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31.
航空发动机闭环控制系统的设计过程复杂且环节繁多,如果通过某平台综合多个设计过程,必然可以简化流程,提高效率.在总结国内外相关文献的基础上,针对民用涡扇发动机,在Matlab/Simulink下,利用模块化方法构建包含稳态控制器、过渡态控制器以及极限保护器的涡扇发动机闭环控制系统仿真平台,并对其进行仿真测试和硬件在回路实验.结果表明,所构建的仿真平台满足控制系统的性能和实时性要求,具有良好的工程适用性. 相似文献
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为了研究AZ31B镁合金在大应变幅条件下的变形机制,开展了该合金在7.嬲应变幅条件下的循环行为研究.结果表明:在拉伸阶段的最大应力值随着循环周次的增加而减小,而在压缩过程中的最大应力值随着循环周次的增加而增大,在整个循环过程中材料呈现循环应变硬化特性,拉应力是导致循环应变硬化的主要原因;随着循环周次增加,滞回曲线的不对称性基本不变.真应力-真应变滞回曲线在卸载和反向拉伸阶段出现3个拐点.在压缩过程中发生{10-12}孪生,反向拉伸过程发生去孪生行为,包申格效应对去孪生行为具有较大影响.研究表明:孪生-去孪生是大应变幅循环变形的主要变形机制;对拉伸、反向压缩过程的变形特征及机制的分析,可为低周疲劳行为的研究提供参考. 相似文献
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M. Nelson W.F. DempsterJ.P. Allen 《Advances in Space Research (includes Cospar's Information Bulletin, Space Research Today)》2008,41(5):787-797
This paper will review the potential of a relatively new type of testbed platform for environmental education and research because of the unique advantages resulting from their material closure and separation from the outside environment. These facilities which we term “modular biospheres”, have emerged from research centered on space life support research but offer a wider range of application. Examples of this type of facility include the Bios-3 facility in Russia, the Japanese CEEF (Closed Ecological Experiment Facility), the NASA Kennedy Space Center Breadboard facility, the Biosphere 2 Test Module and the Laboratory Biosphere. Modular biosphere facilities offer unique research and public real-time science education opportunities. Ecosystem behavior can be studied since initial state conditions can be precisely specified and tracked over different ranges of time. With material closure (apart from very small air exchange rate which can be determined), biogeochemical cycles between soil and soil microorganisms, water, plants, and atmosphere can be studied in detail. Such studies offer a major advance from studies conducted with phytotrons which because of their small size, limit the number of organisms to a very small number, and which crucially do not have a high degree of atmospheric, water and overall material closure. Modular biospheres take advantage of the unique properties of closure, as representing a distinct system “metabolism” and therefore are essentially a “mini-world”. Though relatively large in comparison with most phytotrons and ecological microcosms, which are now standard research and educational tools, modular biospheres are small enough that they can be economically reconfigured to reflect a changing research agenda. Some design elements include lighting via electric lights and/or sunlight, hydroponic or soil substrate for plants, opaque or glazed structures, and variable volume chambers or other methods to handle atmospheric pressure differences between the facility and the outside environment. 相似文献
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基于复合稳定控制结构,对某防空导弹侧向回路过载反馈通道的结构进行了改进。基于理论分析,结合工程应用实际进行了数学仿真验证。结果表明:在保持足够稳定裕度的前提下,改进结构的系统快速性好,鲁棒性更优。 相似文献
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M. Nelson W.F. DempsterJ.P. Allen 《Advances in Space Research (includes Cospar's Information Bulletin, Space Research Today)》2008,41(5):675-683
Development of reliable and robust strategies for long-term life support for planetary exploration must be built from real-time experimentation to verify and improve system components. Also critical is incorporating a range of viable options to handle potential short-term life system imbalances. This paper revisits some of the conceptual framework for a Mars base prototype which has been developed by the authors along with others previously advanced (“Mars on Earth®”) in the light of three years of experimentation in the Laboratory Biosphere, further investigation of system alternatives and the advent of other innovative engineering and agri-ecosystem approaches. Several experiments with candidate space agriculture crops have demonstrated the higher productivity possible with elevated light levels and improved environmental controls. For example, crops of sweet potatoes exceeded original Mars base prototype projections by an average of 46% (53% for best crop) ultradwarf (Apogee) wheat by 9% (23% for best crop), pinto bean by 13% (31% for best crop). These production levels, although they may be increased with further optimization of lighting regimes, environmental parameters, crop density etc. offer evidence that a soil-based system can be as productive as the hydroponic systems which have dominated space life support scenarios and research. But soil also offers distinct advantages: the capability to be created on the Moon or Mars using in situ space resources, reduces long-term reliance on consumables and imported resources, and more readily recycling and incorporating crew and crop waste products. In addition, a living soil contains a complex microbial ecosystem which helps prevent the buildup of trace gases or compounds, and thus assist with air and water purification. The atmospheric dynamics of these crops were studied in the Laboratory Biosphere adding to the database necessary for managing the mixed stands of crops essential for supplying a nutritionally adequate diet in space. This paper explores some of the challenges of small bioregenerative life support: air-sealing and facility architecture/design, balance of short-term variations of carbon dioxide and oxygen through staggered plantings, options for additional atmospheric buffers and sinks, lighting/energy efficiency engineering, crop and waste product recycling approaches, and human factor considerations in the design and operation of a Mars base. An “Earth to Mars” project, forging the ability to live sustainably in space (as on Earth) requires continued research and testing of these components and integrated subsystems; and developing a step-by-step learning process. 相似文献
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