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Improving the Processes of Missile Preparation at Launch Complexes on the Basis of System Design of Interacting Elements

机译:基于交互元素的系统设计,在发射复合物中提高导弹准备过程

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The results of the research presented in the paper are aimed at reducing the duration of preparing to launch Space and Missile System (SMS) at the launch complex (LC) and costs for it. This is achieved by thermostating the spacehead (SH) with the coolant supplied from the ground-based temperature control system (TCS) to the heat shield (HS) through the cavity between its walls and eliminating the removable heat insulation for the SH even under extreme environmental conditions. The justification of this option required the application of a systematic approach, in which the parameters of two functionally interacting SMS elements - TCS and SH were considered. In the framework of this approach, it is proposed to refine the HS, in which the coolant (gas) does not pass through volumes with a payload (PL) and an upper-stage rocket (USR), as is currently accepted, but through the HS cavities between its two walls. This will significantly reduce the requirements for gas purity, reduce restrictions on its flow rate (or speed), increase the safety of simultaneous thermostating of PL and USR, as well as provide pressure boosting of volumes from PL and USR due to high-speed pressure. To substantiate the proposal, a numerical simulation of the stress-strain state of the HS structure with a cavity was carried out, a numerical simulation of thermal processes taking place in the HS during the gas flow in the cavity between its walls during thermostating in a wide range of mean gas velocities between the HS walls was carried out. Based on the results obtained, a positive conclusion about the prospects for the application of the proposed circuit-constructive solution of HS and the option of supplying the coolant to the SH during thermostating is made.
机译:本文提出的研究结果旨在减少在发射复合体(LC)的空间和导弹系统(SMS)的准备期间的持续时间和其成本。这是通过将总结器(SH)恒温通过从地面温度控制系统(TCS)提供给所述热屏蔽(HS)的冷却剂来实现,并且即使在极端下也消除了SH的可拆卸的隔热环境条件。此选项的理由需要应用系统方法,其中考虑了两个功能交互的SMS元素-TCS和SH的参数。在这种方法的框架中,提出优化HS,其中冷却剂(气体)不通过有效载荷(PL)和上级火箭(USR),如当前被接受,而是通过其两个墙壁之间的HS腔。这将显着降低气体纯度的要求,降低对流速(或速度)的限制,提高PL和USR的同时振荡的安全性,以及由于高速压力,提供来自PL和USR的容积的压力升压。为了证实提议,进行了具有腔的HS结构的应力 - 应变状态的数值模拟,在恒温期间在其墙壁之间的气体中在HS中进行的热过程的数值模拟进行HS壁之间的宽范围的平均气体速度。基于获得的结果,对恒温期间施加HS的提出的电路建设性溶液的前景以及将冷却剂供应到恒温期间的选择的阳性结论。

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