• Title/Summary/Keyword: powder spreading apparatus

Search Result 2, Processing Time 0.018 seconds

Manufacture of Precsion Model Using Laser Melting Process (레이저 용융 적층 공정을 이용한 정밀 형상 제작)

  • 김재도;전병철;권택열;이영곤;신동훈
    • Laser Solutions
    • /
    • v.3 no.3
    • /
    • pp.21-29
    • /
    • 2000
  • For the direct metal shape processing the powder feed device which is different from the widely used in rapid prototyping. is developed, The three dimensional object is shaped with the melting metal powder. The developed research has applied to rapid prototyping in ultraprecision for MEMS and medical science fields required of rapid manufacture of complex shape. The goal of this study make 3D model which has precision accuracy. Powder spreading apparatus has been more improved because that the control of powder spread is very important in layer manufacturing. It consists of the vibration motor, nozzle and tube which supplies various metal powder. This apparatus could control the spreading velocity that could control powder spreading thickness. Laser on/off switch was adapted because laser scanning velocity must be preserved constantly to prevent heat transformation of laser overheating. The error between sintered thickness md experimental one occurred by shrinkage in sintering melting process. The problem of heat transformation was solved by On/Off switching system.

  • PDF

Flame Spreading Over Metal Dust Deposits With Particles Size (입경 변화에 따른 퇴적금속 분체층의 화염전파)

  • Han, Ou Sup;Choi, Yi Rac;Han, In Soo;Lee, Jung Suk
    • Korean Chemical Engineering Research
    • /
    • v.48 no.5
    • /
    • pp.603-608
    • /
    • 2010
  • A study has been conducted experimentally to investigate behavior of ignition and flame spread over metal dust deposits with particle size using by a developed apparatus and thermogravimetric analysis(TGA). Zr, Ta and Mg-Al(90:10 wt%) alloy metal powders including Mg and Ti with different particle size were used. Also we used PMMA(Polymethylmethacrylate) powder to compare the combustion properties to those of metal powders. When dust layers were more than 5 mm in thickness, the dependency of deposit depth on flame spread rate over dust layer was not shown. With decreasing mean particle diameter, flame spread rate over Ti dust layer decreased, while the spread rate over Mg dust layer increased. For mean diameter of $51{\mu}m$, fire spread rate over pure Mg dust layer decreased to about 50 percent in Mg-Al(90:10 wt%) dust layer. The oxide thickness of metal dust used in this study tended to be inversely proportional with the spread rate, and it was quite small for influence with particle size. From the results of TGA for Ti and Mg, weight increasing curves(550 for Mg, 578 for Ta) were observed in the oxidation process, and they seems to be caused by ignition of upper dust layer.