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A Simple Mechanism for AC Compressor Operation

机译:AC压缩机操作的简单机制

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One of the most essential components of automotive HVAC system is compressor. In a vehicle it is directly mounted on the engine. It derives power from the engine feed system to keep refrigerant moving in the HVAC system of the vehicle. It is also essential to complete the vapor compression cycle. During the operation, it causes considerable load on the engine and thus results in lower fuel efficiency and higher pollution. There are several types of compressors available globally. According to construction it can be classified as reciprocating piston type, scroll type and rotary vane type. The reciprocating piston types of compressors are further classified as fixed displacement and variable displacement. Normally the fixed displacement compressors have good idling cooling performance, but it increases the load on the engine. To reduce the load on the engine and to have good idling cooling performance, generally a variable displacement compressor is used. The use of variable compressors has become impractical most of the time due to complex technology and high cost. A simple AC compressor mechanism is developed to counter all the issues with improvement in idling performance and reduced load on the engine. The mechanism can be integrated with any construction type of compressor. A special shape belt is also designed for this mechanism which can be easily implemented. Improvement of up to 3°C is observed in cabin temperature during idling and at low speed conditions. The model is verified using commercially available 1D software and prototype part is under development.
机译:汽车HVAC系统最重要的组件之一是压缩机。在车辆中,它直接安装在发动机上。它源于发动机进料系统的电力,以保持制冷剂在车辆的HVAC系统中移动。完成蒸汽压缩循环也是必要的。在操作期间,它导致发动机上的相当大负载,因此导致较低的燃料效率和更高的污染。全球有几种类型的压缩机。根据施工,可以将其归类为往复式活塞式,滚动式和旋转叶片类型。往复式的活塞类型的压缩机进一步归类为固定位移和可变位移。通常,固定位移压缩机具有良好的怠速冷却性能,但它增加了发动机上的负载。为了减少发动机上的负载并具有良好的空转冷却性能,通常使用可变排量压缩机。由于复杂的技术和高成本,大多数时间都在大多数时间变得不切实际。开发了一种简单的AC压缩机机制,以利用怠速性能提高和发动机负荷减少的所有问题。该机构可以与任何施工类型的压缩机集成。特殊形状带也设计用于这种机构,该机构可以很容易地实现。在怠速期间在驾驶室温度和低速条件下观察到高达3°C的改善。使用商业上可获得的1D软件和原型部分进行验证该模型。

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