变频控制与移相控制组成的混合式控制全桥LLC谐振变换器仿真(PFM+PSM混合控制) 输出电压闭环控制,软开关,宽范围,可实现
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变频控制与移相控制组成的混合式控制全桥LLC谐振变换器仿真(PFM+PSM混合控制) 输出电压闭环控制,软开关,宽范围,可实现调频和移相的自动切换,调频和移相控制下的稳定波形如图所示matlab simulink和plecs模型都有~ <link href="/image.php?url=https://csdnimg.cn/release/download_crawler_static/css/base.min.css" rel="stylesheet"/><link href="/image.php?url=https://csdnimg.cn/release/download_crawler_static/css/fancy.min.css" rel="stylesheet"/><link href="/image.php?url=https://csdnimg.cn/release/download_crawler_static/89762861/raw.css" rel="stylesheet"/><div id="sidebar" style="display: none"><div id="outline"></div></div><div class="pf w0 h0" data-page-no="1" id="pf1"><div class="pc pc1 w0 h0"><img alt="" class="bi x0 y0 w1 h1" src="/image.php?url=https://csdnimg.cn/release/download_crawler_static/89762861/bg1.jpg"/><div class="t m0 x1 h2 y1 ff1 fs0 fc0 sc0 ls0 ws0">混合式控制方案的研究及应用</div><div class="t m0 x1 h2 y2 ff1 fs0 fc0 sc0 ls0 ws0">摘要<span class="ff2">:</span>本文旨在探讨由变频控制与移相控制组成的混合式控制方案在全桥<span class="_ _0"> </span><span class="ff3">LLC<span class="_ _1"> </span></span>谐振变换器中的仿真应</div><div class="t m0 x1 h2 y3 ff1 fs0 fc0 sc0 ls0 ws0">用<span class="ff4">。</span>通过输出电压的闭环控制<span class="ff2">,</span>软开关技术的运用以及调频和移相的自动切换功能<span class="ff2">,</span>该方案在宽范围</div><div class="t m0 x1 h2 y4 ff1 fs0 fc0 sc0 ls0 ws0">内实现了稳定波形的传输和控制<span class="ff4">。</span></div><div class="t m0 x1 h2 y5 ff1 fs0 fc0 sc0 ls0 ws0">关键词<span class="ff2">:</span>混合式控制<span class="ff2">;</span>变频控制<span class="ff2">;</span>移相控制<span class="ff2">;</span>全桥<span class="_ _0"> </span><span class="ff3">LLC<span class="_ _1"> </span></span>谐振变换器<span class="ff2">;</span>软开关技术</div><div class="t m0 x1 h2 y6 ff3 fs0 fc0 sc0 ls0 ws0">1.<span class="_ _2"> </span><span class="ff1">引言</span></div><div class="t m0 x1 h2 y7 ff1 fs0 fc0 sc0 ls0 ws0">全桥<span class="_ _0"> </span><span class="ff3">LLC<span class="_ _1"> </span></span>谐振变换器作为一种高效能源转换器<span class="ff2">,</span>在电力电子领域中得到了广泛的应用<span class="ff4">。</span>如何进一步提</div><div class="t m0 x1 h2 y8 ff1 fs0 fc0 sc0 ls0 ws0">升其稳定性和控制性能成为了研究的热点之一<span class="ff4">。</span>本文提出了一种混合式控制方案<span class="ff2">,</span>该方案由变频控制</div><div class="t m0 x1 h2 y9 ff1 fs0 fc0 sc0 ls0 ws0">与移相控制相结合<span class="ff2">,</span>实现了全桥<span class="_ _0"> </span><span class="ff3">LLC<span class="_ _1"> </span></span>谐振变换器的高效能与稳定性<span class="ff4">。</span></div><div class="t m0 x1 h2 ya ff3 fs0 fc0 sc0 ls0 ws0">2.<span class="_ _2"> </span><span class="ff1">变频控制与移相控制的基本原理</span></div><div class="t m0 x1 h2 yb ff3 fs0 fc0 sc0 ls0 ws0">2.1.<span class="_"> </span><span class="ff1">变频控制</span></div><div class="t m0 x1 h2 yc ff1 fs0 fc0 sc0 ls0 ws0">变频控制是指通过改变传输信号的频率以实现对电路传输特性的控制<span class="ff4">。</span>在全桥<span class="_ _0"> </span><span class="ff3">LLC<span class="_ _1"> </span></span>谐振变换器中<span class="ff2">,</span>通</div><div class="t m0 x1 h2 yd ff1 fs0 fc0 sc0 ls0 ws0">过调节输出频率<span class="ff2">,</span>可以达到对输出电压和电流的精确控制<span class="ff4">。</span></div><div class="t m0 x1 h2 ye ff3 fs0 fc0 sc0 ls0 ws0">2.2.<span class="_"> </span><span class="ff1">移相控制</span></div><div class="t m0 x1 h2 yf ff1 fs0 fc0 sc0 ls0 ws0">移相控制是指改变传输信号相位的方法<span class="ff2">,</span>通过调整信号的相位差<span class="ff2">,</span>可以实现对电路的相位特性的控制</div><div class="t m0 x1 h2 y10 ff4 fs0 fc0 sc0 ls0 ws0">。<span class="ff1">在全桥<span class="_ _0"> </span><span class="ff3">LLC<span class="_ _1"> </span></span>谐振变换器中<span class="ff2">,</span>移相控制可以用于实现软开关技术的应用</span>。</div><div class="t m0 x1 h2 y11 ff3 fs0 fc0 sc0 ls0 ws0">3.<span class="_ _2"> </span><span class="ff1">混合式控制方案的原理与仿真实验</span></div><div class="t m0 x1 h2 y12 ff3 fs0 fc0 sc0 ls0 ws0">3.1.<span class="_"> </span><span class="ff1">方案原理</span></div><div class="t m0 x1 h2 y13 ff1 fs0 fc0 sc0 ls0 ws0">本文提出的混合式控制方案将变频控制与移相控制相结合<span class="ff2">,</span>以实现全桥<span class="_ _0"> </span><span class="ff3">LLC<span class="_ _1"> </span></span>谐振变换器的高效能与稳</div><div class="t m0 x1 h2 y14 ff1 fs0 fc0 sc0 ls0 ws0">定性<span class="ff4">。</span>通过控制输出电压的闭环控制<span class="ff2">,</span>自动切换调频和移相控制模式<span class="ff2">,</span>以及应用软开关技术<span class="ff2">,</span>该方案</div><div class="t m0 x1 h2 y15 ff1 fs0 fc0 sc0 ls0 ws0">能够在宽范围内实现稳定波形的传输<span class="ff4">。</span></div><div class="t m0 x1 h2 y16 ff3 fs0 fc0 sc0 ls0 ws0">3.2.<span class="_"> </span><span class="ff1">仿真实验</span></div><div class="t m0 x1 h2 y17 ff1 fs0 fc0 sc0 ls0 ws0">本文采用了<span class="_ _0"> </span><span class="ff3">matlab simulink<span class="_ _1"> </span></span>和<span class="_ _0"> </span><span class="ff3">plecs<span class="_ _1"> </span></span>模型对混合式控制方案进行了仿真实验<span class="ff4">。</span>通过对比不同控</div><div class="t m0 x1 h2 y18 ff1 fs0 fc0 sc0 ls0 ws0">制模式下的输出波形<span class="ff2">,</span>验证了该方案的有效性和稳定性<span class="ff4">。</span>实验结果如图<span class="_ _0"> </span><span class="ff3">1<span class="_ _1"> </span></span>所示<span class="ff4">。</span></div><div class="t m0 x1 h2 y19 ff3 fs0 fc0 sc0 ls0 ws0">4.<span class="_ _2"> </span><span class="ff1">结论与展望</span></div><div class="t m0 x1 h2 y1a ff1 fs0 fc0 sc0 ls0 ws0">本文提出了一种由变频控制与移相控制组成的混合式控制方案<span class="ff2">,</span>并应用于全桥<span class="_ _0"> </span><span class="ff3">LLC<span class="_ _1"> </span></span>谐振变换器中<span class="ff4">。</span>通</div><div class="t m0 x1 h2 y1b ff1 fs0 fc0 sc0 ls0 ws0">过输出电压闭环控制<span class="ff4">、</span>软开关技术的应用以及调频和移相的自动切换功能<span class="ff2">,</span>该方案能够在宽范围内实</div><div class="t m0 x1 h2 y1c ff1 fs0 fc0 sc0 ls0 ws0">现稳定波形的传输和控制<span class="ff4">。</span>然而<span class="ff2">,</span>本文的研究还存在一些不足之处<span class="ff2">,</span>需要进一步完善和改进<span class="ff4">。</span>未来的</div><div class="t m0 x1 h2 y1d ff1 fs0 fc0 sc0 ls0 ws0">研究可以集中在进一步提升控制精度和降低功率损耗等方面<span class="ff4">。</span></div></div><div class="pi" data-data='{"ctm":[1.568627,0.000000,0.000000,1.568627,0.000000,0.000000]}'></div></div>