A New Concept of Bio-based Prestress Technology with Experimental Proof-of-Concept on Bamboo-Timber Composite Beams

Author:

Zhang Hexin1ORCID,Shen Minhe1,Deng Yu2,Andras Peter1,Sukontasukkul Piti3,Yuen Terry Y.P.4,Tang Yunchao5,Wong Simon H F6,Limkatanyu Suchart7,Singleton Ian1,Hansapinyo Chayanon8

Affiliation:

1. School of Computing, Engineering and the Built Environment and School of Applied Sciences, Edinburgh Napier University, 10 Colinton Road, Edinburgh, UK, EH10 5DT

2. School of Civil Engineering and Architecture, Guangxi University of Science and Technology, Liuzhou, China 545006

3. Construction and Building Materials Research Center, Department of Civil Engineering, King Mongkut’s University of Technology North Bangkok, Thailand

4. Department of Civil Engineering, National Yang Ming Chiao Tung University, Hsinchu 30010, Taiwan (R.O.C.)

5. College of Urban Construction, Zhongkai University of Agriculture and Engineering, Guangzhou, China 510225

6. Faculty of Science and Technology, Technological Higher Education Institute of Hong Kong, 20A Tsing Yi Road, Tsing Yi Island, New Territories, Hong Kong

7. Department of Civil and Environmental Engineering, Faculty of Engineering, Prince of Songkla University, Songkhla, Thailand, 90112

8. Center of Excellence for Natural Disaster Management, Department of Civil Engineering, Faculty of Engineering, Chiang Mai University, Thailand

Abstract

Abstract This paper presents a pioneering experimental proof-of-concept study to validate a novel concept of prestress technology that used only pure bio-based composite materials while achieved consistent prestressed stress distribution within the structure member, and provided in-situ flexibility, improved structural performance, and maximised the rate of utilisation of each material. Industrial level of facilities were used during this development. The prestress is achieved by pressurised/forced lamination of multiple components with different materials and geometrical properties. The prestressing process is activated during the pressure release stage during which the components are interacting with each other, creating different stress statuses that would favour the weaker and adverse the stronger components to maximise the strength exploitation of different materials. Using laminated bamboo and timber as an example pair, twenty-two glulam, non-prestressed and prestressed laminated bamboo-timber composite beams were manufactured, tested, and analysed to provide an in-depth understanding of the structural behaviours of these novel structural members. Failure modes, yielding, ultimate and serviceability limit loads, and corresponding deflections, as well as the histories of strain development at key positions of the specimens were examined. The experimental study confirmed the feasibility, effectiveness and industrial scalability of the proposed technology. The novel concept provides a new approach for developing the prestress technology for bio-based materials, and this experimental study laid the foundation for its future analytical development and numerical studies.

Publisher

Research Square Platform LLC

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