ABSTRACT

Quite often, buried pipelines connected to rigid structures or existing buried pipelines undergo differential settlements that, in addition to stress and strain from normal operational conditions, may impose significant stress and strain in the pipe wall. The pipeline should be capable of accommodating the imposed displacement due to settlement while maintaining its structural integrity and fulfilling its water transmission function without leaks. Currently, the use of couplings or joints that depend on gasket seating to maintain water containment after settlement is the typical solution for lesser amounts of differential settlement. The paper describes the expanded application of the engineered steel pipe solution identified as Geohazard Resistant Steel Pipe (GRSP) for use in differential settlement applications. The application of GRSP for absorption of ground displacement in a controlled and efficient manner allows for fully welded joints, eliminating the need for gaskets. GRSP has been introduced in previous ASCE Pipelines conferences and validated with a series of full-size physical tests backed with extensive rigorous finite element simulations. It was shown that GRSP can be used in seismic or ground fault areas where ground-induced actions are expected to occur. GRSP has also been applied in settlement or subsidence areas, offering a simple and economical solution for absorbing the deformation imposed by differential settlement or subsidence. This paper will provide design guidelines and design tables on the use of GRSP and, specifically the InfraShield Joint System (IJS), patent pending. The design tables and design guidelines are developed from the full-scale testing on 24-in.-diameter pipes and continued with extensive finite element (FE) simulations on 84-in.-diameter pipes under differential settlements. This paper will expand on this FE work and include 42-in. and 24-in.-diameter pipe simulations. Two primary cases are considered: (1) the soil settles, causing pipeline deformation, whereas the nearby structural system has negligible settlement, and (2) the structural system settles, while the soil next to it exhibits negligible settlement. The main parameters for the advanced FE work are: (1) soil types (stiffness); (2) diameter-to-thickness ratio (D/t); (3) level of internal pressure; (4) size of soil cover above the pipeline; and (5) amount of vertical or horizontal settlement. Using the results of these extensive studies, application tables for settlements of up to 4 in. for diameters of 24 in. through 96 in. are provided, accompanied by design and GRSP installation guidelines.

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REFERENCES

AWWA (American Water Works Association). (2017). Steel Pipe - A Guide for Design and Installation. AWWA M11, 5th Edition.
Chatzopoulou, G., Fappas, D., Karamanos, S. A., Keil, B., and Mielke, R. D. (2018). “Numerical simulation of steel Lap welded pipe joint behavior in seismic conditions.”, ASCE Pipelines Conference, paper No. 387141, Toronto, ON, Canada.
Fappas, D., Sarvanis, G. C., Karamanos, S. A., Keil, B. D., Mielke, R. D., and Card, R. J. (2021). “Safeguarding the integrity of large-diameter steel pipelines subjected to differential ground settlements”, ASCE Pipelines Conference, paper No. 932722, Calgary, AL, Canada.
Keil, B. D., Gobler, F., Mielke, R. D., Lucier, G., Sarvanis, G. C., and Karamanos, S. A. (2018). “Experimental Results of Steel Lap Welded Pipe Joints in Seismic Conditions.”, ASCE Pipelines Conference, paper No. 386906, Toronto, ON, Canada.
Keil, B. D., Lucier, G., Karamanos, S. A., Mielke, R. D., Gobler, F., Fappas, D., Sarvanis, G. C., Chatzopoulou, G., and Card, R. J. (2020a). “Experimental Investigation of Steel Lap Welded Pipe Joint Performance Under Severe Axial Loading Conditions in Seismic or Geohazard Areas”, ASCE Pipelines Conference, paper No. 744005, San Antonio, TX, USA.
Keil, B. D., Mielke, R. D., Gobler, F., Lucier, G., Sarvanis, G. C., Chatzopoulou, G., Fappas, D., and Karamanos, S. A. (2020b). “Newly Developed Seismic Resilient Steel Pipe Joint Safeguards Pipeline Structural Integrity during Severe Geohazard Events”, ASCE Pipelines Conference, paper No. 744041, San Antonio, TX, USA, August 2020 (Virtual).
Keil, B. D., Fappas, D., Gobler, F., Sarvanis, G. C., Chatzopoulou, G., Lucier, G., Mielke, R. D., and Karamanos, S. A. (2022). “A New System for Improving the Structural Resilience of Lap-Welded Steel Pipeline Joints”, Thin-Walled Structures, Vol. 171, article 108676.
Sarvanis, G. C., Chatzopoulou, G., Fappas, D., Karamanos, S. A., Keil, B. D., Lucier, G., Gobler, F., and Mielke, R. D. (2020). “Bending Response of Lap Welded Steel Pipeline Joints”, Thin-Walled Structures, Vol. 157, Article 107065.
Vazouras, P., Keil, B. D., Dakoulas, P., Mielke, R. D., and Karamanos, S. A. (2022). “A novel concept for assuring the performance of steel water pipelines in ground settlement areas”, ASCE Pipelines Conference, paper No. 71, Indianapolis, IN, USA.

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Pipelines 2024
Pages: 131 - 141

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Published online: Aug 30, 2024

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Brent D. Keil, P.E., M.ASCE [email protected]
1Northwest Pipe Co., Vancouver, WA. Email: [email protected]
Polynikis Vazouras, Ph.D. [email protected]
2Dept. of Mechanical Engineering, Univ. of Thessaly, Volos, Greece. Email: [email protected]
Richard D. Mielke, P.E., M.ASCE [email protected]
3Northwest Pipe Co., Vancouver, WA. Email: [email protected]
Spyros A. Karamanos, Ph.D., M.ASCE [email protected]
4Dept. of Mechanical Engineering, Univ. of Thessaly, Volos, Greece. Email: [email protected]

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