供电电压达24v的电网不间断供电系统的开发与研究

I. M. Sharov, O. Demin, A. A. Sudakov, A. D. Yarlykov
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摘要

目标。由于可再生能源的不断快速发展,对二次供电系统的要求逐年增加。终端用户的生产正常运行时间取决于供电系统的效率和稳定性。这样的系统应该能够分配和储存来自具有各种参数和配置的可再生能源的能量。因此,目前的工作旨在为低压直流网络中高效的不间断二次电源系统开发技术解决方案。先进的电路解决方案用于执行高效率的脉冲转换。采用灵活的软硬件系统实现参数控制系统。研制了一种低压直流电网用不间断电源。给出了各子系统的描述和各主要元件包括功率元件的计算。使用现代组件库,系统原型被组装、配置,并通过参数进行测量。所提出的解决方案可以实现系统在输入和输出电压范围方面的通用性。支持快速充电的Power Delivery协议。除了调节电池充电电流和电压外,Li+电池充电控制器还允许改变可充电电池的数量。监控单元监控网络参数,控制系统自动化。使用微控制器作为控制装置,可以通过更改软件设置轻松更改控制参数。内置电池参数监测模块采用双冗余设计,确保系统运行的可靠性和安全性。支持标准化的I2C通信协议,单独的电源总线允许连接任何必要的传感器来监控系统参数。如果需要,可以添加由PWM信号控制的外部高功率器件。本文给出了厂家推荐的锂离子电池充电方式。设计的系统为最终用户提供稳定的电源,功耗高达40w,至少45分钟。自动化证明了可靠的运行。
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Development and research of uninterruptible power supply system for networks with supply voltage up to 24 V
Objectives. Due to the continuous rapid development of renewable energy sources, requirements for secondary power supply systems keep increasing from year to year. Productive uptime for end users is dependent on the efficiency and stability of the power supply system. Such systems should be able to distribute and store energy from renewable sources having various parameters and configurations. Therefore, the present work is aimed at developing technical solutions for efficient uninterruptible secondary power supply systems in low voltage DC networks.Methods. Advanced circuitry solutions are used for performing pulse conversions with high efficiency. The flexible hardware-software system is used for implementing the parameter control system.Results. An uninterruptible power supply for low-voltage DC networks is developed. The description of subsystems and calculations for all main elements including the power ones are given. Using a contemporary component base, the system prototype is assembled, configured, and measured by parameters. The presented solutions allow achieving the universality of the system in terms of the input and output voltage range. Support for the fast-charging Power Delivery protocol is integrated. As well as regulating the battery charging current and voltage, the Li+ battery charging controller permits changes in the number of chargeable cells. The monitoring and control unit monitors network parameters and controls the system automation. Using a microcontroller as the control device, it is possible to easily change control parameters by changing software settings. Dual redundancy of the module monitoring the built-in battery parameters is used to ensure the reliability and safety of system functioning. Support for the standardized I2C communication protocol with a separate power bus allows any necessary sensors to be connected for monitoring system parameters. External high-power devices controlled by a PWM signal may be added, if required. In the paper, the Li+ battery charging profile recommended by the manufacturer is provided.Conclusions. The designed system provides stable power supply to end users at a power consumption up to 40 W for at least 45 min. The automation demonstrates reliable operation.
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