ÜÝ’ðëâÿåäÊðé’åê. õ.ŠÒ.„²µó.ßæâÿð²ìåêÑ–Ó ½â–ÜݲµåêÔå ²ìåìæÔåíúÁµðé ÔåìæིìåêÄåêÆ Ê·å½¤ Ôåìæ µåêÔåíúÁµåê/ŠÄó ’ðëé µó Ôåìæ µåêÔåíúÁµåê ƒÊ·åùÏÁ¿·™¤ µåâÿå¦ÔæÊæ²™²ìåìæ ™²µåê¼å¾Áµð. §ÒÁµåê Ôðéâÿð ʷ彤 Ôåìæ µåÁ™ÁµåÂÑ–Ó/¼åÇÝÉÁµåÂÑ–Ó ƒÒ¼åßå õ.ŠÒ.„²µó. ‡¼å¾²µå ßæâÿð²ìåêÄåêƽ²µåÜÈ唲™ÜÈåÑæ µåêÔåíúÁµåê.

3. ÇÈå’å”ÁµåÑ–Ó §Áµå ™ÜݲµåêÔå ôò’åÁµåÑðÓé ÅÔåêÍ ÄðëéÒÁµåº ÜÈåÒ•ÿðϲìåêÄåêÆÄåÔåêëÁ™ÜÈåÊðé’åê. ÇÈåÐ×ðÆ ÇÈåíúÜݾ’ð²ìåêÑ–Ó Êðé²µð ‹ÄåÄåëÆ Ê²µð²ìåêÊæ²µåÁµåê.

4. † ÇÈåÐ×ðÆ ÇÈåíúÜݾ’ð 100 ÇÈåÐ×ðÆ µåâÿåÄåêÆ §âÿå µðëÒ ™²µåê¼å¾Áµð. ÇÈåн²ìðëÒÁµåê ÇÈåÐ×ðƲìåêê 4 ‡¼å¾²µå µåâÿåÄåêÆ §âÿå µðëÒ ™²µåê¼å¾Áµð.ÅéÔåíú ‡¼å¾²µå ÇÈå½Ð’ð²ìåêÑ–Ó µåê²µåê¼åê Ôåìæ µåÊðé’ðÒÁ™ÅÜÈåêÔå ‡¼å¾²µåÔåÄåêÆ „²ìðê” Ôåìæ ™’ðëâ–ä. §ÒÁµåê Ôðéâÿð ƒÑ–Ó §ÒÁµå“”Ò¼åßðôåê¢ ÜÈå²™²ìåìæÁµå ‡¼å¾²µå µåâ–Ôð²ìðêÒÁµåê ÅéÔåíú Ê·æÕÜÝÁµå²µð ƒ¼åêϼå¾ÔåêÔðÅÜÈåêÔå ‡¼å¾²µå’ð” µåê²µåê¼åê Ôåìæ ™. ‹Äðé „Áµå²µåëÇÈåн ÇÈåÐ×ðÆ µð ÅéÔåíú ’ðéÔåÑ §ÒÁµåê ‡¼å¾²µåÔåÄåêÆ Ôåìæ¼åÐ „²ìðê” Ôåìæ µåÊðé’åê.

5. ŠÑæÓ ‡¼å¾²µå µåâÿåÄåêÆ ÅÔåê µð §Áµå ™ÜÈåÑæ ™²µåêÔå ÇÈåмðÏé’å ‡¼å¾²µå ÇÈå½Ð’ð²ìåêÑ–ÓÓ (OMR Sheet) ’ðéÔåÑ ’åÇÈåíþÉ ƒÁ¿·µåÔæ ÅéÑ–×æÎê²ìåê ÊæÑóÇÈæÎêÒ¯ó ÇÈðÅÆÄåÑ–Ó Ôåìæ¼åÐ µåê²µåê¼åê Ôåìæ µåÊðé’åê. ‡¼å¾²µå ÇÈå½Ð’ð ßæâÿð²ìåêÑ–ÓÄå ÜÈåëôåÄð µåâÿåÄåêÆ

µåÔåêÅÜÈåêÔåíúÁµåê.6. ŠÑæÓ ÇÈåÐ×ðÆ µåâ– µð ÜÈåÔåìæÄå ƒÒ’å µåâÿåê. ŠÑæÓ ÇÈåÐ×ðÆ µåâ– µåë ‡¼å¾²™Üݲ™.7. ¡¼åê¾ ’ðÑÜÈå’攘™ ßæâÿð˜µåâÿåÄåêÆ ÇÈåÐ×ðÆ ÇÈåíúÜݾ’ð²ìåê ’ðëÄð²ìåêÑ–Ó ÜÈðé²™ÜÈåÑ昙Áµð. ÇÈåÐ×ðÆÇÈåíúÜݾ’ð²ìåê …ÄåêÆâ–Áµå ²ìåìæÔå

Ê·æ µåÁµåÑ–Ó²ìåêë ÅéÔåíú ²ìåìæÔå ²™é½²ìåê µåê²µåê¼åÄåêÆ Ôåìæ µå¼å’å”ÁµåÂÑÓ.8. ÇÈå²™é’ðÛ²ìåê Ôåêê’æ¾²ìåêÔåÄåêÆ ÜÈåë¡ÜÈåêÔå ƒÒ½Ôåê µåÒ ð Êæ²™ÜÝÁµå ¼å’åÛ¸Ôðé ‡¼å¾²µå ÇÈå½Ð’ð²ìåê ßæâÿð²ìåêÑ–Ó …ÄæÆÔåíúÁµðé

µåê²µåê¼åêÔåìæ µåêÔåíúÁµåÄåêÆ ÅÑ–ÓÜÈåÊðé’åê. ÜÈåÒÕé’åÛ’å²µåê ÊÒÁµåê ÅÔåêÍÑ–Ó²µåêÔå ‡¼å¾²µå ÇÈå½Ð’ð²ìåê ßæâÿð²ìåêÄåêÆ ¼åÔåêÍ Ôå×å’ð”¼ð µðÁµåê’ðëÒ µåê Ñð’å”’ð” ¼ð µðÁµåê’ðëâÿåêäÔåÔå²µð µåë ÅÔåêÍ ÅÔåêÍ „ÜÈåÄåÁµåÑ–Ó²ìðêé ’åêâ–½²µå¼å’å”ÁµåêÂ.

9. ÇÈåÐ×ðÆ µåâÿåê ’åÄåÆ µå Ôåê¼åê¾ „Ò µåÓ Ê·æÚÈð²ìåêÑ–Ó²µåê¼å¾Ôð. ’åÄåÆ µå ÇÈåÐ×ðÆ µåâÿåÑ–Ó ÜÈåÒÁµðéßå ‡Ò¯æÁµå²µð, Áµå²ìåêÕ®ê± „Ò µåÓ Ê·æÚÈð²ìåêÇÈåÐ×ðƘµåâÿåÄåêÆ ˜µåÔåêÅÜÈåêÔåíúÁµåê. ÇÈåÐ×ðÆ ÇÈå½Ð’ð²ìåê ÇÈåÐ×ðƘµåâÿåÑ–Ó ²ìåìæÔåíúÁµðé ˜µðëÒÁµåјµåâ–Áµå²µåë „Ò˜µåÓÊ·æÚÈð²ìåê ÇÈåÐ×ðƘµåâÿðéƒÒ½ÔåêÔæ ™²µåê¼å¾Ôð.

ÄðëÒÁµåº ÜÈåÒ•ÿðÏ

²ìåìæÔåíúÁµðé ²™é½²ìåê ÔðëÊðñÑó Ç·ÈðùîéÄó, ’æÏÑó ’åêÏÑð鮲µó Ôåê¼åê¾ …¼å²µð ²™é½²ìåê ŠÑð’æ±øÅ’ó/’åÔåêêÏÅ’åðéÚÈåÄóÜÈæÁ·µåÄå µåâÿåê …¼æÏÁ™ µåâÿåÄåêÆ ÇÈå²™é’æÛ ’ðéÒÁµåÐÁµå „Ôå²µå Áµðëâÿå µð ¼å²µåêÔåíúÁµåÄåêÆ ÅÚÈðéÁ·™ÜÝÁµð.

Note : English version of the instructions is printed on the front cover of this booklet.21-A


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