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Modelling, identification and control of thermal deformation of machine tool structures, part 3: real-time estimation of heat sources

机译:机床结构热变形的建模,识别和控制,第3部分:热源的实时估计

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摘要

Compensation of thermal deformation of machine tools requires real-time estimation of the heat input to the structure in order to fully describe its thermoelastic response. Available solutions of the inverse heat conduction problem IHCP are notsuitable for real-time feedback control applications, since they are too slow and/or rely on future data to stabilize the solution. A new real-time IHCP solver is derived in the form of a convolution integral of the inverse thermal transfer functionG{sup}-1 (s) and the measured temperature difference at two points near the heat source. An expression for G{sup}-1 (s) is derived for multi-dimensional structural components. To transform G{sup}-1 (s) to the time domain, a special consideration is givento the treatment of its complex singularity functions. Analytical approach was followed to identify these functions and to determine their time-domain representation. Computer-simulation test cases were conducted using a finite element model of athree-dimensional structure. The random temperature measurement errors, which can lead to non-uniqueness and instability problems, have also been simulated. The test results showed that the computation time can significantly be improved to achieve acontrol cycle of less than one second, without compromising the accuracy and stability requirements.
机译:补偿机床的热变形需要实时估计输入到结构的热量,以充分描述其热弹性响应。逆导热问题IHCP的可用解决方案不适用于实时反馈控制应用,因为它们太慢和/或依赖将来的数据来稳定解决方案。以逆热传递函数G {sup} -1(s)的卷积积分和在热源附近的两个点处测得的温差的卷积积分形式导出了新的实时IHCP求解器。对于多维结构组件,得出G {sup} -1(s)的表达式。为了将G {sup} -1(s)转换到时域,需要特别考虑对其复杂奇异函数的处理。遵循分析方法来识别这些功能并确定其时域表示形式。使用三维结构的有限元模型进行计算机模拟测试用例。还模拟了随机温度测量误差,该误差可能导致非唯一性和不稳定性问题。测试结果表明,在不影响精度和稳定性要求的情况下,可以显着改善计算时间,以实现不到一秒的控制周期。

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