天线腔体射频热储能耦合循环利用方法及装置

By constructing a coupled mapping relationship between the temperature field and the electromagnetic standing wave field in the radio frequency heating system, actively reconstructing the radio frequency energy distribution and controlling the phase change energy storage unit, the problem of heat loss caused by uneven radio frequency energy is solved, and efficient heat recovery and electrical energy recycling are realized.

CN122192084BActive Publication Date: 2026-07-17ZHUHAI QIANHONG ZHIJIN TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
ZHUHAI QIANHONG ZHIJIN TECH CO LTD
Filing Date
2026-05-15
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

In existing radio frequency heating systems, the radio frequency energy is unevenly distributed within the cavity, leading to the random migration of high-loss areas, resulting in localized overheating and heat dissipation, making it difficult to achieve effective energy storage, recovery, and recycling.

Method used

By constructing a coupled mapping relationship between the temperature field and the electromagnetic standing wave field within the cavity, the spatial distribution of radio frequency energy is actively reconstructed, and a discrete phase change energy storage unit array is arranged along the controlled path. By utilizing feedforward prediction and dynamic adjustment parameters, precise control of the phase change energy storage unit and energy feedback cycle management are achieved.

Benefits of technology

It enables controllable adjustment of the spatial distribution of radio frequency energy, improves the heat recovery rate and energy recycling efficiency, and ensures stable response and efficient power feedback of the phase change energy storage unit.

✦ Generated by Eureka AI based on patent content.

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Abstract

本发明公开了天线腔体射频热储能耦合循环利用方法及装置,涉及绿色能源和储能循环利用技术领域。方法包括:构建温度场与驻波场耦合映射,重构射频能量分布,使高损区域按预设路径迁移;在迁移路径构建相变储能单元阵列,输入轨迹等特征预测相变过程;结合预测与实时温度,生成导热能力及热耦合通断调控参数;据此控制储能阵列,并以最大功率点管理电能回馈循环。解决了传统天线腔体射频加热过程中因热能分布不均且缺乏有效调控手段,导致大量射频热能散失、回收效率低的技术问题,达到了通过构建耦合映射关系实现射频能量空间分布主动重构,并利用动态调控参数精准控制相变储能单元,提高射频热能回收率与能源循环利用效率的技术效果。
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