首页> 外文会议>Progress In Electromagnetic Research Symposium >Design of microwave heating apparatus for titanium powder for mass production
【24h】

Design of microwave heating apparatus for titanium powder for mass production

机译:批量生产钛粉微波加热装置的设计

获取原文

摘要

Since the discovery that microwave can heat metal powder, a number of studies on microwave heating of metal powder have been conducted. Because the microwave can heat various substances more efficiently than conventional heating, microwave heating of metal powder is highly expected to be applied in industry. In this paper, we design microwave heating apparatus for titanium powder for industrial mass production. The apparatus consists of some cavity resonators and a belt conveyor. Each resonator has additional two square openings other than microwave input for a belt conveyor, and they are set in parallel. Then we make the belt conveyor pass through the openings of the resonators and put the heated samples in cylindrical containers on the belt. In this condition, when the conveyor works, the samples are sent one after another, making it possible to heat metal powder seamlessly and efficiently. We evaluated this model by electromagnetic simulation, especially sample absorption and energy leakage from the openings, and investigated the optimal size for efficient heating. However in our simulations, because of the difficulty to simulate real titanium powder with complicated structure for limited computation resource, TiO2 bulk metal was applied as alternative of the titanium powder. The results show that the shorter vertical length of the openings gave more sample absorption, whilst horizontal length of the openings dis not affect sample absorption relatively. As for energy leakage from the openings, the shorter both vertical and horizontal length of the openings, the less energy leakage. Also paralleling resonators can reduce microwave leakage from the openings.
机译:自从发现微波可以加热金属粉末以来,已经进行了许多关于微波加热金属粉末的研究。由于微波可以比常规加热更有效地加热各种物质,因此高度期望将金属粉末的微波加热应用于工业中。本文设计了工业规模生产钛粉用微波加热装置。该设备由一些空腔谐振器和皮带输送机组成。每个谐振器除了用于皮带输送机的微波输入外,还具有另外两个方形开口,它们平行设置。然后,我们使皮带输送机穿过谐振器的开口,并将加热后的样品放入皮带上的圆柱形容器中。在这种情况下,当传送带工作时,样品会陆续送出,从而可以无缝,高效地加热金属粉末。我们通过电磁仿真评估了该模型,尤其是样品从开口处的吸收和能量泄漏,并研究了有效加热的最佳尺寸。然而,在我们的模拟中,由于难以模拟有限的计算资源来模拟结构复杂的真实钛粉,因此使用TiO2块状金属替代钛粉。结果表明,开口的垂直长度越短,样品的吸收越多,而开口的水平长度相对地不影响样品的吸收。至于从开口泄漏的能量,开口的垂直和水平长度越短,能量泄漏越少。同样,并联谐振器可以减少微波从开口泄漏。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号