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Geometric Parameter Design of a Multiple-Link Mechanism for Advantageous Compression Ratio and Displacement Characteristics

机译:用于有利压缩比和位移特性的多连杆机构的几何参数设计

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Variable compression ratio and variable displacement technologies are adopted in internal combustion engines because these features provide further degrees of freedom to optimize engine performance for various operating conditions. This paper focuses on a multiple-link mechanism that realizes variable compression ratio and displacement by varying the piston motion, specifically the Top Dead Center (TDC) and Bottom Dead Center (BDC) positions relative to the crankshaft. It is determined that a major requirement for the design of this mechanism is when the control action changes monotonically over its whole range, the compression ratio and the displacement should change in opposite directions monotonically. This paper presents an approach on how to achieve multiple-link mechanism geometric designs that fulfill this requirement. First, a necessary and sufficient condition, and a stronger sufficient condition are obtained on how the TDC and BDC positions should change with respect to the control action to fulfill the design requirement. Then Design of Experiments (DoE) methodology is used for creating sets of geometric designs of the mechanism, for which kinematics are calculated and checked against the conditions. A feasible design that satisfies the conditions is selected and detailed study on such characteristics as piston motion, stroke length, displacement, combustion chamber volume, and compression ratio etc. is performed. The design approach and obtained results serve as a basis for further analysis and optimization of the multiple-link mechanism.
机译:内燃机采用可变压缩比和可变位移技术,因为这些特征提供了优化各种操作条件的发动机性能的进一步自由度。本文侧重于多连杆机构,通过改变活塞运动,特别是相对于曲轴来实现可变压缩比和位移。相对于曲轴,最顶死中心(TDC)和底部死点(BDC)位置。确定该机制设计的主要要求是当控制动作在整个范围内单调变化时,压缩比和位移应该单调地沿相反方向变化。本文介绍了如何实现满足该要求的多链路机制几何设计的方法。首先,在TDC和BDC位置如何相对于控制动作改变以满足设计要求,获得必要和充分的条件,以及更强的充分条件。然后,实验(DOE)方法的设计用于创建机制的几何设计集合,用于根据条件计算并检查运动学的电动机。选择满足条件的可行性设计,并进行详细研究作为活塞运动,行程长度,位移,燃烧室容积和压缩比等的这种特性。设计方法和获得的结果是进一步分析和优化多连杆机制的基础。

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