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首页> 外文期刊>Archives of Thermodynamics >Realization of the Atkinson-Miller cycle in spark-ignition engine by means of the fully variable inlet valve control system
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Realization of the Atkinson-Miller cycle in spark-ignition engine by means of the fully variable inlet valve control system

机译:通过全可变进气门控制系统实现火花点火发动机中的阿特金森-米勒循环

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The theoretical analysis of the charge exchange process in a spark ignition engine has been presented. This process has significant impact on the effectiveness of engine operation because it is related to the necessity of overcoming the flow resistance, followed by the necessity of doing a work, so-called the charge exchange work. The flow resistance caused by the throttling valve is especially high during the part load operation. The open Atkinson-Miller cycle has been assumed as a model of processes taking place in the engine. Using fully variable inlet valve timing the A-M cycle can be realized according to two systems: system with late inlet valve closing and system with early inlet valve closing. The systems have been analysed individually and comparatively with the open Seiliger-Sabathe cycle which is a theoretical cycle for the classical throttle governing of the engine load. Benefits resulting from application of the systems with independent inlet valve control have been assessed on the basis of the selected parameters: fuel dose, cycle work, charge exchange work and a cycle efficiency. The use of the analysed systems to governing of the SI engine load will enable to eliminate a throttling valve from the system inlet and reduce the charge exchange work, especially within the range of part load operation.
机译:提出了火花点火发动机中电荷交换过程的理论分析。该过程对发动机运转的效率具有重大影响,因为它与克服流阻的必要性有关,随后又需要进行所谓的电荷交换工作。在部分负荷运行期间,由节流阀引起的流阻特别高。开放式的阿特金森-米勒循环被假定为发动机中发生的过程的模型。使用完全可变的进气门正时,可以根据两个系统实现A-M循环:进气门关闭较晚的系统和进气门关闭较早的系统。已对系统进行了单独的比较分析,并采用开放的Seiliger-Sabathe循环进行了分析,该循环是经典节气门控制发动机负荷的理论循环。已基于所选参数评估了应用具有独立进气门控制功能的系统所带来的收益:燃料剂量,循环功,电荷交换功和循环效率。使用分析后的系统来控制SI发动机负载,将能够消除系统入口的节流阀并减少电荷交换功,尤其是在部分负载运行范围内。

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