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Fundamental Analysis of Spring-Varied, Free Piston, Otto Engine Device

机译:弹簧式自由活塞式奥托发动机装置的基础分析

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Conventional crank-based engines are limited by mechanical, thermal, and combustion inefficiencies. The free piston of a linear engine generator reduces frictional losses by avoiding the rotational motion and crankshaft linkages. Instead, electrical power is generated by the oscillation of a translator through a linear stator. Because the free piston is not geometrically constrained, dead center positions are not specifically known. This results in a struggle against adverse events like misfire, stall, over-fueling, or rapid load changes. It is the belief that incorporating springs will have the dual benefit of increasing frequency and providing a restoring force to aid in greater cycle to cycle stability. For dual free piston linear engines the addition of springs has not been fully explored, despite growing interest and literature. This investigation reviews the current modeling literature and advances the fundamental understanding of the free piston linear engine with springs by developing an idealized, nondimensional model. The model combines the dynamics of a damped, spring mass system with in-cylinder thermodynamic expressions. Simplifying assumptions are made to represent perfect springs, ideal gases, instantaneous heat addition and rejection, and an average friction force for work output dependent on stroke length. The model is executed for selected cases to represent the fundamental nature of the system. The model is explored both in and out of the context of the Otto cycle to demonstrate natural and forced stability over multiple operation cycles. Then, it is shown that system frequency and relative indicated mean effective pressure can be raised by increasing the baseline cylinder pressure, the bore diameter, or the amount of heat added through combustion relative to the stiffness of the spring. Lastly, the benefits of lower temperature operation are reinforced through parameterization of the specific heat ratio.
机译:传统的基于曲柄的发动机受到机械,热和燃烧效率低下的限制。线性发动机发电机的自由活塞通过避免旋转运动和曲轴连杆机构来减少摩擦损失。取而代之的是,通过线性定子的平移机的振荡来产生电能。因为自由活塞没有受到几何形状的限制,所以死角位置不是特别已知。这导致了与不良事件的斗争,例如失火,失速,加油或负载快速变化。相信结合弹簧将具有增加频率和提供恢复力以帮助更大的循环稳定性的双重好处。对于双自由活塞线性发动机,尽管人们的兴趣和文献日渐丰富,但并未充分研究弹簧的添加。这项研究回顾了当前的建模文献,并通过开发理想的无量纲模型来提高对带有弹簧的自由活塞线性发动机的基本理解。该模型将阻尼弹簧质量系统的动力学与缸内热力学表达式结合在一起。做出简化的假设表示完美的弹簧,理想的气体,瞬时热量的添加和排除以及功输出的平均摩擦力(取决于行程长度)。针对所选案例执行该模型以表示系统的基本性质。在Otto周期内外都对模型进行了探索,以证明在多个操作周期内的自然稳定性和强制稳定性。然后,表明可以通过增加基线气缸压力,内径或相对于弹簧刚度的燃烧增加的热量来提高系统频率和相对指示的平均有效压力。最后,通过将比热比参数化,可以增强低温运行的优势。

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