語系:
繁體中文
English
說明(常見問題)
回圖書館首頁
手機版館藏查詢
登入
回首頁
切換:
標籤
|
MARC模式
|
ISBD
Multi-Scale Multi-Physics Modeling o...
~
Zhang, Yi.
FindBook
Google Book
Amazon
博客來
Multi-Scale Multi-Physics Modeling of Laser Powder Bed Fusion Process of Metallic Materials With Experiment Validation.
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Multi-Scale Multi-Physics Modeling of Laser Powder Bed Fusion Process of Metallic Materials With Experiment Validation./
作者:
Zhang, Yi.
出版者:
Ann Arbor : ProQuest Dissertations & Theses, : 2018,
面頁冊數:
158 p.
附註:
Source: Dissertation Abstracts International, Volume: 80-03(E), Section: B.
Contained By:
Dissertation Abstracts International80-03B(E).
標題:
Mechanical engineering. -
電子資源:
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=10844033
ISBN:
9780438540255
Multi-Scale Multi-Physics Modeling of Laser Powder Bed Fusion Process of Metallic Materials With Experiment Validation.
Zhang, Yi.
Multi-Scale Multi-Physics Modeling of Laser Powder Bed Fusion Process of Metallic Materials With Experiment Validation.
- Ann Arbor : ProQuest Dissertations & Theses, 2018 - 158 p.
Source: Dissertation Abstracts International, Volume: 80-03(E), Section: B.
Thesis (Ph.D.)--Purdue University, 2018.
Laser Powder Bed fusion (L-PBF), also known as Selective Laser Melting (SLM) or Direct Metal Laser Sintering (DMLS), is the primary additive manufacturing (AM) technique for rapid manufacturing metallic parts. It is known as a solution for the fabrication of complex geometry parts and saving the cost of tooling when comparing with traditional manufacturing. Although there are some experimental studies and a few modeling efforts are conducted for a variety of metallic materials, there is still a lack of thorough understanding of the process-property relations in the L-PBF process, which hinders the wide application of the L-PBF technique.
ISBN: 9780438540255Subjects--Topical Terms:
649730
Mechanical engineering.
Multi-Scale Multi-Physics Modeling of Laser Powder Bed Fusion Process of Metallic Materials With Experiment Validation.
LDR
:04546nmm a2200337 4500
001
2200292
005
20181214130637.5
008
201008s2018 ||||||||||||||||| ||eng d
020
$a
9780438540255
035
$a
(MiAaPQ)AAI10844033
035
$a
(MiAaPQ)purdue:23151
035
$a
AAI10844033
040
$a
MiAaPQ
$c
MiAaPQ
100
1
$a
Zhang, Yi.
$3
1029786
245
1 0
$a
Multi-Scale Multi-Physics Modeling of Laser Powder Bed Fusion Process of Metallic Materials With Experiment Validation.
260
1
$a
Ann Arbor :
$b
ProQuest Dissertations & Theses,
$c
2018
300
$a
158 p.
500
$a
Source: Dissertation Abstracts International, Volume: 80-03(E), Section: B.
500
$a
Advisers: Jing Zhang; Bumsoo Han.
502
$a
Thesis (Ph.D.)--Purdue University, 2018.
520
$a
Laser Powder Bed fusion (L-PBF), also known as Selective Laser Melting (SLM) or Direct Metal Laser Sintering (DMLS), is the primary additive manufacturing (AM) technique for rapid manufacturing metallic parts. It is known as a solution for the fabrication of complex geometry parts and saving the cost of tooling when comparing with traditional manufacturing. Although there are some experimental studies and a few modeling efforts are conducted for a variety of metallic materials, there is still a lack of thorough understanding of the process-property relations in the L-PBF process, which hinders the wide application of the L-PBF technique.
520
$a
Numerical simulation can be helpful for a better understanding of the process-property relationship and have the potentials for design optimization of the L-PBF process. However, due to the complicated physical phenomena at varying length scale during the L-PBF process, development of a comprehensive model for the L-PBF process is one of the major challenges. The goal of this thesis is to develop a physics-based multi-scale modeling framework to simulate the L-PBF process. The modeling framework developed in this thesis can be used as a design and optimization tool for the future L-PBF process.
520
$a
Models at multiple length scales, including molecular dynamics (MD), discrete element model (DEM), finite element model (FEM), and coupled fluid dynamics (CFD) and cellular automata (CA) model are presented, with each model providing unique process-property information for the process. A new MD model is developed for the L-PBF process. The sintering kinetics at the atomistic level is revealed. Atom diffusion mechanism, diffusion activation energy at different regions of the metal particle is studied. Further, the tensile test of the sintered structure is simulated in MD, and the mechanical response of the sintered structure at different heating rates is studied. The results show that the mechanical properties of the laser sintered parts can be improved through increasing laser heating rate. A novel DEM model is formulated which is capable to simulate the particular nature of complete PBF process, including powder deposition, laser heating, and recoating. The role of processing parameters, including laser power, scan speed, hatch spacing, is investigated. The DEM results show that increasing laser power and reducing scan speed and pitch size can increase the temperature of the powder bed. Moreover, a new coupled thermo-mechanical FEM is presented. The material model includes temperature-dependent material properties, liquid-solid phase transition, and laser adsorption properties. The layer-by-layer additive manufacturing mode is implemented using the "birth-death" element. The FEM successfully predicts L-PBF part distortion and cracking. To understand the microstructure of the L-PBF parts, a novel method that couples CFD powder melting and CA solidification is developed. The grain shape, size, orientation of the laser-scanned region is predicted using this method. The results show that with increasing of laser scan speed, the grain size decreases. The misorientation angle of the columnar grains increases with scan speed. To sum up, a multi-scale, multi-physics modeling framework for the L-PBF process is developed. The multi-scale modeling results are validated and compared with experimental measurements. The model can provide a computational tool for metal additive manufacturing process design and optimization.
590
$a
School code: 0183.
650
4
$a
Mechanical engineering.
$3
649730
650
4
$a
Materials science.
$3
543314
650
4
$a
Engineering.
$3
586835
690
$a
0548
690
$a
0794
690
$a
0537
710
2
$a
Purdue University.
$b
Engineering Technology.
$3
3281079
773
0
$t
Dissertation Abstracts International
$g
80-03B(E).
790
$a
0183
791
$a
Ph.D.
792
$a
2018
793
$a
English
856
4 0
$u
http://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=10844033
筆 0 讀者評論
館藏地:
全部
電子資源
出版年:
卷號:
館藏
1 筆 • 頁數 1 •
1
條碼號
典藏地名稱
館藏流通類別
資料類型
索書號
使用類型
借閱狀態
預約狀態
備註欄
附件
W9376841
電子資源
11.線上閱覽_V
電子書
EB
一般使用(Normal)
在架
0
1 筆 • 頁數 1 •
1
多媒體
評論
新增評論
分享你的心得
Export
取書館
處理中
...
變更密碼
登入