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Assessing the capability of conventional in-cylinder insulation materials in achieving temperature swing engine performance benefits

机译:评估常规缸内绝缘材料的能力实现温度摆动发动机性能效益

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摘要

Materials that enable wall temperature swing to follow the gas temperature throughout a reciprocating internal combustion engine cycle promise the greatest benefits from in-cylinder insulation without detriments to volumetric efficiency or fuel autoignition behavior. An anisotropic barium-neodymium-titanate insulation was selected as a promising off-the-shelf material to begin investigating temperature swing characteristics while maintaining adequate strength and adherence to the aluminum components it was applied to. Experimental analysis showed that permeable porosity within the barium-neodymium-titanate coating resulted in increased heat losses despite thermal insulation, fuel absorption losses, and a reduction in compression ratio. Additionally, the thickest coating suffered severe degradation throughout testing. Any potential benefits of temperature swing insulation were dominated by these losses, emphasizing the need to maintain a sealed coating surface.
机译:在往复式内燃机周期中实现墙面温度摆动以遵循气体温度的材料承诺从缸内绝缘的最大益处,而不会有损害体积效率或燃料自燃行为。 选择各向异性的钡钕 - 钛酸盐绝缘作为有前途的搁板材料,以开始研究温度摆动特性,同时保持足够的强度和粘附到其应用的铝部件。 实验分析表明,尽管热绝缘,燃料吸收损失和压缩比降低,但耐摩尔钕钛涂层内的渗透性孔隙率导致热损失增加。 另外,最厚的涂层在整个测试中遭受严重降解。 温度摆动绝缘的任何潜在益处都是由这些损失的主导,强调需要保持密封的涂层表面。

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