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Studying the Effects of Internal and External Microstructure on Fatigue Strength of Materials by Electromagnetic Excitation Technique

机译:用电磁激发技术研究内部和外部微观结构对材料疲劳强度的影响

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A fatigue testing setup based on electromagnetic excitation was built to apply cyclic stresses to the specimens near their resonance frequency. A test near the resonance frequency has the advantage that higher stresses can be applied to test specimens at a reduced input power. Stress amplitude up to 1000 MPa can be applied to the test specimens and up to four specimens can be tested simultaneously. The setup can test specimens at high fatigue cycle regime i.e. 100 million stress cycles can be achieved in 48 hours. The setup has been used to study the effects of internal and external microstructure on the fatigue strength of materials. Specimens especially stainless steel-304 was prepared by different techniques i.e. electric discharge machining EDM, etching and laser cutting. Specimens prepared by these techniques were tested and their fatigue strengths were compared. To probe the material endurance limit, tests were also performed on the above mentioned steel specimens in very high stress cycle regime i.e. > 10~9 cycles. In order to investigate the effect of internal microstructure on fatigue strength of material, CuZn37 fabricated by etching was tested and the effect of different grain size on fatigue strength was compared. SN curves have been plotted for materials with no prior fatigue strength data. Stainless steel-1.4404 specimens prepared by Rapid Prototyping (RP) has been tested for fatigue analysis. The test results showed higher degree of scattering when compared to the traditionally manufactured steel. Fractography revealed the existence of inherent material flaws which was the main reason of higher degree of test point scattering. In addition to these data, the SN curve was plotted for Innolot which is an important soldering alloy and prompts to fatigue failure in electronic assemblies.
机译:建立了一个基于电磁激励的疲劳测试装置,以在其共振频率附近向样品施加循环应力。在共振频率附近进行测试的优势在于,可以在降低的输入功率下将较高的应力施加到测试样品上。可以将最大1000 MPa的应力幅值施加到测试样本上,并且可以同时测试多达四个样本。该装置可以在高疲劳循环条件下测试样品,即在48小时内可以达到1亿个应力循环。该装置已用于研究内部和外部微观结构对材料疲劳强度的影响。通过不同的技术,即放电加工电火花加工,蚀刻和激光切割,制备了样品,特别是304不锈钢。测试了通过这些技术制备的样品,并比较了它们的疲劳强度。为了探究材料的耐力极限,还对上述钢试样进行了很高的应力循环试验,即> 10〜9个循环。为了研究内部微观结构对材料疲劳强度的影响,测试了通过蚀刻制备的CuZn37,并比较了不同晶粒尺寸对材料疲劳强度的影响。 SN曲线已经绘制了没有先前疲劳强度数据的材料。快速原型(RP)制备的1.4404不锈钢试样已经过疲劳分析测试。与传统制造的钢相比,测试结果显示出更高的散射度。断口扫描显示存在固有的材料缺陷,这是测试点散射程度更高的主要原因。除这些数据外,还绘制了Innolot的SN曲线,该曲线是一种重要的焊接合金,并提示电子组件出现疲劳失效。

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