2023•Journal of Bridge EngineeringRequires access

Multisection Optimization–Based Target Proof Load Determination Method for Bridge Load Testing

Xu Zheng, Ting‐Hua Yi, Dong‐Hui Yang, Hong‐Nan Li

Open publisher page 6 citations

Abstract

Load testing provides a useful alternative for cases in which current calculation or inspection methods cannot provide satisfactory answers to performance questions about an existing bridge. When determining the target proof load for long-span bridges during the proof load test, to ensure that all target control sections produce the same load effect with design live load, it is usually necessary to design independent load cases with different truck locations for each control section, which greatly increases the implementation cost of load testing. To solve this problem, this paper proposes a multisection optimization–based, target proof load determination method. First, the load cases are determined through control section classification, and the location of the peak of the influence surface is applied as classification criteria. Second, the load efficiency objective functions that are aimed at optimizing the truck-induced internal forces or deformation are constructed. Last, the number, positions, and formation of the load trucks for each load case are determined by a multisection joint optimization method. The effectiveness of the proposed method is shown by a target proof load determination example of a long-span arch bridge at the end of the paper. The proposed method can identify the minimum number of trucks and load cases that simultaneously meets the live load equivalent requirements of all control sections, which significantly reduces the proof load application cost of load testing.

About this research paper

What this paper is about

Load testing provides a useful alternative for cases in which current calculation or inspection methods cannot provide satisfactory answers to performance questions about an existing bridge. When determining the target proof load for long-span bridges during the proof load test, to ensure that all target control sections produce the same load effect with design live load, it is usually necessary to design independent load cases with different truck locations for each control section, which greatly increases the implementation cost of load testing. To solve this problem, this paper proposes a multisection optimization–based, target proof load determination method. First, the load cases are determined through control section classification, and the location of the peak of the influence surface is applied as classification criteria. Second, the load efficiency objective functions that are aimed at optimizing the truck-induced internal forces or deformation are constructed. Last, the number, positions, and formation of the load trucks for each load case are determined by a multisection joint optimization method. The effectiveness of the proposed method is shown by a target proof load determination example of a long-span arch bridge at the end of the paper. The proposed method can identify the minimum number of trucks and load cases that simultaneously meets the live load equivalent requirements of all control sections, which significantly reduces the proof load application cost of load testing.

Why it matters

OpenAlex reports 6 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Load testing provides a useful alternative for cases in which current calculation or inspection methods cannot provide satisfactory answers to performance questions about an existing bridge. When determining the target proof load for long-span bridges during the proof load test, to ensure that all target control sections produce the same load effect with design live load, it is usually necessary to design independent load cases with different truck locations for each control section, which greatly increases the implementation cost of load testing. To solve this problem, this paper proposes a multisection optimization–based, target proof load determination method. First, the load cases are determined through control section classification, and the location of the peak of the influence surface is applied as classification criteria. Second, the load efficiency objective functions that are aimed at optimizing the truck-induced internal forces or deformation are constructed. Last, the number, positions, and formation of the load trucks for each load case are determined by a multisection joint optimization method. The effectiveness of the proposed method is shown by a target proof load determination example of a long-span arch bridge at the end of the paper. The proposed method can identify the minimum number of trucks and load cases that simultaneously meets the live load equivalent requirements of all control sections, which significantly reduces the proof load application cost of load testing.

Key concepts: Truck, Load testing, Structural load, Bridge (graph theory), Design load, Structural engineering, Span (engineering), Influence line

Related papers

Back to paper searchBrowse research topicsOriginal source
Multisection Optimization–Based Target Proof Load Determination Method for Bridge Load Testing — Research Paper | ScholarLens