Nagoya University · 공학
켄 마츠오카 교수의 연구실은 펄스 디노레이션 로켓 엔진(Pulse Detonation Rocket Engine)의 고주기, 고신뢰성 운영을 핵심 목표로 하며, 특히 고압·초저온 연료 주입, 액체 펌프를 이용한 잔여 가스 제거 기술(리퀴드 퍼징) 및 밸브 없는 방식의 연소 제어 기술을 개발하고 있습니다. 다중 실린더 시스템과 비틀림형 밸브 구조를 접목한 실물 비행 시험용 엔진 개발을 통해 궤도 진입 및 소형 위성 추진 응용에 기여하고 있습니다. 특히 연료 및 산화제의 초임계 상태 제어와 고정밀 분사 장치를 활용한 정밀 연소 제어 기술이 두드러집니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
A rotary-valved four-cylinder pulse detonation rocket engine system, Todoroki II, was developed, in which two novel techniques, the use of an inflow-driven motor and an inverted oxidizer cylinder, were introduced. The total length of the system was 1910 mm; its total weight when filled with ethylene–nitrous-oxide propellant and helium purge gas was 32.5 kg; and the engine weight was 9.6 kg. In a ground firing test with a duration of 1500 ms, a thrust-to-engine-weight ratio of 2.7 was achieved. T
journal article
AbstractA novel method for purging the residual hot burned gas in the cyclic operation of a pulse detonation combustor (PDC) was developed. With this new method, called the liquid-purge (LIP) method, residual hot burned gas is purged by injecting liquid droplets into the PDC. The injected liquid droplets are rapidly vaporized after the combustion of the detonable mixture. The vaporization of liquid is an endothermic phase transition accompanied by a roughly thousand-fold volume expansion. Conseq
A novel method for the operation of a pulse detonation combustor is proposed and demonstrated for realizing high frequencies without using a purging material. In the developed operation method, oxygen is supplied to the pulse detonation combustor in the valveless mode. Fuel, which is supercritical ethylene, is injected into the pulse detonation combustor at a suitable timing using an automotive fuel injector. Because of the Joule–Thomson effect, a phase transition of ethylene from the supercriti
A pulse-detonation thruster can generate a high-repeatability small impulse at a high operating frequency. To operate a pulse-detonation cycle in a vacuum environment without a purging material, a liquid-purge method proposed by Matsuoka et al. (“Development of a Liquid-Purge Method for High-Frequency Operation of Pulse Detonation Combustor,” Combustion Science and Technology, Vol. 187, No. 5, 2015, pp. 747–764) and throat at the exit of the combustor were introduced. In the demonstration experi
We constructed a rotary-valved four-cylinder PDR system (flight vehicle) for the flight demonstration. Total length and weight of the vehicle were 1910mm and approximately 33 kg with propellant and purge gas, respectively (detonation tube inner diameter and length: 37 mm and 800 mm, respectively). We investigated the thrust performance of the PDR system and the thrust-to-weight ratio on grand test. Propellant-based specific impulse of 131 s, time-averaged thrust of 256 N and thrust-to weight rat