Integration of Simulation Driven DfAM and LCC Analysis for Decision Making in L-PBF

Laser based powder bed fusion (L-PBF) is used to manufacture parts layer by layer with the energy of laser beam. The use of L-PBF for building functional parts originates from the design freedom, flexibility, customizability, and energy efficiency of products applied in dynamic application fields su...

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Main Authors: Patricia Nyamekye, Anna Unt, Antti Salminen, Heidi Piili
Format: Article
Language:English
Published: MDPI AG 2020-09-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/10/9/1179
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spelling doaj-244c5c5fcc724522a13b11011d634c7c2020-11-25T03:19:32ZengMDPI AGMetals2075-47012020-09-01101179117910.3390/met10091179Integration of Simulation Driven DfAM and LCC Analysis for Decision Making in L-PBFPatricia Nyamekye0Anna Unt1Antti Salminen2Heidi Piili3Research Group of Laser Material Processing, Department of Mechanical Engineering, LUT School of Engineering Science, LUT University, FI-53851 Lappeenranta, FinlandResearch Group of Laser Material Processing, Department of Mechanical Engineering, LUT School of Engineering Science, LUT University, FI-53851 Lappeenranta, FinlandDepartment of Mechanical Engineering, University of Turku, FI-20014 Turku, FinlandResearch Group of Laser Material Processing, Department of Mechanical Engineering, LUT School of Engineering Science, LUT University, FI-53851 Lappeenranta, FinlandLaser based powder bed fusion (L-PBF) is used to manufacture parts layer by layer with the energy of laser beam. The use of L-PBF for building functional parts originates from the design freedom, flexibility, customizability, and energy efficiency of products applied in dynamic application fields such as aerospace and automotive. There are challenges and drawbacks that need to be defined and overcome before its adaptation next to rivaling traditional manufacturing methods. Factors such as high cost of L-PBF machines, metal powder, post-preprocessing, and low productivity may deter its acceptance as a mainstream manufacturing technique. Understanding the key cost drivers of L-PBF that influence productivity throughout the whole lifespan of products will facilitate the decision-making process. Functional and operational decisions can yield profitability and increase competitiveness among advanced manufacturing sectors. Identifying the relationships between the phases of the life cycle of products influences cost-effectiveness. The aim of the study is to investigate the life cycle cost (LCC) and the impact of design to it in additive manufacturing (AM) with L-PBF. The article provides a review of simulation driven design for additive manufacturing (simulation driven DfAM) and LCC for metallic L-PBF processes and examines the state of the art to outline the merits, demerits, design rules, and life cycle models of L-PBF. Practical case studies of L-PBF are discussed and analysis of the interrelating factors of the different life phases are presented. This study shows that simulation driven DfAM in the design phase increases the productivity throughout the whole production and life span of L-PBF parts. The LCC model covers the whole holistic lifecycle engineering of products and offers guidelines for decision making.https://www.mdpi.com/2075-4701/10/9/1179design for additive manufacturinglife cycle costmetallaser powder bed fusionproductivity
collection DOAJ
language English
format Article
sources DOAJ
author Patricia Nyamekye
Anna Unt
Antti Salminen
Heidi Piili
spellingShingle Patricia Nyamekye
Anna Unt
Antti Salminen
Heidi Piili
Integration of Simulation Driven DfAM and LCC Analysis for Decision Making in L-PBF
Metals
design for additive manufacturing
life cycle cost
metal
laser powder bed fusion
productivity
author_facet Patricia Nyamekye
Anna Unt
Antti Salminen
Heidi Piili
author_sort Patricia Nyamekye
title Integration of Simulation Driven DfAM and LCC Analysis for Decision Making in L-PBF
title_short Integration of Simulation Driven DfAM and LCC Analysis for Decision Making in L-PBF
title_full Integration of Simulation Driven DfAM and LCC Analysis for Decision Making in L-PBF
title_fullStr Integration of Simulation Driven DfAM and LCC Analysis for Decision Making in L-PBF
title_full_unstemmed Integration of Simulation Driven DfAM and LCC Analysis for Decision Making in L-PBF
title_sort integration of simulation driven dfam and lcc analysis for decision making in l-pbf
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2020-09-01
description Laser based powder bed fusion (L-PBF) is used to manufacture parts layer by layer with the energy of laser beam. The use of L-PBF for building functional parts originates from the design freedom, flexibility, customizability, and energy efficiency of products applied in dynamic application fields such as aerospace and automotive. There are challenges and drawbacks that need to be defined and overcome before its adaptation next to rivaling traditional manufacturing methods. Factors such as high cost of L-PBF machines, metal powder, post-preprocessing, and low productivity may deter its acceptance as a mainstream manufacturing technique. Understanding the key cost drivers of L-PBF that influence productivity throughout the whole lifespan of products will facilitate the decision-making process. Functional and operational decisions can yield profitability and increase competitiveness among advanced manufacturing sectors. Identifying the relationships between the phases of the life cycle of products influences cost-effectiveness. The aim of the study is to investigate the life cycle cost (LCC) and the impact of design to it in additive manufacturing (AM) with L-PBF. The article provides a review of simulation driven design for additive manufacturing (simulation driven DfAM) and LCC for metallic L-PBF processes and examines the state of the art to outline the merits, demerits, design rules, and life cycle models of L-PBF. Practical case studies of L-PBF are discussed and analysis of the interrelating factors of the different life phases are presented. This study shows that simulation driven DfAM in the design phase increases the productivity throughout the whole production and life span of L-PBF parts. The LCC model covers the whole holistic lifecycle engineering of products and offers guidelines for decision making.
topic design for additive manufacturing
life cycle cost
metal
laser powder bed fusion
productivity
url https://www.mdpi.com/2075-4701/10/9/1179
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