Concept of in-situ repair using laser based additive manufacturing techniques Prof. Toms TORIMS Riga Technical University, Latvia FCC Week 2016, Rome.

Slides:



Advertisements
Similar presentations
Minimizing Micro-Cracks in Solar Cell Interconnections Paul Wood Advanced Product Applications Manager.
Advertisements

Atom Chip Technology (ACT) A New Program to Focus a New Quantum Technology for Emerging National Needs CQI Please See Nick Bigelow With Questions.
EWI’s Laser Equipment 15-kW IPG Fiber Laser 4-way beam switch
Operating a Wind Farm in the Future Smart Grid: Lessons from developing and deploying a Smart Grid on Shetland Presented by:Mr. Simon Gill (University.
Machine Tools And Devices For Special Technologies Plasma machining Slovak University of Technology Faculty of Material Science and Technology in Trnava.
Best Practices for Remote Assembly and Maintenance Keith Kershaw, Sources, Targets and Interactions Group Thanks to: Alessandro Tesini and Jim Palmer of.
HEGRA HESS I HESS II 10m 2 108m 2 600m 2 Personal view Stimulate a discussion.
MENG 439 Dr. L. K. Gaafar Plasma Arc Cutting.
© Copyright 2002 ABB. All rights reserved. - Microelectromechanical Systems for Process Analytics IFPAC 2003 Dr. Berthold Andres ABB Automation Products.
SAROND WELDING s.r.o. is a manufacturing company focusing on deliveries for power-, transportation- and construction engineering businesses. The company.
Integrated Circuits (ICs)
Combined Heat and Power and Air Quality - Guidance for Local Authorities Ed Dearnley Policy Officer.
Waste Heat Recovery – Technologies and Opportunities in the Industrial sector Pradeep Kumar Dadhich, PhD Director| GUIDe - Energy and Resources Deloitte.
Rapid Prototyping Dr. Lotfi K. Gaafar The American University in Cairo
Laser Beam Machining Done By: Murad.
LASER BEAM MACHINING BY S.PREMKUMAR.
Remote Visual Inspection
The AWE Family Includes Joyal® – A Division of AWE, Inc.
The Smart Grid Enabling Energy Efficiency and Demand Response Clark W
Research Interest Reliability of “green” electronic systems Nano-based Pb-Free Technology Processing, characterization, and defects ID of Pb-Free electronic.
Advanced Advanced Aluminium Aluminium Technology Technology.
Manufacturing is the changing of raw or processed materials into usable products. Manufacturing occurs in manufacturing plants, or factories.
“PCB” -AMIT NIKAM -ASHI NAGARIYA.
Almir Heralić, University West Laser Metal Deposition: Supporting technology for manufacture of complex structures in the aero industry Almir Heralić,
INVESTMENT CASTINGS 1.
Metal – Processing Welding.
Frankfurt (Germany), 6-9 June 2011 Smart Grid Protection in China Wu Guopei Guangzhou Power Supply Bureau Guangdong Power Grid, China.
LASER BEAM WELDING(LBW)
André Augustinus 17 June 2002 Technology Overview What is out there to fulfil our requirements? (with thanks to Tarek)
Kinetic Spot Welding Curtis Prothe DMC Clad Metal Mt. Braddock, PA EPNM 2012 May 2-5 Strasbourg, France.
How to Improve the Safety of Signalling Systems with a Shortened Construction Period in Engineering Construction Projects Gao Guoliang Safety Assurance.
Copyright © The McGraw-Hill Companies, Inc. Permission required for reproduction or display. PowerPoint to accompany Krar Gill Smid Technology of Machine.
PowerIT Air Insulated Cubicle Uniswitch
Embedded Design Using ARM For Strong Room Security System
Datalogic Automation Company Presentation. 2 © Copyright Datalogic © Copyright Datalogic © Copyright Datalogic Datalogic.
ELECTRON BEAM WELDING The electron beam gun has a tungsten filament which is heated, freeing electrons. The electrons are accelerated from the source with.
Cicorel SA Printed Circuits Manufacturing Out of Standards.
30 April 2014FCC-ee Physics Coordination meeting1 WELCOME to the 1st coordination meeting «Experiments at the FCC-ee» Within the FCC-ee DESIGN STUDY.
State-of-the-Art Accelerator Technology Peter McIntosh, STFC HEPTech Environmental Applications of Accelerators 9 th July 2013.
Flux Cored Arc Welding (FCAW)
Principle – more than 3D Printing but Additive Manufacturing Primary questions:  How can be one solid layer formed?  How can two layers be adhered? Process.
Advanced Welding Technique
EUROnu Costing Workshop May 2011 Beta-Beam Costing Exercise Elena Wildner, CERN 25/05/11 1 EUROnu Costing Workshop, CERN May 2011.
The integration of 420 m detectors into the LHC
GFE in RFCs Tom LeFebvre ESRL/Global Systems Division.
Your partner in Global Sourcing. Emcon is supplying the industry with technical parts and assemblies, which are produced by partners in Asia and Central.
Thermal Spray Coatings Asst.Prof.Dr. Ali Sabea Hammood Materials Engineering Department Materials Engineering Department Faculty of Engineering Faculty.
COOLING & VENTILATION PLANTS M. Nonis – CERN EN Department / CV Group Annual Meeting of the FCC study – Rome 14 th April 2016.
SENSITIVE SKIN. OUTLINE INTRODUCTION SKIN MATERIALS DEVICES SIGNAL PROCESSING ADVANTAGES DISADVANTAGES APPLICATION CONCLUSION.
Presenter: Prof. Dimitris Mourtzis Advanced Manufacturing: Industry 4.0 and Smart Systems.
ADDITIVE MANUFACTURING PROJECT CLUSTER MEETING AM for Metal Parts EU-OXIGEN project (No ) Fundació CIM C/Llorens i Artigas, 12 Parc Tecnològic de.
ADDITIVE MANUFACTURING PROJECT CLUSTER MEETING
ADDITIVE MANUFACTURING PROJECT CLUSTER MEETING TOPIC: AM for Metal Parts Fundació CIM C/Llorens i Artigas, 12 Parc Tecnològic de Barcelona Barcelona, Spain.
Remote Measurement and Alignment Applications for Survey and Alignment P. Bestmann for BE/ABP/SU
Tests on production cryomodules Bob Kephart Sept 30, 2006.
VEX Units of work UNIT 1: TUMBLERUNIT 2: CLAWBOTUNIT 3: MANUFACTURING UNIT 1.1: Autodesk Inventor TUMBLER Build UNIT 2.1: Autodesk Inventor CLAWBOT Build.
“Additive Manufacturing and its societal impact: a literature review” PRESENTED BY: SLAVIK DEMIN & ALON SIMCHONI Based on the articles by Samuel H. Huang,Peng.
ELECTRICAL ENERGY BASED PROCESSES
Direct Metal Deposition
Detector building Notes of our discussion
Laser Beam Welding LIGHT AMPLIFICATION by STIMULATED EMISSION of RADIATION. Coalescence of heat is produced by the Laser beam which is having high energy.
Manufacturing of the first FCC-hh beam screen prototype for ANKA
Electron Beam Welding Welding Technology/4.3 Electron Beam Welding.
Computer Numerical Control
Gasket Fabricators Association Technical Committee Presentation
Internet of Things (IoT) for Industrial Development and Automation
Future Challenges Complexity – more materials, greater integration, personalisation, increased use of biologics Maintaining or reducing costs – automation,
Summary Slide (OV/1-1) PROGRESS OF ITER-INDIA ACTIVITIES FOR ITER DELIVERABLES-Challenges and mitigation measures What are the major developments? A functional.
PhD Student Adrián Morales Casas, RTU/ UPV
Presentation transcript:

Concept of in-situ repair using laser based additive manufacturing techniques Prof. Toms TORIMS Riga Technical University, Latvia FCC Week 2016, Rome

What challenges we can expect for repairs and maintenance? km infrastructure Unprecedented powers Unprecedented fields pp-collider (FCC-hh) e+e- collider (FCC-ee) p-e (FCC-he) option HE-LHC with FCC-hh technology

Due to its nature, size, scale, complexity and environment, conventional repair methods and technologies simply will not work Human intervention will be limited or even impossible - too time consuming and too costly FCC will be so large and complex – possibility "that something goes wrong" increases exponentially There will be unprecedented amount of tech. faults and problems to be fixed/repaired 3 Challenges

Environmental: Radiation Supper high magnetic fields High voltage Oxygen deficiency Fire safety Recycling 4 Challenges - repairs

Operational: Difficult to access Very limited space Distance from the access points Time to access and solution to the problem Time schedule – recovery Reliability of technology 5 Challenges - repairs

Technological: Very delicate equipment, high precision and fine tolerances Complex assemblies Magnitude from micro to macro levels Variety of materials, often difficult to process and repair Novel and "unknown" materials Designed for manual repairs? 6 Challenges - repairs

Conclusion: Conventional repair might be not sufficient and difficult to apply There is no industrial off-shelf "ready-to-use" solution for these challenges New concepts and different philosophy is needed for any repairs in FCC 7 Challenges - repairs

What it is and why for FCC? Laser cladding 8

9 source: Laser focus world

10 Laser cladding Courtesy of TRUMPH

Surface cladding – 100  m to 2 mm thickness – 100  m to 2 mm single truck with cladding area range of sq/m Repairs – 100  m to 2 mm single truck with – Multi-layer build-up – Exact material delivery Additive manufacturing – 3D material build-up – 30  m to 1 mm lateral resolution 11 Laser cladding

12 Provides for: rapid design changes – very flexible direct generation of complex parts made from eventually any material Laser cladding

Comparative advantages minimal dilution and distortion enhanced thermal control Heat Affected Zone is reduced customised surface parameters low porosity and few imperfections high precision and surface quality parameters the resulting surface material has characteristics similar to or even better than the original 13

reduced production time (compared e.g. with welding) highly satisfactory repair of parts production of a functionally graded parts production of smart structures Perfect technology for in-situ repairs Suitable for automation 14 Comparative advantages

Range of nozzles 15

Current applications 16 Repair and refurbishment of high value components (e.g. tools, turbine blades, gas turbine and engine parts) Metallic coatings, rapid prototyping, layered metal deposition and nano- scale manufacturing Three main fields of application: – surface cladding – repair welding – generative manufacturing

In situ laser cladding

Prototype device 18

Mostly technological: Powder v/s wire Metallurgical challenges (e.g. cracks) Complex technological system High equipment and running costs Lack of maturity in industrial application 19 Drawbacks

How can it be done? Concept of in-situ repairs in FCC 20

Potential for FCC Fire safety – is different from welding – less heat and very local impact Flexibility – type and material Large variety of materials, including composite - everything that tolerates laser melting Could be applied to unknown and novel materials From nano to macro 21

Potential for FCC No post-processing is needed Fast reaction – time-to-action No human intervention – automation and remote manipulation Reliable technology Can work in hazardous environment Offers a new concept/philosophy 22

23 Monorail train

Components Laser power source unit – e.g. diode laser Powder or wire deposit and supply unit Control and guidance unit Robotic arm unit Fire safety unit 24

25 Courtesy of Dr. Mario Di Castro (CERN) Remote manipulation

Challenges Size and space limitations Accessibility How to fit all parts in to mobile delivery systems Operational and automation issues Control and positioning Fire safety 26

Closing remarks Very promising technology – e.g. Canadian Space Agency Laser cladding is not only for repairs Certain FCC repair challenges could be addressed RTU is ready to establish a collaboration and to run a feasibility study on how to deploy laser cladding technology for in-situ repairs. Not only for FCC, also for LHC and other projects 27

Thank you for your attention! 28