Abstract

Compact military-grade jet engines offer many potential applications, including use in remotely piloted vehicles, but can be expensive to use for research and development purposes. A study aimed at increasing the power and thrust output of an inexpensive commercial compact engine found a material limitation issue in the turbomachinery. To gain the additional power, hotter turbine inlet temperatures were required. This temperature increase exceeded the limit of current uncooled metal turbine rotors but could be achieved through turbine rotors made from ceramics, such as silicon nitride, which would allow an increase in the thrust and power output by a factor of 1.44. Current ceramic turbine manufacturing methods are costly and time-consuming for rapid prototyping, but recent breakthroughs in ceramic additive manufacturing have allowed for cheaper methods and faster production which are beneficial for use in research and development when designs are being rapidly changed and tested. This research demonstrated, through finite element analysis, that a silicon nitride turbine rotor could meet the increased turbine inlet temperature conditions to provide the desired thrust and power increase. Furthermore, as a proof of concept, an additively manufactured drop-in replacement alumina turbine rotor was produced for the JetCat P400 small-scale engine in a manner that was cost-effective, timely, and potentially scalable for production. This compact engine was used to demonstrate that a cost-effective ceramic turbine could be manufactured. At the time of publication, the desired ceramic material, silicon nitride, was not available for additive manufacturing.

References

1.
Official Website – JetCat
,” World Wide Web Page. https://www.jetcat.de/en.
2.
Mattingly
,
J. D.
,
2006
,
Elements of Propulsion: Gas Turbines and Rockets
,
American Institute of Aeronautics and Astronautics
,
Reston, VA
.
3.
Cheah
,
C. M.
,
Chua
,
C. K.
,
Lee
,
C. W.
,
Feng
,
C.
, and
Totong
,
K.
,
2005
, “
Rapid Prototyping and Tooling Techniques: A Review of Applications for Rapid Investment Casting
,”
Int. J. Adv. Manuf. Technol.
,
25
(
2
), pp.
308
320
.
4.
Allen
,
A. J.
,
Levin
,
I.
, and
Witt
,
S. E.
,
2020
, “
Materials Research & Measurement Needs for Ceramics Additive Manufacturing
,”
J. Am. Ceram. Soc.
,
103
(
11
), pp.
6055
6069
.
5.
Rueschhoff
,
L.
,
2021
,
Ceramic Additive for Aerospace
,
Springer International Publishing
,
New York
.
6.
Ashby
,
M. F.
,
2011
,
Materials Selection in Mechanical Design
, 4th ed.,
Butterworth-Heinemann
,
Oxford
.
7.
Callister
,
W. D.
, and
Rethwisch
,
D. G.
,
2009
,
Fundamentals of Materials Science and Engineering, An Introduction
, 8th ed.,
Wiley
,
New York
.
8.
Bocanegra-Bernal
,
M. H.
, and
Matovic
,
B.
,
2010
, “
Mechanical Properties of Silicon Nitride-Based Ceramics and Its Use in Structural Applications at High Temperatures
,”
Mater. Sci. Eng. A
,
527
(
3
), pp.
1314
1338
.
9.
Reed
,
J. S.
,
1988
,
Introduction to the Principles of Ceramic Processing
,
Wiley
,
New York
.
10.
Rahaman
,
M. N.
,
2017
,
Ceramic Processing and Sintering
, 2nd ed.,
CRC Press
,
Boca Raton, FL
.
11.
Olhero
,
S. M.
,
Torres
,
P. M. C.
,
Mesquita-Guimarães
,
J.
,
Baltazar
,
J.
,
da Cruz
,
J. P.
, and
Gouveia
,
S.
,
2022
, “
Conventional Versus Additive Manufacturing in the Structural Performance of Dense Alumina-Zirconia Ceramics: 20 Years of Research, Challenges and Future Perspectives
,”
J. Manuf. Process
,
77
, pp.
838
879
.
12.
The Admaflex Technology – Stereolithography Digital Light Processing
,” World Wide Web Page. https://www.admateceurope.com/admaflex-technology.
13.
Cramer
,
C. L.
,
Wilt
,
J. K.
,
Campbell
,
Q. A.
,
Han
,
L.
,
Saito
,
T.
, and
Nelson
,
A. T.
,
2021
, “
Accuracy of Stereolithography Printed Alumina With Digital Light Processing
,”
Open Ceram.
,
8
, p.
100194
.
14.
Hampshire
,
S.
,
2009
, “
Silicon Nitride Ceramics
,”
Mater. Sci. Forum
,
606
, pp.
27
41
.
15.
Lam
,
B.
,
Kassner
,
C.
,
Kemp
,
J.
,
Leicht
,
B.
,
Bohan
,
B. T.
, and
Rueschhoff
,
L.
,
2023
, “
Delamination Mitigation in Additively Manufactured Al2O3 Via Enhanced Thermal Post-Processing
,”
Int. J. Appl. Ceram. Technol.
16.
Rueschhoff
,
L. M.
,
Trice
,
R. W.
, and
Youngblood
,
J. P.
,
2017
, “
Near-Net Shaping of Silicon Nitride Via Aqueous Room-Temperature Injection Molding and Pressureless Sintering
,”
Ceram. Int.
,
43
(
10
), pp.
10791
10798
.
17.
Leicht
,
B.
,
2022
, “
Manufacturing of a Ceramic Turbine Rotor for a Compact Jet Engine
,” Master’s thesis,
Air Force Institute of Technology
.
18.
AdmaPrint – Advanced Ceramics for High-Demanding Applications – Alumina
. World Wide Web Page. https://admateceurope.com/ceramics.
19.
Kingery
,
W. D.
,
Bowen
,
H. K.
, and
Uhlmann
,
D. R.
,
1976
,
Introduction to Ceramics
, 2nd ed.,
Wiley
,
New York
.
You do not currently have access to this content.