Design of height measurement sensor for hydraulic support in fully mechanized working face
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摘要: 针对综采工作面液压支架高度测量困难和可靠性、稳定性差等问题,设计了一种基于帕斯卡定律的液压支架测高传感器。该测高传感器内置一根细长液管,液管中充满甲基硅油,测高传感器两端安装压力传感器,通过测量密闭液管的两端压力,得到测高传感器两端位置的高度差。甲基硅油在环境温度变化时具有明显的热胀冷缩特性,会引起密闭空间内的压力急剧变化,影响测量精度,提出了一种补偿方法:采用波纹管存储一部分甲基硅油,利用波纹管自身的弹性补偿甲基硅油热胀冷缩造成的体积变化;并在软件中通过算法校准甲基硅油体积变化带来的密度变化,从而确保测高传感器的测量精度。试验结果表明:测高传感器可工作在0~40 ℃环境下,测量误差在4 cm以内。在薄煤层、中厚煤层综采工作面液压支架的现场应用结果表明:与人工测量结果相比,测高传感器的高度测量误差在5 cm以内,说明该传感器可靠性较高。Abstract: A hydraulic support height measueement sensor based on Pascal's law is designed to address the difficulties in measuring the height, reliability, and stability of hydraulic supports in fully mechanized working faces. The height measurement sensor is equipped with a slender liquid tube, which is filled with methyl silicone oil. Pressure sensors are installed at both ends of the height measuremenr sensor. By measuring the pressure at both ends of the sealed liquid tube, the height difference between the two ends of the height measuremenr sensor is obtained. Methyl silicone oil has obvious thermal expansion and contraction characteristics when the ambient temperature changes, which can cause a sharp change in pressure in a closed space and affect measurement precision. A compensation method is proposed. The method stores a portion of methyl silicone oil in a corrugated tube, and uses the elasticity of the corrugated tube itself to compensate for the volume change caused by thermal expansion and contraction of methyl silicone oil. The method calibrates the density change caused by the volume change of methyl silicone oil through algorithms in the software to ensure the measurement precision of the height measurement sensor. The test results show that the height measuremenr sensor can operate in an environment of 0-40 ℃, with a measurement error of less than 4 cm. The on-site application results of the hydraulic support in the fully mechanized working face of thin and medium thick coal seams show that compared with manual measurement results, the error of the height measurement sensor is within 5 cm, indicating high reliability of the sensor.
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表 1 甲基硅油密度与温度关系对应
Table 1. Correspondence between density and temperature of methyl silicone oil
理想测试温度/℃ 密度/(g·cm−3) 实测温度/℃ 密度平均值/(g·cm−3) 10 0.953 09 10.04 0.953 10 0.953 11 10.01 15 0.948 50 14.99 0.948 50 0.948 49 15.01 18 0.945 73 17.99 0.945 72 0.945 71 18.01 21 0.942 96 21.01 0.942 96 0.942 96 21.01 24 0.940 22 23.99 0.940 21 0.940 19 24.01 27 0.937 45 26.99 0.937 45 0.937 44 27.01 30 0.934 70 30.01 0.934 70 0.934 70 29.99 35 0.930 10 34.99 0.930 11 0.930 12 34.99 40 0.925 55 39.99 0.925 56 0.925 56 39.99 表 2 高温到低温变化过程中的传感器数据
Table 2. Sensor data during high temperature to low temperature changes
温度/℃ 高度/cm 下端压力/kPa 上端压力/kPa 40.08 154.16 140.24 126.26 35.00 153.04 130.32 116.36 30.02 152.81 123.43 109.41 25.04 153.61 115.09 100.95 20.05 153.21 108.73 94.56 15.03 152.93 103.68 89.46 9.98 153.85 99.74 85.37 5.01 152.67 95.84 81.51 0.04 153.20 92.48 78.03 表 3 低温到高温变化过程中的传感器数据
Table 3. Sensor data during low temperature to high temperature changes
温度/℃ 高度/cm 下端压力/kPa 上端压力/kPa 0.02 153.51 91.87 77.40 5.03 153.17 95.64 81.23 10.05 152.80 100.28 86.01 14.97 153.85 105.84 91.54 20.01 152.94 111.38 97.23 25.03 153.14 118.28 104.18 29.96 153.59 124.93 110.87 34.98 154.11 133.28 119.24 40.02 153.88 143.39 128.44 表 4 常温下检测精度试验结果
Table 4. Test results of detection precision at normal temperature
实际高度/cm 检测高度/cm 环境温度/℃ 0 0.773 220 24.484 61 100 98.620 932 24.484 61 200 201.481 950 24.093 79 300 302.477 290 24.289 20 400 399.922 510 24.289 20 500 500.598 310 24.386 90 600 598.760 030 24.386 90 700 701.423 10 24.386 90 800 800.505 50 24.483 90 900 898.608 90 24.483 90 1 000 999.288 90 24.483 90 表 5 中厚煤层支架测高传感器数据对比
Table 5. Data comparison of support height sensor for medium-thick coal seam
cm 支架号 初次安装 3个月后 检测值 人工测量值 检测值 人工测量值 20 376 373 369 372 29 348 343 365 367 39 366 363 359 357 49 363 360 364 368 60 348 348 363 361 表 6 较薄煤层支架测高传感器数据对比
Table 6. Data comparison of support height sensor for thin coal seam
cm 支架号 初次安装 3个月后 检测值 人工测量值 检测值 人工测量值 15 149 151 151 149 20 158 156 154 155 25 147 147 159 161 30 142 142 155 159 35 132 128 161 159 -
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