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A Concise Model and Analysis for Heat-Induced Withdrawal Reflex Caused by Millimeter Wave Radiation

机译:毫米波辐射引起的热引退反射的简捷模型与分析

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In this study, we consider the heat-induced withdrawal reflex caused by exposure to an electromagnetic beam. We propose a concise dose-response relation for predicting the occurrence of withdrawal reflex from a given spatial temperature profile. Our model is distilled from sub-step components in the ADT CHEETEH-E model developed at the Institute for Defense Analyses. Our model has only two parameters: the activation temperature of nociceptors and the critical threshold on the activated volume. When the spatial temperature profile is measurable, the two parameters can be determined from test data. We connect this dose-response relation to a temperature evolution model for electromagnetic heating. The resulting composite model governs the process from the electromagnetic beam deposited on the skin to the binary outcome of subject’s reflex response. We carry out non-dimensionalization in the time evolution model. The temperature solution of the non-dimensional system is the product of the applied power density and a parameter-free function. The effects of physical parameters are contained in non-dimensional time and depth. Scaling the physical temperature distribution into a parameter-free function greatly simplifies the analytical solution, and helps to pinpoint the effects of beam spot area and applied power density. With this formulation, we study the theoretical behaviors of the system, including the time of reflex, effect of heat conduction, biological latency in observed reflex, energy consumption by the time of reflex, and the strategy of selecting test conditions in experiments for the purpose of inferring model parameters from test data.
机译:在这项研究中,我们考虑通过暴露于电磁束引起的热引起的戒断反射。我们提出了一种简洁的剂量 - 响应关系,以预测来自给定的空间温度曲线的戒断反射的发生。我们的模型从在防御分析研究所开发的ADT Cheeteh-E模型中的子步骤组件中蒸馏出来。我们的模型只有两个参数:伤膨力的激活温度和激活体积上的临界阈值。当空间温度曲线可测量时,可以从测试数据确定两个参数。我们将此剂量响应与电磁加热的温度演化模型连接。所得到的复合模型控制从皮肤上沉积在皮肤上的电磁束到受试者反射响应的二进制结果的过程。我们在时间进化模型中进行非维度化。非尺寸系统的温度溶液是施加功率密度和无参数功能的乘积。物理参数的效果包含在非尺寸时间和深度中。将物理温度分布缩放到无参数功能,大大简化了分析解决方案,并有助于确定光束点区域和施加功率密度的影响。通过这种制定,我们研究了系统的理论行为,包括反射的时间,导热的时间,观察到的反射中的生物潜伏期,反射时的能量消耗,以及在实验中选择试验条件的策略从测试数据推断模型参数。

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