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SPECTRA THERMAL FATIGUE TESTS UNDER FREQUENCY CONTROLLED FLUID TEMPERATURE VARIATION: SUPERPOSED SINUSOIDAL TEMPERATURE FLUCTUATIONS TESTS

机译:频率控制的流体温度变化下的光谱热疲劳测试:叠加的正弦温度波动测试

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To clarify frequency-dependent attenuation effects of fluid temperature fluctuation on fatigue strength, thermal fatigue strength tests subjected to superposed sinusoidal temperature fluctuations were performed by the SPECTRA test facility. Fluid temperature waves were generated by superposition of sinusoidal waves, where frequencies were 0.05, 0.2, and 0.5Hz. Two types of superposed waves were selected for the tests, dual and triple ones. The dual one was obtained by superposing two sinusoidal waves whose temperature ranges and frequencies are respectively 200 centigrade and 0.05Hz and 60 centigrade and 0.5Hz at the inlet of test piece. The triple one was the superposition of three sinusoidal waves whose temperature ranges and frequencies are respectively, 150 centigrade and 0.2Hz, 75 centigrade and 0.05Hz and 50 centigrade and 0.5Hz at the inlet of test piece. The longest periods were 20 seconds for both types of waves and it is the fundamental cycle for the thermal fatigue tests. For the dual case, 73,810 cycles fatigue test was performed while for the triple one 116,640 cycles were performed. After these fatigue tests, cylindrical test pieces were cut away from the test loop, and cracks were observed on the inner surface of the test pieces. For the dual wave case, crack initiation occurred from 400 to 600mm position from the inlet of test piece. For the triple wave case, crack initiation occurred from 400 to 600mm position from the inlet of test piece. The corresponded fluid temperature range to crack initiation is from 205 to 220 centigrade for the dual one and from 195 to 215 centigrade for the triple one. Fatigue lives at crack initiation positions were evaluated based on the test conditions. Adopting power spectrum density functions and frequency transfer functions, fatigue lives were predicted within a factor 3 as predicted for single sinusoidal temperature waves in the other tests. To confirm advantages of these functions, fatigue life estimations were compared with those obtained without using these functions. Based on the compared results, these functions are necessary to predict accurate fatigue lives.
机译:为了弄清流体温度波动对疲劳强度的频率依赖性衰减效应,由SPECTRA测试设备进行了叠加正弦温度波动的热疲劳强度测试。流体温度波是通过叠加正弦波产生的,其频率分别为0.05、0.2和0.5Hz。测试中选择了两种类型的叠加波,即双波和三波。通过将两个温度范围和频率分别为200摄氏度和0.05Hz的正弦波和在试样入口处的60摄氏度和0.5Hz的正弦波叠加而获得对偶波。三重正弦波是三个正弦波的叠加,它们的温度范围和频率在试件的入口处分别为150摄氏度和0.2Hz,75摄氏度和0.05Hz和50摄氏度和0.5Hz。两种波的最长周期为20秒,这是热疲劳测试的基本周期。对于双重情况​​,进行了73,810个循环的疲劳测试,而对于三个情况,进行了116,640个循环。在这些疲劳测试之后,从测试环切出圆柱形测试件,并且在测试件的内表面上观察到裂纹。对于双波情况,裂纹发生在距试件入口400至600mm的位置。对于三波情况,裂纹发生在距试件入口400至600mm的位置。双重裂纹对应的流体温度范围为205至220摄氏度,而双重裂纹对应的流体温度范围为195至215摄氏度。根据测试条件评估裂纹起始位置的疲劳寿命。通过采用功率谱密度函数和频率传递函数,可以在其他测试中将疲劳寿命预测为单正弦温度波的3倍以内。为了确认这些功能的优势,将疲劳寿命估算值与未使用这些功能的估算值进行了比较。根据比较结果,这些功能对于预测准确的疲劳寿命是必需的。

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