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Operation and Cold Start Mechanisms of Internal Combustion Engines with Alternative Fuels

机译:用替代燃料的内燃机的操作和冷启动机制

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A novel mechanism for the cold start of internal combustion engines is described in this paper. The cold-start mechanism is based on a modified prechamber configuration by adding a chamber valve to the prechamber, which could establish or block the communication of the prechamber with the cylinder space. The cold-start procedure includes a stroke that conserves the energy content of the first compressed charge through expansion against a low-pressure environment, and a subsequent recompression stroke to compress the charge to a much higher temperature. An analytical evaluation on the cold-start process is undertaken, and it is found that the charge could be compressed effectively to a temperature above the ignition temperature of ethanol or methanol. The same engine configuration may also enable combustion under a closed-chamber condition and is employed during the engine warm-up process to reduce excessive hydrocarbon emissions due to incomplete combustion. The cold-start/warm-up mechanisms introduced in this paper will provide a useful tool for cold starting an engine using both conventional and alternative fuels. The mechanisms could even cold start a compression-ignition engine using pure ethanol or pure methanol, thus overcoming one of the most serious problems related to ethanol or methanol fuel. Since the mechanisms can drastically reduce the hydrocarbon emissions from both conventional and alternative fuel engines during the cold-start/warm-up processes, they may also represent an effective solution for hydrocarbon-emission-related environmental problems.
机译:本文描述了内燃机冷启动的新机构。冷启动机构通过向PRECHAMBER添加腔室阀来基于改进的预挤压器配置,这可以建立或阻挡预挤压器与汽缸空间的通信。冷启动过程包括冲程,使得通过膨胀对低压环境的膨胀来保护第一压缩电荷的能量含量,以及随后的再压缩行程,以将电荷压缩到更高的温度。进行了冷启动过程的分析评价,发现电荷可以有效地压缩至高于乙醇或甲醇的点火温度的温度。相同的发动机配置还可以在闭合室状态下实现燃烧,并且在发动机预热过程期间采用,以减少由于不完全燃烧引起的过量的烃排放。本文介绍的冷启动/预热机制将提供一种使用常规和替代燃料的冷启动发动机的有用工具。这种机制甚至可以冷启动使用纯乙醇或纯甲醇的压缩点火发动机,因此克服了与乙醇或甲醇燃料相关的最严重问题之一。由于机构可以在冷启动/预热过程中大大降低常规和替代燃料发动机的烃排放,因此它们还可以代表与烃排放相关的环境问题的有效解决方案。

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