首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >THERMAL CONDUCTIVITY OF COLLOIDAL SUSPENSIONS OF JET FUEL AND CARBON-BASED NANOPARTICLES AND ITS EFFECT ON EVAPORATION RATE
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THERMAL CONDUCTIVITY OF COLLOIDAL SUSPENSIONS OF JET FUEL AND CARBON-BASED NANOPARTICLES AND ITS EFFECT ON EVAPORATION RATE

机译:喷射燃料和碳纳米粒子胶体悬浮液的导热系数及其对蒸发速率的影响

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Recent studies have shown that addition of nano-sized particles to liquid fuels could significantly enhance major combustion characteristics such as burning rate and ignition delay. Colloidal suspensions are known to have enhanced optical properties and thermal conductivity compared to neat liquids; however, in the case of colloidal fuels, the main mechanism responsible for such enhanced properties is not well understood. To better understand these phenomena, colloidal suspensions of jet fuel and different types of carbon-based nanomaterials (carbon nanoparticles, multi-walled carbon nanotubes, and graphene nanoplatelets) prepared at different particle loadings were experimentally tested for their thermal conductivities. Colloidal suspensions of nanotubes showed higher conductivity compared to that of graphene and nanoparticle. This could justify higher burning rate of these fuels. Furthermore, and to differentiate between the effects of thermal conduction and radiation, droplet evaporations tests were carried out on colloidal suspensions of carbon nanoparticle under forced convection and in the absence of any radiation source. It was found that the presence of nanoparticle in jet fuel initially increases evaporation rate. However, a reduction in evaporation rate was observed at higher concentration as a result of particles agglomeration.
机译:最近的研究表明,向液体燃料添加纳米尺寸颗粒可以显着提高主要燃烧特性,例如燃烧率和点火延迟。已知胶体悬浮液具有增强的光学性质和与纯液体相比的导热性;然而,在胶体燃料的情况下,负责这种增强性能的主要机制并不了解。为了更好地理解这些现象,在不同颗粒载体上制备的喷射燃料和不同类型的碳基纳米材料(碳纳米粒子,多壁碳纳米管和石墨烯纳米纳米)的胶体悬浮液被实验地测试其热导体。与石墨烯和纳米颗粒相比,纳米管的胶体悬浮液显示出更高的导电性。这可以证明这些燃料的更高燃烧率。此外,在强制对流下的碳纳米粒子的胶体悬浮液和不存在任何辐射源的情况下,对热传导和辐射的影响进行分化,液滴蒸发试验在碳纳米粒子的胶体悬浮体上进行。发现喷射燃料中纳米粒子的存在最初增加蒸发速率。然而,由于颗粒附聚,在较高浓度下观察到蒸发速率的降低。

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