Preview

Advanced Engineering Research (Rostov-on-Don)

Advanced search

One-pass arc welding under thin slag layer of thick 09G2S steel plate structures

https://doi.org/10.23947/1992-5980-2018-18-1-50-58

Abstract

Introduction. The technology of single-pass arc welding under a thin layer of slag (AST) of thick plate welded structures in the thermal and nuclear engineering is considered. The structure material is 09G2S steel. The work objective is the experimental study on the applicability of the AST method instead of the automatic welding under flux (AWF) and electroslag welding (ESW) under manufacturing the package units of the power plants.

Materials and Methods. The technology is developed on the basis of the calculation results of the thermal welding mode (thermal cycle parameters and welding mode settings). Test joint weld-samples, 100 mm thick, are made of 09G2S lowcarbon low-alloy steel. Welding is performed on the certified equipment of “EMC-Atommash” JSC. The welded joints quality is assessed on the standard control results by the following techniques: magnetic-particle testing (MPT), ultrasonic control (USC) and radiographic testing (RT). The non-destructive testing results were supplemented with the metallographic study data. To investigate the nature of the weld metal crystallization along the length of the weld, the macrotemplates were cut out mechanically from the middle through-the-thickness and at the distance of 10 mm from the surface. The technique and installation of “TCS-1” for simulating the thermal cycle of the metal welding of the heat affected zone (HAZ) of the welded joints; standard methods for determining mechanical properties; hardness and microhardness indices; and method for determining the grain size in micrographs according to GOST 5639-82 were used in the experiments. The microstructure was studied with MMP-2P and Reichert optical microscopes with increase up to thousandfolds. Besides, the distribution pattern and identification of the second phases of nonmetallics; welded samples and samples modeling the HAZ metal for the notch sensitivity; structure stability and welding cracking resistance were studied through the replica technique using the EMV-100LM electron microscope.

Research Results. Based on the thermal calculation results and the HAZ metal modeling, the optimum values of the heat input and welding variables are validated and experimentally verified. The welded joints quality is estimated by the nondestructive and destructive methods. The effect of the welding method on the structure, quality and mechanical properties of the welded joints is established.

Discussion and Conclusions. Positive results of the theoretical and experimental studies are obtained. They indicate the technological and economic efficiency of the AST method application (instead of AWF and ESW) under manufacturing the 100 mm thick welded joints of 09G2S low-alloy steel. Moderate heat input in AST allows for the one-pass forming of a welded joint with better fine-grained structure and higher mechanical characteristics as compared to the ESW and AWF. Recommendations on the use of the AST technique in the welding production are given.

About the Authors

Yu. V. Poletaev
Don State Technical University
Russian Federation

Poletaev, Yury V., professor of the Welding Fabrication Machines and Automation Department, Dr.Sci. (Eng.), Senior Research Scholar 

344000, Rostov-on-Don, Gagarin Square, 1



V. Yu. Poletaev
Don State Technical University
Russian Federation

Poletaev, Valery Yu., senior lecturer of the Welding Fabrication Machines and Automation Department

344000, Rostov-on-Don, Gagarin Square, 1



References

1. Poletaev, Yu.V., Poletaev, V.Yu. Vliyanie sposoba vyplavki stali Cr-Ni-Mo-V na sklonnost' k mezhzerennomu razrusheniyu pri elektroshlakovom pereplave. [Effect of smelting method of Cr-Ni-Mo-V steel on tendency to intercrystalline failure under electroslag remelting.] Tekhnologiya Mashinostroeniya, 2016, no. 8 (170), pp. 5– 10 (in Russian).

2. Poletaev, Yu.V., Poletaev, V.Yu. Vliyanie termicheskogo tsikla svarki i povtornogo nagreva na strukturnofazovye izmeneniya nizkolegirovannoy stali Cr-Ni-Mo-.V [Effect of thermal cycle of welding and reheating on structural-constitutional changes of low-alloyed Cr-Ni-Mo-V steel.] Vestnik of DSTU, 2016, vol. 16, no. 4 (87), pp. 96–103 (in Russian).

3. Poletaev, Yu.V., Poletaev, V.Yu., Rogozin, D.V. Vliyanie nadreza na sklonnost' svarnykh soedineniy k mezhzerennomu razrusheniyu. [Notch effect on the liability of welded joints to intergranular fracture.] Vestnik of DSTU, 2015, vol. 15, no. 3 (82), pp. 28–34 (in Russian).

4. Oborudovanie i truboprovody atomnykh energeticheskikh ustanovok. Svarka i naplavka. Osnovnye polozheniya. PN AEG-7-009-89. [ Equipment and pipelines of nuclear power plants. Welding and surfacing. Main principles. PN AEG-7-009-89.] Federal Inspectorate of Russia for Nuclear and Radiation Safety. Moscow: Research and Development Center for Nuclear and Radiation Safety, 1989, 145 p. (in Russian).

5. Poletaev, V.Yu. Sposoby povysheniya kachestva svarnykh soedineniy, vypolnennykh elektroshlakovoy svarkoy. [Ways to improve quality of welded joints made by electroslag welding.] Aktual'nye problemy nauki KhKhI veka: sb. st. V Mezhdunar. nauch.-prakt. konf. [Current problems of science of XXI century: V Int. Sci.-Pract. Conf.: Coll. of papers.] Moscow; St.Petersburg: Cognitio, 2015, part 2, pp. 131–139 (in Russian).

6. Poletaev, V.Yu., Poletaev, Yu.V., Gritsina, A.N. Vliyanie khimicheskoy aktivnosti flyusa dlya elektroshlakovoy svarki na stoykost' metalla shva protiv treshchin pri termicheskoy obrabotke. [Chemical activity effect of flux for electroslag welding on resistance against cracking of the weld metal under heat treatment.] Innovatsionnye tekhnologii v mashinostroenii i metallurgii: sb. statey VII nauch.-prakt. konf. [Innovative technologies in machine building and metallurgy: Proc. VII Sci.-Pract. Conf.] Rostov-on-Don: DSTU Publ. Centre, 2015, pp. 258–271 (in Russian).

7. Medovar, B.I., Tsikulenko, A.K., Bogachenko, A.G. Elektroshlakovaya tekhnologiya za rubezhom. [Electroslag technology abroad.] Kiev: Naukova dumka, 1982, 320 p. (in Russian).

8. Brandi, S.-D., Liu, S., Thomas, R.-D. Electroslag and electroslag welding. AWS Welding handbook, 2012, vol. 6A, pp. 365–379.

9. Kompan, Ya.Yu., Scherbinin, E.VElektroshlakovaya svarka i naplavka s upravlyaemymi MGD-protsessami. [Electroslag welding and surfacing with controlled MHD processes.] Moscow: Mashinostroenie, 1989, 272 p. (in Russian).

10. Protokovilov, I.V., Porohkonko, V.B. Upravlenie formirovaniem svarnykh soedineniy pri EShS. [Control of welded joints formation under ESW.] Avtomaticheskaya Svarka, 2012, no. 10, pp. 54–59 (in Russian).

11. Krishna, K. Narrow-gap improved electroslag. Welding for bridges. Welding in the World, 1996, vol. 38, no. 11, pp. 325–335.

12. Hobeev, A. E., Poletaev, Yu.V. Influence of weld joints damaging at the stage of manufacturing on operating reliability. Material issues in design, manufacturing and operation of nuclear power plants equipment: Proc. 7th Int. Conf. Saint Petersburg, CRISM «Prometey»; St. Petersburg ONTZ in cooperation with IAEA; Joint Research Center of European Commission. 2002, vol. 1, pp. 438–447.

13. Koshkarev, B.T. Teoriya svarochnykh protsessov. [Theory of welding processes.] Rostov-on-Don: DSTU Publ. Centre, 2003, 217 p. (in Russian).


Review

For citations:


Poletaev Yu.V., Poletaev V.Yu. One-pass arc welding under thin slag layer of thick 09G2S steel plate structures. Vestnik of Don State Technical University. 2018;18(1):50-58. (In Russ.) https://doi.org/10.23947/1992-5980-2018-18-1-50-58

Views: 690


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2687-1653 (Online)