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储能系统技术 储能系统 SiC器件 ★ 4.0

一种具有等容与等温过程的新型耦合动力循环在内燃机中的性能优化与对比研究

Performance optimization and comparative study on a novel coupled power cycle featuring isochoric and isothermal processes in internal combustion engine

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中文摘要

开发具有更高热效率的热力循环是应对内燃机节能、环保和减排挑战的关键途径。然而,现有的内燃机优化循环仍受限于奥托循环、柴油循环和布雷顿循环等经典热力循环的基本局限性,导致循环性能提升遭遇瓶颈。得益于基于先进柔性材料的张力活塞技术,内燃机中的等温过程得以灵活实现。本文提出了一种新型循环——具有等容与等温过程的耦合动力循环,以提高平均吸热温度。基于热力学基本定律建立了热力学模型,并推导了理想气体的理想热效率方程。结果表明,热效率和可持续性指数均与压气机及活塞燃烧室的压力比呈正相关关系。相比之下,随着压气机压力比的增加,功率密度将达到峰值;而随着活塞燃烧室压力比的增大,功率密度则呈现下降趋势。当热效率与功率密度的权重分别为0.5和0.5时,系统在压气机压力比为46.00、活塞燃烧室压力比为1.56时达到最优性能。与柴油循环和布雷顿循环相比,所提出的耦合动力循环的热效率分别至少提升了30%和10%。结合特定的斜盘机构,该耦合动力循环有望显著提升内燃机的整体性能。

English Abstract

Abstract Developing thermodynamic cycles with higher efficiency is a critical approach to addressing energy conservation, environmental protection, and emission reduction challenges in internal combustion engines. However, existing optimized cycles for internal combustion engines remain constrained by the fundamental limitations of classical thermodynamic cycles, such as the Otto, Diesel, and Brayton cycles, resulting in a bottleneck in cycle performance. Benefit from tension pistons based on advanced flexible materials, isothermal processes in internal combustion engine are flexible. In this paper, a novel cycle called coupled power cycle featuring isochoric and isothermal processes is proposed, increasing the average heat absorption temperature. A thermodynamic model is developed based on the fundamental laws of thermodynamics, and ideal thermal efficiency equation for ideal gas is derived. Results show that the thermal efficiency and the sustainability index are positively correlated to the pressure ratio in compressor and piston combustion chamber. By contrast, the power density will reach the top as a result of the increase in the pressure ratio in compressor while the power density will show the downwards trend with the pressure ratio in piston combustion chamber growing up. If the weights of thermal efficiency and power density are 0.5 and 0.5 differently, optimal performance is achieved at pressure ratios in compressor and piston combustion chamber at 46.00 and 1.56, respectively. Compared to the Diesel and Brayton cycles, the proposed coupled power cycle achieves at least a 30% and 10% improvement in thermal efficiency, respectively. Together with a specific swashplate, the proposed coupled power cycle is expected to realize a significant improvement in the performance of internal combustion engines.
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SunView 深度解读

该耦合动力循环技术通过等容-等温过程优化,热效率提升30%以上,为阳光电源储能系统热管理提供创新思路。ST系列PCS及PowerTitan在大功率运行时面临散热挑战,可借鉴其等温过程控制策略优化功率器件温度管理。该技术对压缩比的多目标优化方法,可应用于储能系统功率密度与效率的协同设计。结合SiC器件低损耗特性,有望在充电桩及电驱系统实现热效率突破,支撑阳光电源新能源全场景解决方案性能提升。