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Laser Shock Processing of the Maraging Steel Surface

机译:Maring Maring钢表面激光冲击处理

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Laser Shock Processing (LSP) is a process of laser treating of a surface with a pulsed beam of high power density. The process enables hardening of a thin surface layer; therefore, it is suitable for the improvement of fatigue strength of quality materials. Locally directed mechanical waves produce a considerably increased dislocation density in the thin surface layer, which affects the variations of microhardness and residual stresses. The magnitude and variation of the residual compressive stresses in the surface layer are favourable, which ensures higher fatigue strength. Laser shock processing (LSP) is more exacting than conventional shot peening, but it shows certain advantages such as better control of the surface state, processing of locally limited surfaces and a possibility to produce different transitions between the processed surface and the non-processed one. LSP has so far been tested and efficiently applied to various materials, including maraging steels. Relevant publications often deal with LSP mechanisms and the influence of the process on the dynamic strength of maraging steel, but less frequently the influence of individual characteristics such as the microstructure of matrix and of precipitated phases or residual stresses. The present paper deals with LSP of 12% Ni maraging steel. The material chosen is suitable for the production of complex structural parts and dies for die casting, which require high resistance of the material to thermo-mechanical loads. By means of measurement of the state before and after LSP, the value of the mean roughness R_a, surface defects and the variation of residual stresses in the thin surface layer were determined. After LSP of the surface, the influence of processing parameters such as laser-beam diameter and pulse density per unit of area was established.
机译:激光冲击处理(LSP)是激光处理表面具有脉冲高功率密度的表面的过程。该过程使得能够硬化薄表面层;因此,它适用于提高质量材料的疲劳强度。局部定向的机械波在薄表面层中产生显着增加的位错密度,这影响了微硬度和残余应力的变化。表面层中残余压缩应力的幅度和变化是有利的,这确保了更高的疲劳强度。激光冲击处理(LSP)比传统喷丸更为严格,但它显示出一些优点,例如更好地控制表面状态,局部有限的表面处理以及在加工表面和未加工的表面之间产生不同的过渡的可能性。到目前为止,LSP已经过测试和有效地应用于各种材料,包括散布钢。相关出版物经常处理LSP机制和过程对马氏体钢的动态强度的影响,但较不频繁地对基质和沉淀的阶段或残余应力的诸如沉淀的阶段的微观结构的影响。本文涉及12%NI Maring Steel的LSP。所选择的材料适用于生产复杂的结构部件和模具的模具,这需要材料的高性能与热机械负载。通过测量LSP之前和之后的状态,确定平均粗糙度R_A,表面缺陷和薄表面层中残余应力的变化的值。在表面LSP之后,建立了处理参数的影响,例如激光光束直径和每单位区域的脉冲密度。

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