简介:·学术探讨·直升机操纵范围研究·····,······································,························4·····,··········……张雅铭〔1一l)降低旋翼激振力的动力学优化设计研究综述······································……郭俊贤向锦武张晓谷(l一7)热塑性与热固性复合材料抗坠吸能地板的比较与分析·······························4··············……荚淑萍(l一14)用容量瓶测量气动元件微小漏气量························,···········································……杨振祥(l一23)无人驾驶直升机外形设讨一的一些研究···············一···················································一吕春雷‘I一28)直一9直升机主液压助力器稳定性分析···········································...
简介:以某支柱式起落架飞机为原型,在MSC.ADAMS/Aircraft平台上,建立了起落架及全机的虚拟样机模型,并对模型进行了落震仿真分析、全机着陆仿真分析,全机着陆仿真分析结果与落震仿真分析结果有着较好的一致性,为在ADAMS软件基础上更深入的进行飞机着陆过程虚拟技术研究奠定了基础。
简介:霍尔电推进具有推力密度大、推力功率比大、比冲高及系统可靠等优点,在20世纪60~70年代突破关键技术、完成空间试验后,在俄、美、欧等航天器上获得大量应用,执行位置保持、轨道转移、轨道调整和深空探测主推进等任务。目前,100W级到5kW级功率的霍尔推力器已经实现在轨应用,100kW功率的霍尔推力器已在研制中。针对未来载人深空探测、GEO卫星、低轨和超低轨卫星及轨道机动飞行器等任务需求,霍尔电推进朝着更大功率包络,更强多模式调节能力,更高性能,更长寿命及推进剂多样化等方向发展。在分析霍尔电推进技术特点和适用任务后,对国内外霍尔电推进技术的发展现状、任务应用等进行了综述,最后对霍尔电推进的发展趋势进行了展望。