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Bond Graph Modeling and Simulation of the Thermodynamic and Mechanical Engine

机译:热力学和机械发动机的键曲线图建模与仿真

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Over the past few years, the improvement of engine performance has obtained considerable attention.Numerical models have been developed for potential guidance and optimization. However, the dynamic behavior of the integrated engine system is usually quite complex to analyze. The primary obstacle lies in the close coupling of different energy domains, especially the thermodynamic and the mechanical. Traditional modeling techniques ordinarily focus only on single-domain systems. As a rule, algebraic equations of all these energy domains must be enumerated to arrive at a possible solution with the necessary help of transitional variables.Unfortunately, such solutions usually encounter limitary difficulties due to the practical complexity of systematic analysis. The work presented in this paper comes up with a helpful modeling methodology on the basis of bond graph. Bond graph is considered to be ideally suitable for multiple energy domains, noticeably incorporating them in a unified modeling framework. Bond graph is consistent with the principle of energy conservation in nature. As viewed from direct energy conversion, three different forms of energy exchange are practically determined in the thermodynamic system, I.e. Mechanical work, heat transfer and mass flow. Accordingly, the cylinder inside the engine is analogically modeled as a C-field with three power-flow ports. The C symbol is a storage element in bond graph notation, stores some kinds of free energy, just like a capacitor or spring. In succession, the model of mechanical system is also figured out for the crank and connecting rod mechanism,similarly but comparatively easier. Main energy effect is embodied by corresponding mechanical work, comprises back-and-forth movement and circular movement.Convenient connection of models, i.e. the thermodynamic and the mechanical, presents a systematic description of the whole working process. Based on the operating principle of bond graph, the normal state equations are expediently deduced for the engine under discussion.Finally, systematic dynamic simulation is conducted with the structure parameters of an actual diesel engine.Favorable results demonstrate the validity of the bond graph methodology.
机译:在过去几年中,发动机性能的提高已经获得了相当大的关注。已经开发了潜在的指导和优化的数值模型。然而,集成发动机系统的动态行为通常很复杂地分析。主要障碍物位于不同能量域的紧密耦合,尤其是热力学和机械。传统的建模技术通常只关注单域系统。通常,必须列举所有这些能源域的代数方程,以便以过渡变量的必要帮助来抵达可能的解决方案。不幸的是,这种解决方案通常遇到由于系统分析的实际复杂性而遇到的本例困难。本文提出的工作基于债券图提出了一个有用的建模方法。粘合图被认为是适用于多个能量域的理想下,在统一的建模框架中明显地结合它们。债券图与性质中的节能原理一致。从直接能量转换观察,在热力学系统中实际上确定了三种不同形式的能量交换,即机械工作,传热和质量流量。因此,发动机内的气缸类似于具有三个动力流量的C字段。 C符号是键盘图表示法中的存储元件,存储某些自由能量,就像电容器或弹簧一样。连续地,机械系统模型也被用于曲柄和连接杆机构,同样但相对容易。主要能量效应是通过相应的机械工作来实现的,包括前后运动和圆形运动。模型的电抚连接,即热力学和机械,呈现了整个工作过程的系统描述。基于键合图的操作原理,在讨论中,常规状态方程有利地推导出发动机。最后,利用实际柴油发动机的结构参数进行系统动态模拟。可应候结果证明键盘图方法的有效性。

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