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A Method for Turbocharging Single-Cylinder, Four-Stroke Engines

机译:一种涡轮增压单缸,四冲程发动机的方法

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Turbocharging can provide a low cost means for increasing the power output and fuel economy of an internal combustion engine. Currently, turbocharging is common in multi-cylinder engines, but due to the inconsistent nature of intake air flow, it is not commonly used in single-cylinder engines. In this article, we propose a novel method for turbocharging single-cylinder, four-stroke engines. Our method adds an air capacitor-an additional volume in series with the intake manifold, between the turbocharger compressor and the engine intake-to buffer the output from the turbocharger compressor and deliver pressurized air during the intake stroke. We analyzed the theoretical feasibility of air capacitor-based turbocharging for a single-cylinder engine, focusing on fill time, optimal volume, density gain, and thermal effects due to adiabatic compression of the intake air. Our computational model for air flow through the intake manifold predicted an intake air density gain of 37-60% depending on heat transfer rates; this density translates to a proportional to power gain. An experimental setup was constructed to measure peak power, density gain, and manifold pressure. With an air capacitor seven times the volume of engine capacity, our setup was able to produce 29% more power compared to natural aspiration. These results confirm our approach to be a relatively simple means for increasing power density in single-cylinder engines. Therefore, turbocharging single-cylinder engines using an air capacitor can provide a lower cost alternative for increasing the power-output in diesel-powered machinery such as tractors, generators, and water pumps, when compared to adding an additional cylinder.
机译:涡轮增压可以提供用于增加内燃机的功率输出和燃料经济性的低成本装置。目前,涡轮增压在多缸发动机中很常见,但由于进气流的不一致性,它不常用于单缸发动机。在本文中,我们提出了一种新的涡轮增压单缸,四冲程发动机的方法。我们的方法在涡轮增压器压缩机和发动机进气中,将空气电容器与进气歧管串联加入额外的体积 - 以缓冲来自涡轮增压器压缩机的输出并在进气冲程期间输送加压空气。我们分析了基于空气电容器的涡轮增压的理论可行性,用于单缸发动机,专注于填充时间,最佳体积,密度增益和由于进气的绝热压缩而导致的热效应。我们通过进气歧管的空气流量的计算模型预测了根据传热速率的37-60%的进气密度增益;这种密度转化为与功率增益的比例。构造实验装置以测量峰值功率,密度增益和歧管压力。通过空气电容器七倍发动机容量,我们的设置与自然抽吸相比,我们的设置能够产生29%的功率。这些结果证实了我们的方法,可以是增加单缸发动机中功率密度的相对简单的手段。因此,与添加额外气缸相比,使用空气电容器的涡轮增压可以提供较低的成本替代方案,以增加诸如拖拉机,发电机和水泵的柴油动力机械中的动力输出。

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