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3D print of polymer bonded rare-earth magnets, and 3D magnetic field scanning with an end-user 3D printer

机译:聚合物粘结稀土磁体的3D打印以及使用最终用户3D打印机的3D磁场扫描

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摘要

3D print is a recently developed technique, for single-unit production, and for structures that have been impossible to build previously. The current work presents a method to 3D print polymer bonded isotropic hard magnets with a low-cost, end-user 3D printer. Commercially available iso-tropic NdFeB powder inside a PA11 matrix is characterized, and prepared for the printing process. An example of a printed magnet with a complex shape that was designed to generate a specific stray field is presented, and compared with finite element simulation solving the macroscopic Maxwell equations. For magnetic characterization, and comparing 3D printed structures with injection molded parts, hysteresis measurements are performed. To measure the stray field outside the magnet, the printer is upgraded to a 3D magnetic flux density measurement system. To skip an elaborate adjusting of the sensor, a simulation is used to calibrate the angles, sensitivity, and the offset of the sensor. With this setup, a measurement resolution of 0.05 mm along the z-axes is achievable. The effectiveness of our calibration method is shown. With our setup, we are able to print polymer bonded magnetic systems with the freedom of having a specific complex shape with locally tailored magnetic properties. The 3D scanning setup is easy to mount, and with our calibration method we are able to get accurate measuring results of the stray field.
机译:3D打印是一种最新开发的技术,用于单件生产以及以前无法建造的结构。当前的工作提出了一种使用低成本的最终用户3D打印机3D打印聚合物粘结的各向同性硬磁铁的方法。表征PA11基体内的市售各向同性NdFeB粉末,并为印刷过程做准备。展示了一个设计用于生成特定杂散场的复杂形状印刷磁铁的示例,并将其与求解宏观麦克斯韦方程的有限元模拟进行了比较。为了进行磁特性分析,并将3D打印结构与注塑件进行比较,执行磁滞测量。为了测量磁体外部的杂散磁场,打印机已升级为3D磁通密度测量系统。为了跳过对传感器的详尽调整,可以使用模拟来校准传感器的角度,灵敏度和偏移。通过这种设置,可以实现沿z轴的0.05毫米的测量分辨率。显示了我们的校准方法的有效性。通过我们的设置,我们能够打印聚合物粘结的磁性系统,而不必具有特定的复杂形状和局部定制的磁性。 3D扫描设置易于安装,通过我们的校准方法,我们可以获得杂散场的准确测量结果。

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  • 来源
    《Applied Physics Letters》 |2016年第16期|162401.1-162401.4|共4页
  • 作者单位

    Institute of Solid State Physics, Vienna University of Technology, 1040 Vienna, Austria ,Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, 1040 Vienna, Austria;

    Institute of Solid State Physics, Vienna University of Technology, 1040 Vienna, Austria ,Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, 1040 Vienna, Austria;

    Institute of Solid State Physics, Vienna University of Technology, 1040 Vienna, Austria ,Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, 1040 Vienna, Austria;

    Magnetfabrik Bonn GmbH, 53119 Bonn, Germany;

    Institute of Solid State Physics, Vienna University of Technology, 1040 Vienna, Austria ,Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, 1040 Vienna, Austria;

    Department of Polymer Engineering and Science, Montanuniversitaet Leoben, 8700 Leoben, Austria;

    Institute of Solid State Physics, Vienna University of Technology, 1040 Vienna, Austria ,Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, 1040 Vienna, Austria;

    Institute of Solid State Physics, Vienna University of Technology, 1040 Vienna, Austria ,Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, 1040 Vienna, Austria;

    Magnetfabrik Bonn GmbH, 53119 Bonn, Germany;

    Institute of Solid State Physics, Vienna University of Technology, 1040 Vienna, Austria;

    Institute of Solid State Physics, Vienna University of Technology, 1040 Vienna, Austria ,Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, 1040 Vienna, Austria;

    Institute of Solid State Physics, Vienna University of Technology, 1040 Vienna, Austria ,Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, 1040 Vienna, Austria;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 03:14:49

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