首页> 外文期刊>Journal of Microelectromechanical Systems >Fully 3D-Printed, Monolithic, Mini Magnetic Actuators for Low-Cost, Compact Systems
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Fully 3D-Printed, Monolithic, Mini Magnetic Actuators for Low-Cost, Compact Systems

机译:完全3D印刷,单片,迷你磁性执行器,用于低成本,紧凑型系统

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We report the design, fabrication, and experimental characterization of the first fully 3D-printed, multi-material miniature magnetic actuators for compact systems in the literature. The actuator design integrates a bonded hard magnet made of NdFeB microparticles embedded in a Nylon 12 matrix (55% by volume) with structural and support elements made of pure Nylon 12. The device is a 10 mm-diameter, 1.2 mm wallthick, and 9 mm tall cylindrical frame that mounts on an off-theshelf solenoid and a 10 mm diameter, 100 mu m-thick, leak-tight membrane connected at its center to a 4 mm diameter, 4.95 mm tall hard magnet. The actuators are monolithically printed in layers as thin as 100 mu m using 600 mu m-wide strokes via fused filament fabrication (FFF) -a low-cost 3D printing technology capable of processing high-performance thermoplastics to create monolithic objects made of a plurality of distinctive feedstock. The average surface roughness, Young's modulus, and hardness of the FFF-printable hard-magnetic filament were estimated at 58.55 mu m, 3.59 GPa, and Shore D 71.5, respectively, while the average surface roughness, Young's modulus, and yield strength of FFF-printed magnetic material were estimated at 5.79 mu m, 2.02 GPa, and 55.99 MPa +/- 4.59 MPa, respectively. Magnetic characterization of the FFF-printed NdFeB-embedded Nylon 12 feedstock demonstrates the fabrication of isotropic hard magnets with an intrinsic coercivity of similar to 700 kA/m, remanence of similar to 395 mT, and a maximum energy product of 27 kJ/m(3). Simulations of the stray magnetic field produced by a printed sample made of NdFeB-embedded Nylon 12 were validated using a scanning Hall probe. The vertical displacement of a miniature 3D-printed magnetic actuator was characterized with a solenoid for various coil bias voltages; a maximum displacement equal to 50 mu m was obtained with 3.1 V DC applied to the driving coil. Finite element simulations of the actuator design estimate at 2.38 MPa the maximum stress on the membrane at 50 mu m actuation (i.e., below the fatigue limit of Nylon 12), and at 592.61 Hz the natural frequency of the device, which was corroborated via experiment. [2018-0288]
机译:我们报告了第一个完全3D印刷的多重材料微型磁致电致动器的设计,制造和实验表征,用于文献中的紧凑型系统。致动器设计将由嵌入尼龙12基质(55%(55体积)嵌入的NdFeB微粒制成的粘合硬磁体与由纯尼龙12制成的结构和支撑元件。该装置为10毫米直径,1.2毫米的壁图和9 MM高圆柱形框架,可在截止柱电磁铁和10毫米直径,100毫米M厚,泄漏的膜上安装到4毫米直径4毫米,4.95毫米高的硬磁体。致动器通过熔融丝制造(FFF)-A能够加工高性能热塑性塑料的低成本3D印刷技术,在100μm的层中以100μm薄的层印在100μm的层中。能够加工高性能热塑性塑料,以产生由多个组成的单片物体独特的原料。 FFF可印刷硬磁丝的平均表面粗糙度,杨氏模量和硬度分别在58.55亩M,3.59GPa和岸上D 71.5,而平均表面粗糙度,杨氏模量和FFF的屈服强度 - 分别以5.79μm,2.02gPa和55.99mPa +/- 4.59MPa估计打印磁性材料。 FFF印刷的NdFeB嵌入式尼龙12原料的磁性表明,同位素硬磁体的制造具有类似于700ka / m的固有矫顽力,剩磁与395 mt相似,最大能量乘积为27kJ / m( 3)。使用扫描霍尔探针验证由由NdFeB嵌入式尼龙12制成的印刷样品产生的杂散磁场的模拟。微型3D印刷磁致电致动器的垂直位移配有用于各种线圈偏置电压的螺线管;使用施加到驱动线圈的3.1V DC获得等于50μm的最大位移。致动器设计的有限元模拟在2.38MPa下估计膜上的最大应力在50μm的致动(即,低于尼龙12的疲劳极限),并且在592.61Hz的装置的固有频率下,通过实验得到证实。 [2018-0288]

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