Additive technologies for magnetic materials generation

Dmitriy Yacko
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Abstract

Materials and materials with magnetic properties are one of the mainstays of the world of mankind. Magnets are the key elements of most devices used in industry, science and technology. The development of permanent magnet manufacturing technology taking into account the maximum efficiency of the generated magnetic field with a minimum size of the magnet can be divided into two key directions: changing the composition of the magnet and changing the shape of the magnetic field. The research in this paper is aimed at developing a technology for manufacturing shaped magnets for controlling the shape of the magnetic field. Modern production technologies actively use various software products to simulate the design, composition, physical and chemical properties of the final product. For more precise manufacturing and minimization of post-processing, 3-D automated complexes are used, that make it possible to produce a finished product. Manual labor is gradually being replaced by machine labor, and the role of man at the place of production is gradually changing. Large-scale production begins to use robotic systems and conveyors, which significantly increases productivity, reduces costs and the influence of the human factor on the quality of the finished product. The market of additive technologies has been growing at an increasing pace in recent years. The paper considers the application of additive technologies for obtaining materials of complex shape with magnetic properties. The substantiation and solutions of the main obstacles in the development of a new technology for the manufacture of shaped magnetic materials are proposed. Technological solutions and equipment giving the possibility to obtain magnetic materials through the use of additive technologies make a motion.
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磁性材料生成的添加剂技术
具有磁性的材料和材料是人类世界的支柱之一。磁铁是工业、科学和技术中使用的大多数设备的关键元素。考虑到以最小尺寸的磁体产生最大效率的磁场,永磁制造技术的发展可分为两个关键方向:改变磁体的组成和改变磁场的形状。本文的研究目的是开发一种制造异形磁体的技术,以控制磁场的形状。现代生产技术积极地利用各种软件产品来模拟最终产品的设计、组成、物理和化学性质。为了更精确的制造和最小化后处理,使用了3-D自动化复合体,这使得生产成品成为可能。体力劳动正在逐渐被机器劳动所取代,人在生产场所的角色也在逐渐发生变化。大规模生产开始使用机器人系统和输送机,这大大提高了生产率,降低了成本和人为因素对成品质量的影响。近年来,增材技术市场一直在以越来越快的速度增长。本文研究了增材技术在制备具有磁性的复杂形状材料中的应用。提出了异型磁性材料制造新技术发展中主要障碍的依据和解决方法。技术解决方案和设备使得通过使用增材技术获得磁性材料成为可能。
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