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ANALYTICAL EVALUATION OF HEAT FLOW PATTERN IN BIODIESEL OPERATED ENGINE CYLINDER

机译:生物柴油机筒中热流模式的分析评价

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There has been a global search for alternative fuels that are environmentally friendly to replace and or compliment the conventional fossil fuels used in running engines. This is in line with the global action to reduce CO_2 emissions hence ameliorating the effect of climate change. Biodiesel fuels have been adjudged to be clean energy with minimal environmental pollution during combustion. Hence, biodiesel fuels for running compression ignition engines have been developed from various feedstocks such as vegetable oils, animal fat, and waste or used cooking oils. The properties of these biodiesels have been reported to be dependent on the feedstock type and therefore vary according to the source feedstock. In carrying out this present study on the effects of utilising biodiesel fuel on the compression ignition engine, a numerical study of temperature distribution in the cylinder liner of biodiesel-powered compression ignition engine is presented. Biodiesel produced from palm kernel oil is used. Eight nodes in the cylinder liner spanning the top section of the liner, midpoint and the interface between the liner and the block were used as data source as it is established that sharp-edged points are most likely regions for thermal stress. Of the eight nodes selected, four were edge nodes and the other four were nodes at the interface with varying conditions. Model equations used for the study were developed and subsequently transformed using the finite difference method. Numerical solutions were obtained from computer codes written in MATLAB programming language. The obtained results from this code were compared to results obtained from commercial software (ANSYS FLUENT) for same geometry and boundary conditions. Results on the cylinder liner showed steady state temperatures were reached in about five minutes using both the MATLAB code and ANSYS FLUENT and both results showed a similar trend of temperature distribution in the radial direction. However, the MATLAB code showed higher temperatures at the upper section of the liner material as compared to the midpoint of the liner whereas ANSYS FLUENT showed the midpoint section to possess maximum temperatures as compared to the cylinder head section. Both results agree with the lower section having least temperature distribution. Further analyses were carried out on the midpoint of the cylinder and the cylinder head section and factors responsible for the discrepancies discussed. The outcome of this study presents palm kernel based biodiesel as an alternative fuel in cylinder engines while highlighting sections of the engine that require design attention in terms of heat flux and engine stability.
机译:已经有替代燃料对环境友好的更换和恭维或在运行的引擎中使用的传统的化石燃料进行全局搜索。这是与全球性行动,以减少排放的CO_2从而减轻气候变化的影响线。生物柴油燃料已被判燃烧过程中的清洁能源以最小的环境污染。因此,对于运行压燃式发动机的生物柴油已经从各种原料如植物油,动物脂肪发展,浪费或用过的烹饪油。这些生物柴油的性质已被报道是依赖于原料类型,并且因此根据所述源原料而变化。在实施于利用在压燃式发动机的生物柴油燃料的影响本研究中,在生物柴油为动力的压缩点火式发动机的气缸套的温度分布的数值研究被呈现。从棕榈仁油生产的生物柴油使用。因为它是建立了锋利的点是热应力最可能的区域在气缸套跨越衬垫,中点的顶部部分和衬垫和块之间的界面八个节点被用作数据源。选择的八个节点的,四个是边缘节点和其他四个们跟变化的条件的接口节点。用于研究的模型方程进行了开发和随后使用有限差分方法转化。从Matlab编程语言编写的计算机代码获得了数值解决方案。从该代码将得到的结果进行比较,以从商业软件(ANSYS FLUENT)对于相同的几何形状和边界条件获得的结果。在气缸套结果表明稳态温度在使用MATLAB代码和ANSYS FLUENT既约五分钟均达到并两个结果在径向方向上呈温度分布的类似的趋势。然而,MATLAB代码相比,内衬的中点而ANSYS FLUENT表明中点部分相比,气缸盖部具备最高温度在衬垫材料的上部分显示出更高的温度。两个结果与具有至少温度分布下部。进一步分析在所述气缸的负责讨论的差异中点与气缸盖部和因素进行。这项研究提出了棕榈仁基生物柴油的中缸发动机同时强调需要在热通量和发动机稳定性方面的设计注意发动机的部分替代燃料的结果。

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