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M.A.T.I

Russian State Technological University

Thursday, December 29, 2011 0 comments





Cooperation with ”Salute” aviation
engine manufacturing enterprise





EVOLUTION OF THE AVIATION GAS TURBINE ENGINES


Generation Type Years of production Gas temperature Engine thrust, kg Specific weight
Engine weight
thrust
I
II
III
IV
V
RD-45
AL-7
AL-21
AL-31
AL-41
1940-50
1950-60
1960-70
1980-2000
after 2000
1000
1250
1400
1650
1850
2270
9600
11300
12500
0.35-0.6
0.18-0.22
0.14-0.18
0.12
0.1-0.08


AL-31F - turbo-jet bypass engine with afterburning
chamber and upside positioning of the engine control units




Materials applied in production of aviation engines

Materials Engine generation
II III IV
High-temperature alloys and steel 28% 41% 58%
Stainless steel 26% 12% 12.6%
Titanium alloys 5.5% 11.5% 31%
Aluminum alloys 7.3% 1.8% 0.28%


AL-31FP
turbo-jet bypass engine with afterburning chamber
and rotary jet nozzle


Technical parameters:
Diameter (entry) – 905 mm
Length- 4990 mm
Maximum thrust – 12500 kg
Mass – 1570 kg
      The engine possess unique ability to function at wide-range altitudes and flight speed, stable functioning at the afterburning mode and deep pumpage, effective functioning at steep spin and inverted spin. The engine provides unique maneuverability for the aircraft


EVOLUTION OF AL-31F TURBO-JET ENGINE



EVOLUTION OF JET ENGINES

Generation VI
1975 – 85
V
1995-2000
VI
2005-2010
Specific weight 0.125 0.1 0.05-0.08
Efficiency at afterburning 100% 115% 120 - 140%
Lifetime 1 1.5 - 2 Equal to the plane lifetime


Tendency in temperature increase in gas turbine engine



INVESTIGATION OF THE TEMPERATURE GRADIENT EFFECT
ON STRUCTURE OF THE HEAT-RESISTANT ALLOYS

The effect of the temperature gradient (G) at the interface of crystallization on dimensions of liquid-solid zone (λ)
A B
The effect of temperature gradient at the interface of crystallization on microstructure of the heat-resistant alloy
A – industrial technology at G = 30 °C/cm; λ = 350 μm
B – developed technology at G = 200 °C/cm; λ = 160 μm

Increase of the temperature gradient at the interface of crystallization provides:

  • Decrease of liquid-solid zone dimensions, where dendrite structure is being created
  • Formation of homogeneous fine dendrite structure with low porosity
  • Application of the existing equipment



MICROSTRUCTURE AND FATIGUE CHARACTERISTICS OF THE
ENGINE BLADES
(AL-31F ENGINE, 1st STAGE) MANUFACTURED BY
CASTING WITH HIGH GRADIENT CONTROLLED CRYSTALLIZATION



General view of the 1st stage blades manufactured by the method of high gradient controlled crystallization.


Behavior of high-temperature alloy mono-crystal under fatigue testing.



Microstructure of blade feather (a – transverse direction, b – longitudinal direction) and blade locking piece (c – transverse direction, d – longitudinal direction) of gas-turbine engine blade manufactured by the method of high gradient controlled crystallization, x 100. This method allows to increase the alloy strength on 10-15% and fatigue characteristics on 20-30%.


MODIFIED VACUUM INSTALLATION FOR CONTROLLED
CRYSTALLIZATION
Installation is designed for manufacturing mono-crystal casting articles (<= 200 mm) of complicated shape by the method of controlled crystallization.




Technical characteristics:
Power
Working media
Temperature of article heating
Temperature of crystallization
Velocity of crystallization
Productivity
320kW
Vacuum
1500°C
700°C
1-20 mm/min
10-12 smeltings/day



APPLICATION AND EFFICIENCY OF ADVANCED TECHOLOGIES FOR
GAS TURBINE BLADE COATINGS

1. Increasing of coating exploitation temperature, C:


Standard
Developed
2. Increasing of coating resource under high temperature oxidation:
Diffusive
Condensation
Condensation- Diffusive
950 C – 15000 hours
1100 C – 500-700 hours
1150-1200 C – 1500 hours

3. Efficiency of advanced technologies: Increasing of resource in compare with traditional aluminizing:
Diffusive
Condensation
Condensation - Diffusive
1.5-2
2-5
5-7
4. Application of advanced technologies in AL-31F, D 436T engines manufacturing

General view of turbine blades of
various engines with traditional
aluminizing on the inner and outer
surfaces
Nozzle blades and turbine
blades with protective
heat-resistant coatings



ION NITRATION OF COG - WHEELS

Installation “SALUT-60”



Technical characteristics:
1. Number of working chambers
2. Working temperatures, C
3. Working pressure, Pa
4. Power, kW
5. Maximum voltage, V
2
400-800
13-1330
70
1000
Kinetics of nitration layer forming




Hardness of the core


Treatment parameters: 530 OC, 36 hours, Pressure=3-20 GPa, gas media 95% N2 + 5% H2

Structure of nitration layer





   Main advantages
  • Low layer fragility
  • Low and stable thermal deformations
  • Low surface asperity
  • Double time decreasing of the process
  • Ecological safety
  • Increasing of the article exploitation characteristics



COMPARISON OF THE ION AND GAS NITRATION




EXPLOITATION PARAMETERS

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Cooperation with Khrunitchev
Space Center
Participation of MATI
scientists in Federal Space
Projects





Cooperation MATI with Khrunitchev
Space Center

Heavy class launch vehicle “Proton”





“Angara” family launch vehicles





Light class launch vehicle “Rockot”





Participation in Construction of the International Space Station





Unified Satellite Platform:
development of the small satellites family






Small Satellites



In 2001 Chrunitchev Space Center completed development of the satellite for space communication “Dialog”. Satellite has been developed on the basis of unified platform “Yakhta” . Estimated life-time – 10 years. Launch mass - 470–500 kg.



Accelerating Blocks

Chrunitchev Space Center is now actively working on development of 3 types accelerating blocks:
“Breeze KM”, “Breeze M” – both using long-term stored fuel and oxygen-hydrogen block.


     

“Breeze KM” block was developed for the light class launch vehicle “Rockot”.
“Breeze M” block was developed for new family of heavy class launchers “Proton – M” and “Angara”.





“Baikal” booster at Le Bourge Exhibition
France, June 2001
“Baikal” booster at MAKS Exhibition
Moscow, August 2001






Reusable booster “Baikal”










Application of reusable multiple start booster
“Baikal” in “Angara” launch vehicles design





Flight trajectory of “Baikal” 1-st stage booster