{"title":"改进高相数串联电容器降压转换器的调制功能","authors":"Gianluca Roberts;Aleksandar Prodić","doi":"10.1109/OJPEL.2024.3417017","DOIUrl":null,"url":null,"abstract":"This article presents three modulation improvements for the series-capacitor buck (SCB) converter and its topological derivatives. The first consists of various phase activation sequences (PHACTSs) which raise the maximum input-to-output voltage conversion ratio of an \n<italic>N</i>\n-inductor, \n<italic>N</i>\n-phase SCB converter beyond the traditional limit of 1/\n<italic>N</i>\n<sup>2</sup>\n, without incurring any additional voltage stress to the switches. Phase counts up to 16 are analyzed with conversion ratios increasing by a factor of up to 7. Due to the inherent link between the converter's maximum attainable output voltage and maximum output current slew rate, these PHACTSs offer a significant improvement to the load-voltage transient response. Utilizing the flying capacitors that link adjacent inductors, a second modulation technique is introduced that effectively increases the digital pulse-width-modulator's (DPWM) output-voltage resolution, by a factor of \n<italic>N</i>\n, by employing a novel method of minimum duty increments (MDIs). Despite the commonly-held assumption of automatic steady-state inductor-current-balancing present in an \n<italic>N</i>\n-inductor SCB, large-signal modelling reveals that slight current imbalances inevitably arise, even in lossless configurations, with three or more output inductors. After elucidating its origin, this article introduces a third modulation technique that can reduce these inductor current imbalances through a particular implementation of MDI. A discrete prototype of an 11-inductor, 48 V-to-1.0 V, 275 A-load, SCB converter was fabricated to experimentally demonstrate and validate the simulated results of the increase in both the output voltage ceiling and DPWM resolution, as well as to evaluate the MDI-DPWM output-voltage linearity. Finally, the maintenance of both inductor current balancing and low switch-voltage-stress is experimentally substantiated when using MDI.","PeriodicalId":93182,"journal":{"name":"IEEE open journal of power electronics","volume":null,"pages":null},"PeriodicalIF":5.0000,"publicationDate":"2024-06-20","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=10565994","citationCount":"0","resultStr":"{\"title\":\"Modulation Improvements for High-Phase-Count Series-Capacitor Buck Converters\",\"authors\":\"Gianluca Roberts;Aleksandar Prodić\",\"doi\":\"10.1109/OJPEL.2024.3417017\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"This article presents three modulation improvements for the series-capacitor buck (SCB) converter and its topological derivatives. The first consists of various phase activation sequences (PHACTSs) which raise the maximum input-to-output voltage conversion ratio of an \\n<italic>N</i>\\n-inductor, \\n<italic>N</i>\\n-phase SCB converter beyond the traditional limit of 1/\\n<italic>N</i>\\n<sup>2</sup>\\n, without incurring any additional voltage stress to the switches. Phase counts up to 16 are analyzed with conversion ratios increasing by a factor of up to 7. Due to the inherent link between the converter's maximum attainable output voltage and maximum output current slew rate, these PHACTSs offer a significant improvement to the load-voltage transient response. Utilizing the flying capacitors that link adjacent inductors, a second modulation technique is introduced that effectively increases the digital pulse-width-modulator's (DPWM) output-voltage resolution, by a factor of \\n<italic>N</i>\\n, by employing a novel method of minimum duty increments (MDIs). Despite the commonly-held assumption of automatic steady-state inductor-current-balancing present in an \\n<italic>N</i>\\n-inductor SCB, large-signal modelling reveals that slight current imbalances inevitably arise, even in lossless configurations, with three or more output inductors. After elucidating its origin, this article introduces a third modulation technique that can reduce these inductor current imbalances through a particular implementation of MDI. A discrete prototype of an 11-inductor, 48 V-to-1.0 V, 275 A-load, SCB converter was fabricated to experimentally demonstrate and validate the simulated results of the increase in both the output voltage ceiling and DPWM resolution, as well as to evaluate the MDI-DPWM output-voltage linearity. 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引用次数: 0
摘要
本文介绍了串联电容降压(SCB)转换器及其拓扑衍生物的三种调制改进方法。第一种改进包括各种相位激活序列 (PHACTS),可将 N 电感、N 相 SCB 转换器的最大输入输出电压转换率提高到传统的 1/N2 以上,而不会对开关造成任何额外的电压压力。分析的相数多达 16 相,转换率最多可提高 7 倍。由于转换器的最大输出电压和最大输出电流回转率之间存在固有联系,这些 PHACTS 可显著改善负载电压瞬态响应。利用连接相邻电感器的飞行电容器,引入了第二种调制技术,通过采用新颖的最小占空比增量 (MDI) 方法,有效地将数字脉宽调制器 (DPWM) 的输出电压分辨率提高了 N 倍。尽管人们普遍认为 N 个电感器的 SCB 会自动实现稳态电感器电流平衡,但大信号建模显示,即使在无损耗配置中,在有三个或更多输出电感器的情况下,也不可避免地会出现轻微的电流不平衡。本文在阐明其起源后,介绍了第三种调制技术,该技术可通过 MDI 的特定实施来减少这些电感器电流不平衡现象。本文制作了一个 11 个电感器、48 V 至 1.0 V、275 A 负载、SCB 转换器的离散原型,以实验证明和验证输出电压上限和 DPWM 分辨率提高的模拟结果,并评估 MDI-DPWM 输出电压线性度。最后,实验证实了使用 MDI 时电感器电流平衡和低开关电压应力的维持。
Modulation Improvements for High-Phase-Count Series-Capacitor Buck Converters
This article presents three modulation improvements for the series-capacitor buck (SCB) converter and its topological derivatives. The first consists of various phase activation sequences (PHACTSs) which raise the maximum input-to-output voltage conversion ratio of an
N
-inductor,
N
-phase SCB converter beyond the traditional limit of 1/
N
2
, without incurring any additional voltage stress to the switches. Phase counts up to 16 are analyzed with conversion ratios increasing by a factor of up to 7. Due to the inherent link between the converter's maximum attainable output voltage and maximum output current slew rate, these PHACTSs offer a significant improvement to the load-voltage transient response. Utilizing the flying capacitors that link adjacent inductors, a second modulation technique is introduced that effectively increases the digital pulse-width-modulator's (DPWM) output-voltage resolution, by a factor of
N
, by employing a novel method of minimum duty increments (MDIs). Despite the commonly-held assumption of automatic steady-state inductor-current-balancing present in an
N
-inductor SCB, large-signal modelling reveals that slight current imbalances inevitably arise, even in lossless configurations, with three or more output inductors. After elucidating its origin, this article introduces a third modulation technique that can reduce these inductor current imbalances through a particular implementation of MDI. A discrete prototype of an 11-inductor, 48 V-to-1.0 V, 275 A-load, SCB converter was fabricated to experimentally demonstrate and validate the simulated results of the increase in both the output voltage ceiling and DPWM resolution, as well as to evaluate the MDI-DPWM output-voltage linearity. Finally, the maintenance of both inductor current balancing and low switch-voltage-stress is experimentally substantiated when using MDI.