使用DSP F28379D进行实验室研究的三相储能系统的设计和实施
Hoai Phong Nguyen1, Thuan Thanh Nguyen1, Minh Phuong Le2
1Faculty of Electrical Engineering Technology, Industrial University of Ho Chi Minh City, Ho Chi Minh City, Viet Nam.
HardwareX
|July 21, 2025
概括
这项研究详细介绍了大学实验室的模块化三相能量存储系统. 硬件设计支持电网连接,并促进对储能控制算法的测试.
科学领域:
- 电气工程 电气工程
- 电力系统 电力系统
- 整合可再生能源的整合
背景情况:
- 大学实验室需要适应性硬件来进行储能系统研究.
- 现有系统可能缺乏模块化,以便轻松进行配置更改和算法测试.
- 连接到电网的储能对电力系统稳定性和可再生能源整合至关重要.
研究的目的:
- 介绍一个模块化三相储能系统的硬件设计.
- 为了使电网连接的储能控制算法能够进行实验室实验.
- 为大学水平的电力电子和储能研究提供一个教育工具.
主要方法:
- 硬件设计采用双向直流/直流反弹转换器和三相直流/交流转换器.
- 使用德克萨斯仪器DSP F28379D与C编程语言进行控制实现.
- 使用霍尔效应传感器来安全地隔离电源和控制电路.
- 模块化设计可提供灵活的配置和可扩展性.
主要成果:
- 成功实现了三相能量存储系统的硬件模型.
- 在受控功率 (230W) 的电网连接充电和放电能力的演示.
- 系统适用于实验室实验和教育目的的验证.
结论:
- 设计的模块化储能系统有效地满足了大学实验室的要求.
- 该系统有助于测试和开发用于联网存储的控制算法.
- 这种硬件是电力工程学生的宝贵教育资源.
关键词:
双向3相6开关直流/交流转换器双向直流/直流反弹转换器DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP F283779D DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP DSP D is not what you want is what you want is what you want is what you want is what you want is what you want三相储能系统是三相储能系统.相关概念视频
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