Hybrid energy storage device based on multi-port transformer and direct current bus connection

Q2 Energy
Xiu Zheng, Haixu Chen, Jiyang Zhang, Xiaohe Zhao, Dantong Wang
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引用次数: 0

Abstract

In the context of energy management during digital transformation, traditional energy storage devices face challenges in multi-source coordination and efficient management. The key issue for system optimization is how to stabilize the management of multiple energy storage units. To address this, the study innovatively proposes a Hybrid Energy Storage System integrating a Multi-Port Transformer and Direct Current Bus. By constructing multi-port control factors, the system achieves coordinated optimization of the energy storage units, through dynamic adjustment of multi-port control factors and energy conversion matrices, the system can flexibly allocate power output from various energy storage units according to load demands, ensuring stable system operation. Experimental results in a microgrid system show that the integrated control system has a response time of 2.3 ms under 80% load, significantly outperforming the Proportional Integral Control (8.7 ms) and during the energy storage unit switching process, the voltage fluctuation rate is only 0.8% with a switching time of just 1.8 ms, and system stability reaching 98.5%. Under high-load conditions, the energy conversion efficiency is 96.8%, and the power distribution error is only 1.2%. Compared to traditional energy storage devices, the initial investment cost of this device is reduced by 7.4%, and the annual maintenance cost is reduced by 21.7%. These results indicate that the improved hybrid energy storage device not only possesses excellent energy management capabilities but also significantly reduces operational costs and environmental impact. The study provides an efficient technical solution for managing complex energy systems, which is of great significance for promoting smart grid construction and achieving green, low-carbon goals.

基于多端口变压器和直流母线连接的混合储能装置
在数字化转型的能源管理背景下,传统储能设备面临着多源协调和高效管理的挑战。系统优化的关键问题是如何稳定地管理多个储能单元。为了解决这个问题,本研究创新性地提出了一种集成多端口变压器和直流母线的混合储能系统。通过构建多端口控制因子,系统实现了对储能单元的协同优化,通过对多端口控制因子和能量转换矩阵的动态调整,系统可以根据负载需求灵活分配各储能单元的输出功率,保证系统稳定运行。在微电网系统中的实验结果表明,集成控制系统在80%负荷下的响应时间为2.3 ms,显著优于比例积分控制(8.7 ms),在储能单元切换过程中,电压波动率仅为0.8%,切换时间仅为1.8 ms,系统稳定性达到98.5%。在高负荷工况下,能量转换效率为96.8%,配电误差仅为1.2%。与传统储能设备相比,该设备初始投资成本降低7.4%,年维护成本降低21.7%。这些结果表明,改进后的混合储能装置不仅具有出色的能量管理能力,而且显著降低了运行成本和环境影响。本研究为复杂能源系统的管理提供了一种高效的技术解决方案,对推动智能电网建设,实现绿色低碳目标具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Energy Informatics
Energy Informatics Computer Science-Computer Networks and Communications
CiteScore
5.50
自引率
0.00%
发文量
34
审稿时长
5 weeks
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