A Load-Carrying Capacity Evaluation Method for the Welded Joints of Rocket Engine Frame

Author:

Gao Yushan1ORCID,Huo Shihui1,Wang Peiyan2,Zhang Ping1ORCID

Affiliation:

1. Science and Technology on Liquid Rocket Engine Laboratory, Xi’an Aerospace Propulsion Institute, Xi’an 710100, China

2. Department of Engineering Mechanics, Northwestern Polytechnical University, Xi’an 710129, China

Abstract

The load-carrying capacities of welded joints need to be paid attention to in the design of the frame, which transfers the thrust generated by the rocket engine to the rocket body. A load-carrying capacity evaluation method of welded joints based on the structural stress method is proposed in this study. Both the ultimate load-carrying capacity and fracture section angle are precisely obtained by the evaluation method. At the same time, a definition of weld-failure stress is given based on the evaluation method and tests. The load-carrying capacity of welded joints in the rocket engine frame is analyzed through the finite element model, including the overall structure and local weld details. The weld-failure stress of welded joints is obtained based on the analysis of three types of welded structures—standard shear specimen, U-shaped fillet welded specimen and pipe-plate fillet welded specimen. The safety factors of the transverse rod and longitudinal bearing rod welded joints of the frame are 8.6 and 13.4, respectively.

Funder

National Natural Science Foundation of China

Publisher

MDPI AG

Subject

Aerospace Engineering

Reference19 articles.

1. A rapid optimization design method for frame structure of double thrust chambers;Huo;J. Rocket Propuls.,2015

2. Experimental investigation of the fatigue resistance of pipe-to-plate welded connections under bending torsion and mixed mode loading;Bertini;Int. J. Fatigue,2014

3. Application of different concepts for fatigue design of welded joints in rotating components in mechanical engineering;Pyttel;Int. J. Fatigue,2012

4. Hobbacher, A.F. (2008). Recommendations for Fatigue Design of Welded Joints and Compinents, IIW Document IIW-1823-07; International Institute of Welding.

5. Hobbacher, A.F., and Hobbacher, A.F. (2016). Recommendations for Fatigue Design of Welded Joints and Components, Springer International Publishing.

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