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Knock Resistance Increase through the Addition of Natural Gas or LPG to Gasoline: An Experimental Study

机译:通过添加天然气或LPG来抗抗抗抗抗抗汽油:实验研究

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Bi-fuel spark ignition engines, nowadays widely spread, are usually equipped with two independent injection systems, in order run the engine either with gasoline or with gaseous fuel, which can be Natural Gas (NG) or Liquefied Petroleum Gas (LPG). These gases, besides lower cost and environmental impact, are also characterized by a higher knock resistance with respect to gasoline that allows to adopt a stoichiometric proportion with air also at full load. Gasoline, on the other hand, being injected as liquid, maintains higher volumetric efficiency and hence higher power output. As a compromise solution, it could be desired to exploit the advantages of both gasoline and gas (NG or LPG), thus performing a Double-Fuel injection: as already experimented by the authors, the addition of gaseous fuel to the gasoline/air mixture increases knocking resistance, allowing to run the engine with both "overall stoichiometric" mixture (thus lowering fuel consumption and emissions) and better spark advance (which increases engine efficiency) even at full load: the results showed high improvements in engine efficiency without noticeable power losses respect to the pure gasoline operation. Since no references have been found in literature on the Octane Number of both NG-gasoline and LPG-gasoline blends, the authors decided to experimentally determine the knock resistance increase due to gaseous fuel addition to normal air-gasoline mixtures. A wide experimental campaign has been carried out in order to evaluate the correlation between the gaseous fuel-gasoline mixture composition and its overall knock resistance measured in terms of Motor Octane Number (MON). To this purpose, a CFR engine was endowed with two independent injection systems in order to realize mixtures with different proportion between gaseous fuels and gasoline and control the overall air-fuel ratio. The experimental results presented in this paper are quite innovative and will be fundamental for future study on the simultaneous combustion of gaseous fuel and gasoline. The experimental results showed that the relationship between the mixture MON and gaseous fuel concentration in the blend is not linear and is quite different between NG-gasoline and LPG-gasoline blends.
机译:双燃料火花点火发动机,如今广泛传播,通常配备有两个独立的喷射系统,顺序使用汽油或气体燃料运行发动机,可以是天然气(NG)或液化石油气(LPG)。除了较低的成本和环境撞击之外,这些气体还具有相对于汽油的更高抗抗爆震性,其允许在满载中使用与空气的化学计量比例。另一方面,汽油被注入液体,保持更高的体积效率,因此更高的功率输出。作为一种折衷解决方案,可能需要利用汽油和气体(Ng或LPG)的优点,从而进行双燃料喷射:正如作者实验,向汽油/空气混合物添加气态燃料增加爆震阻力,允许使用“整体化学计量”混合物(从而降低燃料消耗和排放)和更好的火花提前(增加发动机效率)的发动机,即使在满载中也会增加发动机:在没有明显的电力的情况下表现出高改善发动机效率损失尊重纯汽油操作。由于在NG - 汽油和LPG-汽油混合物的辛烷值上没有发现文献中的文献,因此作者决定通过对正常的空气 - 汽油混合物的气态燃料进行实验确定抗冲击性增加。已经进行了广泛的实验活动,以评估气体燃料汽油混合物组合物与其在马达辛烷值(MON)方面测量的整体抗震性之间的相关性。为此目的,CFR发动机赋予两个独立的注射系统,以实现气态燃料和汽油之间具有不同比例的混合物,并控制整体空燃比。本文提出的实验结果是非常创新的,将是未来对热燃料和汽油的同时燃烧的研究的基础。实验结果表明,混合物中混合物和气态燃料浓度之间的关系在Ng - 汽油和LPG-汽油共混物之间不具有线性的。

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