Post on 21-Dec-2015
Aero Engineering 315
Lesson 24
Performance—Thrust Required and
Thrust Available
Aircraft performance in the news
Thrust req’d & available objectives
Given a T-38 thrust required (TR) chart Find stall Mach, thrust req’d, min drag Mach
Find L/Dmax from thrust req’d or drag polar Understand importance of L/Dmax
Know relationship of induced & parasite drag at L/Dmax
Find velocity for L/Dmax from thrust req’d or drag polar State at what point max excess thrust occurs
Sketch thrust available (TA) versus velocity for mil and AB
Calculate changes in TA for changes in altitude
From T-38 charts find: TA, excess thrust (TX), max excess thrust, max Mach, and min Mach
State whether T-38 min Mach is thrust or stall limited
Thrust required in terms of V
SV
kWCSVT DR
2
22
212
10
So, since andCL = L
q Sq = V21
2
Parasite Drag Drag due to Liftvaries with V2 varies with 1/V2
= Wq S
qSCkqSCT LDR2
0Remember
Thrust Required (Parasite)
V (or M)
TR o
r D
TR = ½ V2 S CD,0 +
Let’s Look at Parasite Drag First…
Paras
ite D
rag
Thrust Required (+Induced)
V (or M)
TR o
r D
TR = ½ V2 S CD,0 + 2 kW2 / ( V2 S)
Now add in Induced Drag
Drag due to Lift
Paras
ite D
rag
Thrust Required (Total)
V (or M)
TR o
r D
Drag due to Lift Paras
ite D
rag
Then add them together…Thrust Required = Total Drag
VMin Thrust
TR,MIN
TR = ½ V2 S CD,0 + 2 kW2 / ( V2 S)
Note:Parasite = Induced
at min drag
Minimum Thrust Required
DL
WT
T
W
D
LR
R /
Stated another way:To minimize Thrust Required…
…maximizeLift/Drag
By rearranging we get another useful concept
min,RMax T
W
D
L
L/Dmax is a function of CD0 and k
At Min Drag, parasite drag = induced drag
kC2
1
C2
/kC
C
C
D
L
0,D0,D
D,0
D
L
Max
so: CDmin = CD,0 + CD,i = 2CD,0 = 2kCL
2
solving for CL:
CD,0 = CD,i or CD,0= kCL2
CL = (CD,0 /k)1/2
Example: T-37
Using CD = 0.02 + 0.057CL2 (from whole aircraft
lesson), S = 184 ft2 and W = 6,000 lb. @ SL (SA)
Find L/Dmax,, TRMIN, and V @ TRMIN
kCD
L
DMax 0,2
1
CL = (CD,0 /k)1/2 V = (2W/SCL)1/2
TRMIN = CD q SCD = 2CD,0
= 14.8
= 215.3 ft/s
= 405.4 lb
Thrust Available (TA)
Burner
High-Pressure Compressor
High-Pressure Turbine
Afterburner Flameholders Nozzle
Afterburner
Low-Pressure Compressor
Low-Pressure TurbineInlet
Afterburner Fuel Injectors
min
Vin
.mout
Vout
.
Thrust?
Continuity?
Mass flow equation?
min = mout
. .
m = AV.
TA = AV (Vout-Vin)
SLSLA TT
TA = m (Vout-Vin).
Thrust required is a function of the airframeThrust available is a function of the engine(s)
i.e. the amount of thrust the engine(s) produce
Military Thrust: full thrust without afterburner Depends on altitude:
Maximum Thrust: full thrust with afterburner Depends on altitude and Mach number:
SLSLA TT
Thrust Available
M) 0.7 + (1
SLSLA TT
Thrust Available vs. Thrust Req’d
V
T
Required
Available-Mil (dry)
Available-Max (wet)
VMAX(DRY) VMAX(WET)
TA vs. TR
This viper is flying at Edwards right now. GE132 motor in it, and it would not go above 0.98M at ~20,000 ft, level. It was configured with external tanks, conformal tanks, and 2 X 2000 lb bombs, ~45,000 GW viper. Lots o’ drag = lots of thrust required!
Excess Thrust (TX)
V
T
Required
Available-Mil (dry)
Available-Max (wet)
TA,MIL (at V1)
TR (at V1)
For a given velocity, say V1
Excess Thrust (at V1) = TA,MIL – TR
V
TTR
TA (DRY)
TA (WET)
TXMAXWET
TXMAXDRY
Maximum Excess Thrust
~ low altitude ~ high altitude
Minimum Speed
V
TTR
TA (DRY)
TA (WET)
V
TTR
TA (DRY)
TA (WET)
V
TTR
TA (DRY)
TA (WET)
V
TTR
TA (DRY)
TA (WET)
THRUSTLIMITED
VMIN
STALLLIMITED
VMIN
SL effect lowers the TA
Use our T-38
Given: W = 10,000 lbs. h = 10,000 ft
Find: MMIN
MMIN = 0.28
limited by stall
How About Higher?
Given: W = 10,000 lbs. h = 30,000 ft
Find: MMIN
MMIN = 0.45
limited by thrust
Even Higher?Given: W = 10,000 lbs. h = 40,000 ft
Find: MMIN for Mil Thrust, Max Thrust
Homework #26
Consider an airplane patterned after the twin-engine Beechcraft Queen Air executive transport. The airplane weight is 38,220 N, wing area is 27.3 m2, aspect ratio is 7.5, Oswald efficiency factor is 0.9, and zero-lift drag coefficient CD0
is 0.03. Calculate
the thrust required to fly at a velocity of 350 km/hr at (a) standard sea level and (b) an altitude of 4.5 km.
Homework #27
Given an 8,000 lb T-38 flying at 10,000 ft, determine: Thrust required (TR) at Mach 0.5 Thrust available in military power (TADRY
) at Mach 0.5 Thrust available in maximum power (TAWET
) at Mach 0.5
Excess thrust (TX) at Mach 0.5 (assume military power setting)
Mach number for minimum drag Minimum drag Minimum Mach number and what causes this limit
(thrust or stall) Maximum Mach number (assume maximum power
setting)
Next Lesson (T25)… Prior to class
Read 5.5 – 5.6 Complete problems 26, 27 and 28
In class Discuss power required and power
available This is different from thrust required!