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Improved Annealing Furnace Control for Fuel Efficiency and Cycle Time Reduction

机译:改进的退火炉控制,用于燃油效率和循环时间减少

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Annealing heat treatment cycle times are often based on operator visual assessments of when the furnace load is up to operating temperature. Operator load-to-furnace color matching for annealing furnace control introduces process variation, long heat treatment cycle times, and excessive energy consumption. Improved control strategies for determining furnace load temperature can potentially yield more consistent products, increase productivity, and conserve energy. A project is currently underway to develop such a robust strategy appropriate for large natural gas fired annealing furnaces. Enhanced monitoring with advanced load and furnace sensors, such as infrared thermometers and gas flow meters has been evaluated. Using these sensor outputs, an annealing cycle control strategy has been developed that automatically adjusts for furnace dynamics and furnace loading. The developed control strategy proceeds by numerically evaluating analytical equations of transient one-dimensional heat diffusion and is capable of accurately determining center temperatures based on measured surface temperatures via an infrared thermometer. By directly measuring load surface temperature, the rate of change in temperature at the center of the cylindrical load can be quantified without prior knowledge of specific furnace characteristics.
机译:退火热处理循环时间通常基于操作员视觉评估,当炉负载达到工作温度时。操作员装载到炉颜色匹配用于退火炉控制器引入过程变化,长热处理循环时间和过度的能耗。改善用于确定炉负荷温度的控制策略可能会产生更一致的产品,提高生产率和节约能量。目前正在进行一个项目,以开发适合大型天然气燃火退火炉的强大策略。通过高级负载和炉子传感器的增强监测,如红外温度计和气体流量计。使用这些传感器输出,已经开发了退火循环控制策略,可自动调整炉动力学和炉载荷。通过数值评估瞬态一维热扩散的分析方程,所发育的控制策略进行,并且能够通过红外温度计基于测量的表面温度准确地确定中心温度。通过直接测量负载表面温度,可以在圆柱形负载中心处的温度变化率而无需现有的特定炉特性。

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