微电子学, 2022, 52 (4): 681, 网络出版: 2023-01-18  

带有MPPT功能的高效率光伏电池升压转换器芯片

A High Efficiency Boost Converter Chip with MPPT Function for PV Cell
作者单位
1 哈尔滨工业大学 航天学院, 哈尔滨 150001
2 联合微电子中心有限责任公司, 重庆 401332
摘要
为了提高光伏电池的收集效率和环境适应性,提出了一种带有MPPT功能的高效率光伏电池升压转换器芯片。该电路系统包括新型四相高效电荷泵模块、扰动观察法MPPT控制电路模块、反馈控制模块、纳安级电流基准、检测电路模块等。该芯片采用0.35 μm BCD工艺设计、仿真并流片。芯片尺寸为3.15 mm×2.43 mm。测试结果表明,当光伏电池输出电压大于0.5 V时,升压转换器芯片输出电压提升到3Vin,电压转换效率可达99.4%。MPPT算法使输出功率提升8.53%。当输出负载电流为297 μA时,最宽输出PCE达到85.1%。该芯片实现了高效升压光伏电池输出电压的目标。
Abstract
To improve the collection efficiency and environmental adaptability of PV cell, a high efficiency boost converter chip with MPPT function for PV cell was proposed. This circuit system included a new type of four-phase high efficiency charge pump module, an MPPT control circuit module which utilized a disturbance observation method, a feedback control module, a nA level current reference, and a detection circuit module. The chip was designed, simulated and manufactured in a 0.35 μm BCD process. The chip size was 3.15 mm×2.43 mm. The test results showed that when the PV cell output voltage was more than 0.5 V, the output voltage of the converter was raised to 3Vin, and the voltage conversion efficiency could reach 99.4%. The MPPT algorithm made the output power improve by 8.53%. When the output load current was 297 μA, the widest output PCE achieved 85.1%. The chip was highly efficient in boosting the output voltage of PV cells.
参考文献

[1] 王大美. 无线传感器网络太阳能电源管理电路设计 [D]. 长春: 吉林大学, 2014.

[2] 刘放. 太阳能电池最大功率跟踪芯片的设计与实现 [D]. 杭州: 浙江大学, 2015.

[3] 朱浠文. 无线传感网络节点中光伏电池升压转换芯片的设计 [D]. 哈尔滨: 哈尔滨工业大学, 2020.

[4] SEEMAN M D,SANDERS S R,RABAEY J M. An ultra-low-power power management IC for wireless sensor nodes [C]// IEEE CICC. 2007: 567-570.

[5] OZAKI T,HIROSE T,NAGAI T,et al. A 0.21-V minimum input, 73.6% maximum efficiency, fully integrated voltage boost converter with MPPT for low-voltage energy harvesters [C]// 40th ESSCIRC. 2014: 255-258.

[6] OZAKI T, HIROSE T, ASANO H, et al. Fully-integrated high-conversion-ratio dual-output voltage boost converter with MPPT for low-voltage energy harvesting [J]. IEEE J Sol Sta Circ, 2016, 51(10): 2398-2407.

[7] KIM J, MOK P K T, KIM C. A 0.15 V input energy harvesting charge pump with dynamic body biasing and adaptive dead-time for efficiency improvement [J]. IEEE J Sol Sta Circ, 2015, 50(2): 414-425.

[8] 楚薇. 低压CMOS电荷泵的设计及应用 [D]. 合肥: 合肥工业大学, 2004.

[9] 陈明阳. 用于便携式医疗电子设备的低压低功耗电源管理关键技术研究 [D]. 杭州: 浙江大学, 2013.

[10] DE BRITO M A G, GALOTTO L, SAMPAIO L P, et al. Evaluation of the main MPPT techniques for photovoltaic applications [J]. IEEE Trans Indus Elec, 2013, 60(3): 1156-1167.

[11] 闫琳静, 杨健. 一种CMOS电流饥饿型环形压控振荡器 [J]. 微型机与应用, 2011, 30(5): 21-23.

[12] QIU Y, LIEMPD C V, VELD B, et al. 5 μW-to-10 mW input power range inductive boost converter for indoor photovoltaic energy harvesting with integrated maximum power point tracking algorithm [C]// IEEE ISSCC. San Francisco, CA, USA. 2011: 118-120.

朱浠文, 姜庆, 秦鹏, 胥凯旋, 张宇峰. 带有MPPT功能的高效率光伏电池升压转换器芯片[J]. 微电子学, 2022, 52(4): 681. ZHU Xiwen, JIANG Qing, QIN Peng, XU Kaixuan, ZHANG Yufeng. A High Efficiency Boost Converter Chip with MPPT Function for PV Cell[J]. Microelectronics, 2022, 52(4): 681.

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