High efficiency and long-term life of hydraulic turbines and their assemblies are of utmost importance for the hydropower industry. Usually, hydroelectric turbine components are made of thick-walled low carbon martensitic stainless steels. The assembly of large hydroelectric turbine components has been a great challenge. The use of conventional welding processes involves typical large groove design and multi-pass welding to fill the groove which exposes the weld to a high heat input creating relatively large fusion zone and heat affected zone.
The newly-developed hybrid/tandem laser-arc welding technique is believed to offer a highly competitive solution to improve the overall hydro-turbine performance by combining the high energy density and fast welding speed of the laser welding technology with the good gap bridging and feeding ability of the gas metal arc welding process to increase the productivity and reduce the consumable material.
The main objective of this research work is to understand different challenges appearing during hybrid laser-arc welding (HLAW) of thick gauge assemblies of low carbon 13%Cr-4%Ni martensitic stainless steel and find a practical solution by adapting and optimizing this relatively new welding process in order to reduce the number of welding passes necessary to fill the groove gap. The joint integrity was evaluated in terms of microstructure, defects and mechanical properties in both as-welded and post-welded conditions. A special focus was given to the hybrid and tandem laser-arc welding technique for the root pass.
Based on the thickness of the low carbon martensitic stainless steel plates, this work is mainly focused on the following two tasks:
• Single pass hybrid laser-arc welding of 10-mm thick low carbon martensitic stainless steel.
• Multi-pass hybrid/tandem laser-arc welding of 25-mm thick martensitic stainless steel.
| Date | 19 Sept 2016 |
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| Original language | American English |
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| Awarding Institution | - École de technologie supérieure
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| Supervisor | Tan Pham (Supervisor) & Jean Luc Fihey (Co-supervisor) |
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Mirakhorli, F. (Author),
Pham, T. (Supervisor) & Fihey, J. L. (Co-supervisor),
19 Sept 2016Student thesis: Doctoral thesis › Doctorate in Engineering: Engineering