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International Space Station power system requirements models and simulation

机译:国际空间站动力系统需求模型与仿真

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International Space Station (ISS) Payload Engineering Integration (PEI) organization adopted the advanced computation and simulation technology to develop integrated electrical system models based on the test data of the various sub-units to addressing specific power system design requirements. This system model was used to assess the power system requirements for assuring: (1) Compatibility of loads with delivered power, (2) Compatibility of loads with protective devices, (3) Stability of integrated system, and (4) Fault tolerance of the EPS and other loads. PEI utilizes EMA Design Automation PSPICE software for modeling and simulating the steady-state voltage, voltage transients, reverse current, surge current, source and load impedance, large signal stability, and fault characteristics of the integrated electrical systems based on the various sub-unit test data. PSPICE provides dynamic system modeling, simulation and data analysis for large-scale system integration. Modeling is valuable at the initial design stage since it enables experimentation, exploration and development without expensive and time-consuming modifications. However, with the complexity of the system interactions among all sub-units provided by various developers and suppliers, it is difficult to model an integrated system or verify that a system model meets all the requirements of its design specifications. In addition, the changes to system requirements demand frequent redesigns and reimplementation of many systems and sub-unit components. The benefits provided by modeling from conventional test data are: (1) Relatively low cost, (2) Identification of potential system integration problems early in the program, (3) Extrapolation of test data to verify system performance to cover the entire operating envelope, (4) Provide flexibility in development system integration modeling. The modeling of an integrated system based on system and sub-unit test data enable organizations to predict and improve- system performance and to conduct efficient trade studies of system architecture. This comprehensive model can then be used directly in standard downstream processes such as rapid prototyping and risk mitigation in the product life cycle. The detailed modeling from conventional data will be discussed in the presentation.
机译:国际空间站(ISS)的有效载荷工程集成(PEI)组织采用了先进的计算和仿真技术,根据各个子单元的测试数据来开发集成的电气系统模型,以满足特定的电力系统设计要求。该系统模型用于评估电力系统的要求,以确保:(1)负载与输出功率的兼容性;(2)负载与保护装置的兼容性;(3)集成系统的稳定性;以及(4)容错能力。 EPS和其他负载。 PEI利用EMA Design Automation PSPICE软件对基于各种子单元的集成电气系统的稳态电压,电压瞬变,反向电流,浪涌电流,源和负载阻抗,大信号稳定性以及故障特性进行建模和仿真测试数据。 PSPICE为大型系统集成提供动态系统建模,仿真和数据分析。建模在初始设计阶段就很有价值,因为它可以进行实验,探索和开发,而无需进行昂贵且费时的修改。但是,由于各种开发商和供应商提供的所有子单元之间系统交互的复杂性,很难对集成系统进行建模或验证系统模型是否满足其设计规范的所有要求。另外,对系统要求的更改要求对许多系统和子单元组件进行频繁的重新设计和重新实现。根据常规测试数据进行建模所带来的好处是:(1)成本相对较低;(2)在程序早期发现潜在的系统集成问题;(3)外推测试数据以验证系统性能是否覆盖整个运行范围; (4)在开发系统集成建模中提供灵活性。基于系统和子单元测试数据的集成系统建模使组织能够预测和改善系统性能,并进行系统体系结构的有效贸易研究。然后,可以将这种综合模型直接用于标准下游流程中,例如在产品生命周期中快速建立原型并降低风险。在演示中将讨论根据常规数据进行的详细建模。

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