Technological Processes of the Electrocontact Welding of Functional Coatings: Part 2

IF 0.3 Q4 METALLURGY & METALLURGICAL ENGINEERING
A. V. Serov, R. A. Latypov, P. I. Burak, N. V. Serov
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Abstract—Electrocontact welding (ECW) is a promising resource-saving technology for producing functional coatings from waste materials in tool and machine-building production. A clear technique is necessary for choosing materials, equipment, and tools, the sequence and description of operations, and technological parameters (modes) that influence the properties and quality of the coatings produced by this method. To develop a technique for producing, strengthening, and restoring machine parts, functional ECW coatings are studied using a 011-1-10 Remdetal setup. The welding pulse and pause durations are set using an RVI-501 controller. The welding current is calibrated using a 5-mm-thick MM copper strip and an IST-02 welding current meter. An analysis of the electrical resistance of the ECW joint zone shows that the optimum compression force of welding electrodes on a 65G steel plowshare is 1.7 kN for a U12 steel tape. To ensure the maximum process efficiency and complete overlap of weld spots (accounting for the relative movement of electrodes and the part), dependences are derived to determine the following main ECW parameters for all schemes and equipment options: welding current, pulse duration and pause time, electrode compression force, welding speed, weld spot overlap coefficients, and cooling fluid flow rate. Their influence on the process and the coating quality is discussed. The proposed algorithm for calculating and setting welding parameters simplifies the application of the technology and improves the coating quality by minimizing defects caused by parameter errors. The algorithm can be used in machine-building and repair production for designing processes to produce functional coatings for hardening and restoring machine parts.

Abstract Image

Abstract Image

功能涂层电接触焊接工艺流程:第2部分
电接触焊接(ECW)是一种很有前途的资源节约型技术,可以利用工具和机械制造中的废料生产功能性涂层。在选择材料、设备和工具、操作的顺序和描述以及影响用这种方法生产的涂层的性能和质量的技术参数(模式)方面,明确的技术是必要的。为了开发一种生产、强化和修复机器零件的技术,使用011-1-10 Remdetal装置研究了功能性ECW涂层。焊接脉冲和暂停持续时间使用RVI-501控制器设置。焊接电流使用5毫米厚的MM铜带和IST-02焊接电流计进行校准。对ECW接头区电阻分析表明,对于U12钢带,65G钢犁头焊接电极的最佳压缩力为1.7 kN。为了确保最大的工艺效率和焊点的完全重叠(考虑到电极和零件的相对运动),推导了依赖关系,以确定所有方案和设备选项的以下主要ECW参数:焊接电流、脉冲持续时间和暂停时间、电极压缩力、焊接速度、焊点重叠系数和冷却液流速。讨论了它们对工艺和涂层质量的影响。提出的焊接参数的计算和设置算法简化了该技术的应用,并通过最小化参数误差引起的缺陷来提高涂层质量。该算法可用于机械制造和维修生产,用于设计用于机械零件硬化和修复的功能涂层的工艺。
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来源期刊
Russian Metallurgy (Metally)
Russian Metallurgy (Metally) METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
0.70
自引率
25.00%
发文量
140
期刊介绍: Russian Metallurgy (Metally)  publishes results of original experimental and theoretical research in the form of reviews and regular articles devoted to topical problems of metallurgy, physical metallurgy, and treatment of ferrous, nonferrous, rare, and other metals and alloys, intermetallic compounds, and metallic composite materials. The journal focuses on physicochemical properties of metallurgical materials (ores, slags, matters, and melts of metals and alloys); physicochemical processes (thermodynamics and kinetics of pyrometallurgical, hydrometallurgical, electrochemical, and other processes); theoretical metallurgy; metal forming; thermoplastic and thermochemical treatment; computation and experimental determination of phase diagrams and thermokinetic diagrams; mechanisms and kinetics of phase transitions in metallic materials; relations between the chemical composition, phase and structural states of materials and their physicochemical and service properties; interaction between metallic materials and external media; and effects of radiation on these materials.
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