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Steady-state thermal characteristics of AMR read/write heads used in tape storage drives

机译:磁带存储驱动器中使用的AMR读/写头的稳态热特性

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Tape storage drives use lithographically deposited anisotropic magnetoresistive (AMR) sensors to read magnetic transitions written on tape. The read-back signal and the reliability of an AMR sensor are both affected by sensor temperature. Because current passes through the sensor, it is subject to joule heating, dependent on both the geometry of the sensor and the thermal conductivities of its material. Because of the resources required to build new sensors, the ability to predict the effects of dimensional changes on sensor temperature is important. This paper describes an analytical model and a three-dimensional finite element analysis (FEA) of the heat transfer for a shielded rectangular-sheet AMR sensor under joule heating over a range of sensor dimensions. The novel analysis consolidates the experimental and FEA data into a few parameters that make it possible to calculate the sensor temperature as a function of power for a wide range of geometries, thus assisting designers who need to set current limitations on the read elements of extant drives and to extrapolate to next-generation drives. We also evaluate the temperature of a sensor and the substrate in a drive, combining the heating from writers and readers. Heat flow away from the head substrate was found to be significantly higher when the tape is moving than when it is stationary, and a simple model is developed to describe the heat dissipation of the substrate as a function of tape velocity.
机译:磁带存储驱动器使用光刻沉积的各向异性磁阻(AMR)传感器读取写在磁带上的磁跃迁。 AMR传感器的回读信号和可靠性都受传感器温度的影响。由于电流流经传感器,因此会受到焦耳热,这取决于传感器的几何形状及其材料的热导率。由于建造新传感器所需的资源,预测尺寸变化对传感器温度的影响的能力很重要。本文描述了屏蔽矩形板AMR传感器在一定范围内的焦耳加热下的传热分析模型和三维有限元分析(FEA)。新颖的分析将实验数据和FEA数据整合为几个参数,从而有可能计算各种几何条件下的传感器温度与功率的关系,从而帮助需要在现有驱动器的读取元件上设置电流限制的设计人员并推断出下一代驱动器。我们还将写入器和读取器的热量结合在一起,评估驱动器中传感器和基板的温度。人们发现,当磁带移动时,从磁头基板上流走的热量要比静止时要大得多,并且开发了一个简单的模型来描述磁带的速度随磁带的速度而变化。

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