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3D Printing in Smart Construction and Prototyping

  Revolutionizing the Building Industry Introduction The integration of 3D printing technology into the construction industry has sparked a revolution in the way buildings are designed, prototyped, and constructed. With its ability to fabricate complex structures layer by layer, 3D printing offers unparalleled flexibility, efficiency, and sustainability in construction processes. In this article, we explore the transformative impact of 3D printing in smart construction and prototyping, examining its applications, benefits, and future prospects in reshaping the built environment. Understanding 3D Printing in Construction: 3D printing, also known as additive manufacturing, involves the layer-by-layer deposition of materials to create three-dimensional objects from digital models or CAD (Computer-Aided Design) files. In the context of construction, 3D printing enables the fabrication of building components, structures, and even entire buildings usin

Full period ArticleCustomization and flexible production capability the usage of a graphical approach implemented on a configurable multi-agent machine

 


Highlights

Concurrent use of pluggable resources for quick and agile stability of the producing ability.• Easy adoption to custom designed products by using utilizing in-house know-how of the producer.• Graphical device for clean layout and visualization of sequential and parallel dreams and necessities.• Plug & Produce robotic cell managed by using a configurable multi-agent device established on a wood house wall pre-manufacturing case.

Concurrent use of pluggable sources for brief and agile stability of the manufacturing capability. Easy adoption to custom designed products by way of utilizing in-house information of the manufacturer.

Graphical tool for clean layout and visualization of sequential and parallel desires and requirements. Plug & Produce robot cell controlled by a configurable multi-agent device verified on a wood house wall pre-manufacturing case.

Abstract

This article proposes a Plug & Produce and goal-oriented configurable multi-agent organization that admits adding and removing assets to stability the manufacturing capability without doing any virtual reconfiguration or reprogramming.

To handle that a brand new part-agent method is evolved and described. Goals are vital in designing independent multi-agent systems, opportunities to execute goals in parallel are perfect while the system necessities admit concurrent use of resources.

Also, a standardized graphical approach, the sequence of desires chart, is proposed to outline and visualize parallel and sequential dreams independently of available resources. Premanufacturing of wood houses belongs to considered one of many production industries that declare flexible automation structures due to the high degree of customized merchandise and a fluctuating market

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A physical Plug & Produce robot-primarily based computer was built up to affirm the ability in changing capacity and adoption to product adjustments of a house wall section. Further, the simplicity of editing the proposed configurable multi-agent machine turned into in comparison to more historically designed systems and undeniable multi-agent structures with advanced results.

The flexibility is constructed into the proposed system by using default as a part of the idea, simple sufficient to be handled via existing in-house expertise inside production companies.

Data could be made to be had on request.

Cited through

Anders Nilsson was born at Flatten, Oust, Sweden in 1965. He obtained B.Ed. From Gothenburg University, Sweden in 2006, B.Sc. In mechatronics and M.Sc. Degree in Robotics and Automation from University West, Tolvaptan, Sweden, in 2014 and 2015. He changed into Electro and Automation Maintenance Technician at SAAB Automobile 1984 to 1989. Project Engineer at KG-Process AB 1990–1991. R&D Engineer at Bonar Electronics AB 1992–2006. Lecturer in Electro and Automation at Nils Ericson's gymnasia 2006–2008. Since 2009 - Lecturer and Research Engineer at University West, in which he now's operating toward the Ph.D. Diploma in Production Technology with a focus on Multiagent Technology used in Manufacturing Systems.

Fredrik Danielsson became born at roust, Sweden, in 1972. He received the Ph.D. Diploma in mechatronics from De Montfort University, Leicester, U.K., in 2002. From 2003 to 2015, He turned into the Head of the Robot and Automation schooling at superior stage with University West. Since 2008, he has been the Head of the Flexible Automation Research Group on the Department of Engineering Science, University West. He has co-authored of greater than 70 peer reviewed papers in worldwide journals and conferences. His modern predominant research interests include flexible automation, multi-agent manage systems, digital commissioning, AI and robotic structures.

Bo Svensson changed into born in Mariestad, Sweden, in 1959. He obtained the M.S. Diploma in electrical engineering in 1984 and the Ph.D. Diploma in automation in 2012 from Chalmers University of Technology, Gothenburg, Sweden. He turned into a Design Engineer with SAAB Space AB from 1984 to 1987. From 1987 to 1994, he was a System Engineer with SAAB Automobile AB. Since 1994, he has been a Senior Lecturer with the Department of Engineering Science, University West, Trollhättan, Sweden, with teaching and studies. His cutting-edge research hobby includes flexible business automation, plug and convey, multiagent gadget control, human-robotic collaboration, protection, and simulation-based totally optimization.