保护精密航天器设备免受内部振动源的影响

Y. Zhukov, E. B. Korotkov, S. Matveev, N. Slobodzyan, O. Shirobokov
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引用次数: 1

摘要

这项工作致力于保护航天器免受不可接受的内部振动源的影响。指出了降低星载振动活动对提高目标设备精度的紧迫性。解决了航天器平台受振动源——液体热控制系统的电泵单元的振动保护的特殊问题。确定了电泵机组振动防护的基本要求。考虑了减小航天器固定装置表面电泵单元所激发的振动水平的可能方法。特别注意诸如阻尼和隔振等振动保护方法,通过在源(电泵单元)和对象(航天器)之间安装特殊的振动保护装置-隔振器和减振器来实现。介绍了减振器和隔振器的工作原理,以及最常用的减振器材料。考虑了线性单轴隔振器的建设性解决方案的例子,并提出了使用有前途的产品的建议。特别强调的是使用金属橡胶作为隔振器的材料。针对某电泵单元的具体设计,提出了隔振空间结构图。给出了详细的计算公式,建立了隔振系统的数学模型。形成了系统参数的计算程序。在此基础上,确定了中频区域的最大可能振动抑制水平。确定了监测水面所需的最小可操作像素数,具有足够的准确性和可靠性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Protection of precision spacecraft equipment from internal sources of vibration
The work is devoted to the protection of a spacecraft from the influence of unacceptable internal vibration sources. The urgency of reducing the vibration activity on board the spacecraft to improve the accuracy of the target equipment is indicated. A particular problem of vibration protection of the spacecraft platform from a vibration source – an electric pump unit of a liquid thermal control system – is being solved. The basic requirements for electric pump unit vibration protection have been determined. Possible ways to reduce the level of vibration excited by the electric pump unit on the surface of the spacecraft fixation are considered. Particular attention is paid to such vibration protection methods as damping and vibration isolation, implemented by installing special vibration protection devices between the source (electric pump unit) and the object (spacecraft) – vibration isolators and vibration dampers. The principles of operation of vibration dampers and vibration isolators, the most common materials for vibration dampers are described. Examples of constructive solutions for linear single-axial vibration isolators are considered, recommendations for the use of promising products are developed. Particularemphasis is placed on the use of metal rubber as a material for vibration isolators. With regard to a specific design of electric pump unit, a diagram of the spatial structure of vibration isolation is proposed. Formulas for calculation are given in detail, a mathematical model of the vibration isolation system is developed. The procedure for calculating the parameters of the system has been formed. Based on the model, the maximum possible level of vibration suppression in the mid-frequency region was determined. Minimum required number of operable pixels was identified for monitoring the water surface with sufficient accuracy and reliability.
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