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Resonance analysis of opposed piston linear compressor for refrigerator application

机译:冰箱用对置活塞直线压缩机的共振分析

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The opposed piston linear compressor is considered to be the future of silent, reliable and efficient compression technologies. For long valves, less linear compressors have been widely used in cryocoolers for space applications. Recently research has established its high-performance characteristics which are useful in household refrigeration application. Unlike reciprocating compressors which are driven by rotary motors and need a crank connecting rod mechanism to convert rotary into linear motion, a linear compressor is driven by a linear motor which reduces the number of moving parts. This feature makes the compressor more reliable, more efficient and has a silent operation. The piston (suspended on spring stiffness) in the linear compressor is a free piston, i.e. motion of the piston is not constrained hence the performance of the linear compressor is highly dependent on system resonance. Free piston motion offers the unique advantage of ease of modulation, i.e. the stroke of the compressor and hence the delivery mass flow rate coming out of the compressor can be easily controlled by changing the supply voltage. Resonance in the linear compressor is a function of moving mass, spring stiffness and operating or electrical frequency. Achieving resonance in the linear compressor results in maximising the cooling performance of the refrigerator and minimising the input power requirement and hence an increase in the COP of the refrigeration system. The present paper discusses the results from resonance testing of the opposed piston linear compressor for household refrigerator using the fast Fourier transformation analysis. There are different parameters that are considered to optimise the natural frequency of the opposed piston linear compressor, consisting of frequency, moving mass, and spring stiffness. The piston performs compression and suction in a similar manner as in the conventional reciprocating compressor. An opposed piston linear compressor exhibits high energy efficiency due to its simple construction and less moving parts, its mechanical losses are much less than the reciprocating compressor.
机译:对置的活塞线性压缩机被认为是静音,可靠和高效压缩技术的未来。对于长阀,线性压缩机较少,已广泛用于空间应用的低温冷却器。最近的研究已经建立了其高性能特性,可用于家用制冷应用中。与由旋转马达驱动并需要曲柄连杆机构将旋转转换成线性运动的往复式压缩机不同,线性压缩机由线性马达驱动,从而减少了运动部件的数量。此功能使压缩机更可靠,更高效且运行安静。线性压缩机中的活塞(悬挂在弹簧刚度上)是自由活塞,即,活塞的运动不受限制,因此线性压缩机的性能高度依赖于系统共振。活塞自由运动提供了易于调节的独特优势,即压缩机的冲程,因此可以通过更改电源电压轻松控制从压缩机出来的输送质量流量。线性压缩机的共振是运动质量,弹簧刚度以及工作频率或电气频率的函数。在线性压缩机中获得共振导致最大化制冷机的冷却性能并最小化输入功率需求,并因此导致制冷系统的COP增加。本文利用快速傅里叶变换分析讨论了家用冰箱对置活塞线性压缩机的共振测试结果。可以考虑使用不同的参数来优化对置活塞线性压缩机的固有频率,包括频率,运动质量和弹簧刚度。活塞以与传统的往复式压缩机类似的方式执行压缩和吸入。相对的活塞线性压缩机由于其结构简单,运动部件少而显示出高能效,其机械损耗远小于往复式压缩机。

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