首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Investigation on microstructure and mechanical properties of the dissimilar weld between mild steel and stainless steel-316 formed using microwave energy
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Investigation on microstructure and mechanical properties of the dissimilar weld between mild steel and stainless steel-316 formed using microwave energy

机译:用微波能量研究低碳钢与316不锈钢的异种焊缝的组织和力学性能

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Dissimilar weld between a mild steel and a stainless steel-316 was formed by exposing the candidate materials to electromagnetic radiation in the microwave band. Characterisations of the joints were carried out with respect to some aspects of microstructural and mechanical properties of the fusion joints. The joining trials were carried out in an industrial microwave applicator at a fixed frequency of 2.45GHz and 1.2kW power while exposed for a duration of 600s in atmospheric condition. Stainless steel-316 powder was used as the filler material for joining. Principles of microwave hybrid heating were utilised for heating and subsequently melting the metal-based materials in the joint zone. Characterisation of the microwave hybrid heating-induced dissimilar welds were carried out using X-ray diffraction, field emission scanning electron microscopy, microhardness tester and universal testing machine. The presence of carbides and intermetallic in the joint zone were evidenced in the X-ray diffraction results. The microstructures observed through scanning electron microscope show the metallurgical bonding between the substrates to be joined through complete melting of the powder particles and fusion of the base materials. The Vicker's microhardness in the core of the joint was observed to be 380HV, which was significantly higher as compared to the base materials due to the formation of dendritic structure and various carbides in the joint zone during microwave hybrid heating process. The average ultimate tensile strength of the joints was measured to be 420MPa with an elongation of 6.67%. The average flexural strength of the joints was observed to be 787.5MPa with an elongation of 5.14%. The optimum temperature required for joining was measured using an in-built non-contact infrared pyrometer and was found to be 1360 degrees C.
机译:通过将候选材料暴露于微波波段的电磁辐射中,可形成低碳钢与316不锈钢之间的异种焊缝。结合熔接接头的微观结构和机械性能的某些方面对接头进行了表征。加入试验是在工业微波辐射器中以2.45GHz的固定频率和1.2kW的功率进行的,同时在大气条件下暴露600s。 316不锈钢粉末用作连接的填充材料。利用微波混合加热的原理来加热并随后在接合区域中熔化金属基材料。使用X射线衍射,场发射扫描电子显微镜,显微硬度测试仪和通用测试机对微波混合加热引起的异种焊缝进行了表征。 X射线衍射结果证明了接合区中碳化物和金属间化合物的存在。通过扫描电子显微镜观察到的微观结构显示出待结合的基材之间的冶金结合,这是通过粉末颗粒的完全熔化和基础材料的熔融而实现的。观察到接头核心的维氏显微硬度为380HV,由于在微波混合加热过程中在接头区域中形成了树枝状结构和各种碳化物,因此与母材相比明显更高。测得的接头的平均极限抗拉强度为420MPa,伸长率为6.67%。观察到接头的平均抗弯强度为787.5MPa,伸长率为5.14%。使用内置的非接触式红外高温计测量了接合所需的最佳温度,发现该温度为1360摄氏度。

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