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Evaluation of the thermal design of a liquid-lens cooling system for projection picture tubes.

机译:投影显像管液镜冷却系统的热设计评估。

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摘要

The thermal design of a liquid-lens system for cooling picture tubes in projection television receivers is evaluated using an experimentally benchmarked numerical model. Because of the intense brightness in the visual image, excessive waste heat is generated as the by-product of light emission from the phosphor screen as the electron beam sweeps across the raster region at the back of the face panel. Projection tube specifications indicate a maximum allowable temperature at the face-panel center and a maximum allowable temperature differential between the center and perimeter points. To cool the tube's face, an optical liquid (liquid lens) fills the space between the face panel and a meniscus lens directly in front of it. A metallic enclosure frame serves as support for the meniscus lens and a container for the liquid. Heat is transferred by natural convection from the face panel to the enclosure frame and from there to the interior environment of the television cabinet by convection and radiation.; A boundary-fitted, finite-volume-based numerical model of the conjugate heat transfer and fluid flow processes within the liquid-lens system was developed and benchmarked with experimental data for nominal operation with the tube face oriented upward, making 30° with the horizontal. Results proved the thermal design adequate, with additional performance margin. Approximately 94% of the electrical input power is converted into heat at the phosphor screen (6% into visible light). Of that heat, 79% is transferred to the face-panel front by conduction, 19% to the tube interior by radiation, and 2% to the face panel sidewalls by conduction. Thermal performance is virtually unaffected by changes in the enclosure frame dimension, meniscus-lens design and position, or by variations in the tilt angle between 0° (face up) and 130°. Thermal performance is virtually insensitive to the meniscus lens thermal conductivity, but it can be enhanced using an optical liquid having higher thermal conductivity, density, specific heat, and volume expansivity or lower kinematic viscosity. If the need arises for enhancements in thermal performance; that is, lower temperatures or smaller temperature gradients on the tube face, forced convection cooling should be used instead of natural convection.
机译:使用实验基准数值模型评估了用于冷却投影电视接收机中显像管的液镜系统的热设计。由于可视图像中的强烈亮度,当电子束扫过面板背面的光栅区域时,会产生过多的废热,这是荧光屏发出的光的副产品。投影管的规格指示面板中央的最高允许温度以及中央和周边点之间的最大容许温度差。为了冷却灯管的表面,光学液体(液体透镜)填充了面板和直接位于其前面的弯月形透镜之间的空间。金属外壳框架用作弯月形透镜的支撑和液体的容器。热通过自然对流从面板传递到外壳框架,再通过对流和辐射从那里传递到电视柜的内部环境。开发了基于边界拟合的基于有限体积的液体透镜系统内共轭传热和流体流动过程的数值模型,并以实验数据为基准进行了标称操作(管面朝上,与水平面成30°) 。结果证明散热设计适当,并具有额外的性能余量。约94%的电输入功率在荧光屏上转换成热量(6%转换为可见光)。在该热量中,有79%通过传导传递到面板前部,通过辐射传递到面板内部的比例为19%,通过传导传递到面板侧壁的比例为2%。实际上,热性能不受外壳框架尺寸,弯月形透镜设计和位置的变化或0°(面朝上)和130°之间的倾斜角变化的影响。热性能实际上对弯月形透镜的热导率不敏感,但是可以使用具有较高热导率,密度,比热和体积膨胀率或较低运动粘度的光学液体来增强热性能。如果需要增强热性能;也就是说,在管子表面温度较低或温度梯度较小时,应使用强制对流冷却代替自然对流。

著录项

  • 作者

    Lamas, Jose Angel.;

  • 作者单位

    The University of Tennessee.;

  • 授予单位 The University of Tennessee.;
  • 学科 Engineering Mechanical.; Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 429 p.
  • 总页数 429
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;无线电电子学、电信技术;
  • 关键词

  • 入库时间 2022-08-17 11:46:18

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