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Thermo-Swing Wall Insulation Technology; - A Novel Heat Loss Reduction Approach on Engine Combustion Chamber -

机译:热挥杆墙体绝缘技术; - 发动机燃烧室的一种新型热损失方法 -

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To improve fuel efficiency of engines, cooling heat loss is one of the most dominant losses among the various engine losses to reduce. The present work proposes a new heat insulation concept in combustion chamber, "TSWIN (Thermo-Swing Wall Insulation Technology)" that can reduce heat loss to the coolant without any sacrifice in other engine performances. Surface temperature of insulation coat on combustion chamber wall changes rapidly, according with the fluctuating temperature of in-cylinder gas. Reduced temperature differences between them lead to lower heat transfer. During the intake stroke, surface temperature of the insulation coat goes down rapidly, and prevents intake air heating. To realize the scheme mentioned above, a new insulation material with both low thermal conductivity and low volumetric heat capacity, "SiRPA (Silica Reinforced Porous Anodized Aluminum)" was developed and applied on the top surface of the piston. It was confirmed that the temporal changes in temperature of coated surface in the engine operating condition showed nearly identical behavior as predicted by 1-dimensional heat transfer simulation using laser-induced phosphorescence thermometry. It was applied to turbocharged direct injection diesel engines, and showed improvement of fuel efficiency, and increased exhaust gas temperature which contributes to earlier light off of the aftertreatment catalyst. As the result of energy balance analysis, cooling heat loss was reduced, on the other hand, brake power and exhaust loss was increased. Furthermore, on low temperature engine start condition, TSWIN showed remarkable improvements both in fuel efficiency and exhaust emissions.
机译:为了提高发动机的燃料效率,冷却热量损失是减少各种发动机损耗中最大的损失之一。本工作提出了一种燃烧室中的新型隔热概念,“Tswin(热摇摆壁绝缘技术)”,可以减少冷却剂的热量损失,而不会在其他发动机性能中牺牲。根据气缸气体的波动温度,燃烧室壁上的绝缘涂层的表面温度迅速变化。减少它们之间的温度差异导致较低的传热。在进气冲程期间,绝缘涂层的表面温度迅速下降,并防止进气供暖。为了实现上述方案,开发并施加在活塞的顶表面上的具有低导热率和低容量热容量“SiRPA(二氧化硅增强多孔阳极氧化铝)”的新绝缘材料。确认发动机操作条件中涂覆表面温度的时间变化显示出几乎相同的行为,其使用激光诱导的磷光温度测定通过1维传热模拟预测的特性。它适用于涡轮增压直喷柴油发动机,并显示出燃料效率的提高,以及增加的废气温度,从而提高后处理催化剂的亮度。由于能量平衡分析的结果,冷却热损失减少,另一方面,制动力和排气损失增加。此外,在低温发动机启动条件下,TSWIN显示出燃料效率和废气排放的显着改进。

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