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Realizing collaborative systems design for missile seekers by combining design margin analysis with multi-disciplinary optimization

机译:通过将设计余量分析与多学科优化相结合,实现导弹导引头的协同系统设计

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Collaborative design is a recursive process, wherein multiple engineering disciplines iteratively pursue targeted goals. The collaborative process mandates the sharing of information, enabling performance assessments for negotiation of requirement trade-offs. A layered architecture supports collaboration across the missile's subsystems allowing for optimization of critical product parameters. The multi-disciplinary optimization expedites trades between performance and product resources such as mission performance, system cost, computational throughput, and memory capacity. We propose an innovative process for missile design using collaborative system design margin analysis with multi-disciplinary optimization. A core principle of design margin analysis is the disciplined allocation of performance margins to critical parameters at the system level. This paradigm assures consistent performance and reliability while optimizing key metrics, especially cost. Critical to attaining that core principle is the ready access and traceability of all critical parameters at each subsystem level and for all hardware, software, and firmware components. Additionally, the collaborative system design margin analysis with multi-disciplinary optimization framework analyzes and re-allocates design margins to optimize performance parameters in a collaborate manner. This article proposes to demonstrate engineering methods for rigorous evaluation and effective communication of system performance between design disciplines. Communication begins with consistent terminology throughout the design process. Our demonstration will consist of two focus areas: reliable performance measurement and robust design evaluation. Specifically, the article will show collaborative system design margin analysis with multi-disciplinary optimization effectivity using signal processing examples. Prior robust design methodologies by Taguchi in conjunction with a common view of system performance lay a framework for collaborative design margin with a constrained optimization approach. Each critical engineering decision is viewed with a perspective of overall system performance, quality, and cost. The following design trades are used for demonstration; probability of target acquisition, as a function of seeker complexity and target classification capability; signal processing distortion, as a function of computational complexity; and using phase noise margin to optimize the signal processing electronics. Currently, the authors have developed a collaborative design infrastructure to demonstrate collaborative system design margin analysis with multi-disciplinary optimization principles and their efficacy. The analyses and trade results of each of the design examples will highlight design options with acceptable performance as a function of applicable resources.
机译:协同设计是一个递归过程,其中多个工程学科迭代地追求目标。协作过程要求共享信息,从而能够进行性能评估以协商需求折衷。分层体系结构支持整个导弹子系统之间的协作,从而可以优化关键产品参数。多学科优化可加快性能和产品资源之间的交易,例如任务性能,系统成本,计算吞吐量和内存容量。我们提出了一种使用协同系统设计余量分析和多学科优化的导弹设计创新方法。设计裕度分析的核心原则是在系统级别对关键参数的性能裕度进行有条理的分配。这种范例可在优化关键指标(尤其是成本)的同时确保一致的性能和可靠性。达到该核心原则的关键是在每个子系统级别以及所有硬件,软件和固件组件的所有关键参数的可访问性和可追溯性。此外,具有多学科优化框架的协作系统设计余量分析可以分析并重新分配设计余量,以协作方式优化性能参数。本文提议演示用于在设计学科之间进行严格评估和有效传达系统性能的工程方法。在整个设计过程中,沟通始于一致的术语。我们的演示将包括两个重点领域:可靠的性能测量和可靠的设计评估。具体而言,本文将通过信号处理示例展示具有多学科优化有效性的协作系统设计余量分析。 Taguchi先前的稳健设计方法结合系统性能的通用观点,为使用约束优化方法的协作设计余量奠定了框架。从系统整体性能,质量和成本的角度来看待每个关键工程决策。以下设计行业用于演示;目标获取的概率,取决于搜寻者复杂性和目标分类能力的函数;信号处理失真,取决于计算复杂度;并使用相位噪声余量来优化信号处理电子器件。当前,作者已经开发了一种协作设计基础结构,以展示具有多学科优化原理的协作系统设计余量分析及其功效。每个设计示例的分析和交易结果将重点介绍具有可接受性能的设计选项,这些功能是适用资源的函数。

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