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基于多材料打印制备梯度结构电解电容器阳极块 被引量:5

Fabrication of Gradient Electrolytic Capacitors Anode Block Based on Multi-material Printing
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摘要 高功率密度固体钽电容器阳极块的设计、加工和制造是当前研究的热点和难点。借助多材料浆料直写成型3D打印技术制备具有梯度结构的固体钽电容器阳极块。研究了阳极块打印制备工艺,分析了浆料配比、挤出量、层间距、打印速度等对成型效果的影响。结果表明,用钽粉、粘结剂PVA(聚乙烯醇)和溶剂水(配比为7.5:1:5)配制的浆料在打印速度为3 mm/s,气压为765 kPa,打印针孔内径0.84 mm,层间距0.5 mm的条件下,通过模型设计、打印浆料配置、双喷头打印、引线插入(焊接)、矫形、烧结和化成等工艺,制备出的具有梯度结构的阳极块形状规整、均匀,其收缩率在9.7%~14.5%之间,单位质量的比容(CV)达到53200μF·V/g,相比同类产品增加了15.6%,基本达到工业化生产需求。该技术是现有加工制备技术的有益补充,是对高功率密度和能量密度电解电容器阳极块制备技术的有益探索。 The design,processing and fabrication of high energy density and power density solid tantalum capacitor anode blocks are the hotspots and difficulties in current research.In the experiment,the anode block of tantalum capacitor with gradient structure was fabricated by the direct writing 3D printing technology of multi-material slurry.The preparation technology of anode block printing was studied,and the influences of size ratio,extrusion amount,layer spacing and printing speed on the forming effect were analyzed.The results show that the slurry is prepared with tantalum powder,binder PVA(polyvinyl alcohol)and solvent water(ratio:7.5:1:5).Then under the condition of printing speed of 3 mm/s,gas pressure of 765 kPa,and print pinhole inner diameter of 0.84 mm,and layer spacing of 0.5 mm,the anode block with gradient structure is prepared from the above slurry,whose shape is regular and uniform,through the model design,print slurry configuration,dual nozzle printing,wire insertion(welding),orthopedic,sintering and chemical conversion processes.The shrinkage rate is between 9.7%and 14.5%,and the CV per unit mass is 53200μF·V/g,which is 15.6%higher than that of similar products,which basically meets the industrial production demand.This technology is a beneficial supplement to the existing processing and preparation technology,and is a useful exploration of the high power density and energy density electrolytic capacitor anode block preparation technology.
作者 张磊 田东斌 伍权 曾玉如 郑跃 汤耿 Zhang Lei;Tian Dongbin;Wu Quan;Zeng Yuru;Zheng Yue;Tang Geng(School of Mechanical and Electrical Engineering,Guizhou Normal University,Guiyang 550025,China;China Zhenhua(Group)Xinyun Electronic Components and Devices Co.,Ltd,Guiyang 550018,China)
出处 《稀有金属材料与工程》 SCIE EI CAS CSCD 北大核心 2020年第11期3909-3913,共5页 Rare Metal Materials and Engineering
基金 贵州省科技计划项目(黔科合平台人才[2019]5649) 贵州省科技计划项目(黔科合LH字[2016]7221号)。
关键词 固体钽电容器阳极块 梯度结构 多材料3D打印 聚乙烯醇粘结剂 打印参数 solid tantalum capacitor anode block gradient structure multi-material 3D printing orthopedic polyvinyl alcohol binder print parameters
作者简介 张磊,男,1993年生,硕士生,贵州师范大学机械与电气工程学院,贵州贵阳550025,E-mail:564013384@qq.com。
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