TY - GEN
T1 - Investigation on the Design Method and Failure Mechanism of Silicon-Based MEMS Setback Arming Device
AU - Ni, Ziyang
AU - Liu, Ying
AU - Xie, Jin
AU - Liao, Yunlai
AU - Dai, Jun
N1 - Publisher Copyright:
© 2022, The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd.
PY - 2022
Y1 - 2022
N2 - The development of silicon-based microelectromechanical system (MEMS) technology provides a technological path for miniaturization of safety and arming system. Extreme overload condition in the application of artillery fuze poses a challenge for the silicon-based safety and arming system. Research on the design method for silicon setback device with a dynamic response which could effectively distinguish the accident drop and projection is still insufficient. The paper presents a novel structural design for the silicon-based micro-mass spring system which could be used as the setback arming device in artillery fuze. The device is fabricated by using a double-sided ICP etching process. The research of dynamic simulation test on the silicon-based setback arming device is conducted with a Marchette hammer test system and a centrifuge. Results show that there is a mismatching of overload characteristics and dynamic behaviour of silicon-based MEMS setback arming device. On this basis, the design of setback arming device is optimized to visibly present different responses to different high dynamic conditions. LS-DYNA dynamic simulation results show the launching load can be effectively distinguished from the accident drop by the improved design, with a displacement difference ∆D as high as 100 μm is achieved. The setback arming device is successfully interlocked under the projection load of 5000 g with duration time of 1 ms. On the contrary, the setback arming device cannot be interlocked under the accident drop overload of 15,000 g with duration time of 100 μs. The micro mass-spring system returns to its original position after the loading of accident drop. This paper establishes a design method for the setback arming of the silicon-based MEMS micro-mass spring system, which is of great significance to promote the development of miniaturization and intelligentization of artillery fuze.
AB - The development of silicon-based microelectromechanical system (MEMS) technology provides a technological path for miniaturization of safety and arming system. Extreme overload condition in the application of artillery fuze poses a challenge for the silicon-based safety and arming system. Research on the design method for silicon setback device with a dynamic response which could effectively distinguish the accident drop and projection is still insufficient. The paper presents a novel structural design for the silicon-based micro-mass spring system which could be used as the setback arming device in artillery fuze. The device is fabricated by using a double-sided ICP etching process. The research of dynamic simulation test on the silicon-based setback arming device is conducted with a Marchette hammer test system and a centrifuge. Results show that there is a mismatching of overload characteristics and dynamic behaviour of silicon-based MEMS setback arming device. On this basis, the design of setback arming device is optimized to visibly present different responses to different high dynamic conditions. LS-DYNA dynamic simulation results show the launching load can be effectively distinguished from the accident drop by the improved design, with a displacement difference ∆D as high as 100 μm is achieved. The setback arming device is successfully interlocked under the projection load of 5000 g with duration time of 1 ms. On the contrary, the setback arming device cannot be interlocked under the accident drop overload of 15,000 g with duration time of 100 μs. The micro mass-spring system returns to its original position after the loading of accident drop. This paper establishes a design method for the setback arming of the silicon-based MEMS micro-mass spring system, which is of great significance to promote the development of miniaturization and intelligentization of artillery fuze.
KW - Artillery fuze
KW - Extreme overload
KW - Micro-springs
KW - Safety system
KW - Setback arming device
UR - http://www.scopus.com/inward/record.url?scp=85127926065&partnerID=8YFLogxK
U2 - 10.1007/978-981-16-7381-8_147
DO - 10.1007/978-981-16-7381-8_147
M3 - Conference contribution
AN - SCOPUS:85127926065
SN - 9789811673801
T3 - Mechanisms and Machine Science
SP - 2357
EP - 2374
BT - Advances in Mechanical Design - Proceedings of the 2021 International Conference on Mechanical Design, ICMD 2021
A2 - Tan, Jianrong
PB - Springer Science and Business Media B.V.
T2 - International Conference on Mechanical Design, ICMD 2021
Y2 - 11 August 2021 through 13 August 2021
ER -