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Numerical Optimization of a Compact and Reusable Pretensioning Anchorage System for CFRP Tendons
Authors:Giovanni Pietro Terrasi  Christian Affolter  Michel Barbezat
Affiliation:1Material Engineer, Head of Laboratory, EMPA, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Mechanical Systems Engineering, überlandstrasse 129, 8600 Dübendorf, Switzerland (corresponding author). E-mail: giovanni.terrasi@empa.ch
2Senior Engineer, EMPA, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Mechanical Systems Engineering, überlandstrasse 129, 8600 Dübendorf, Switzerland. E-mail: christian.affolter@empa.ch
3Material Engineer, EMPA, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Mechanical Systems Engineering, überlandstrasse 129, 8600 Dübendorf, Switzerland. E-mail: michel.barbezat@empa.ch
Abstract:Efficient use of pultruded carbon fiber–reinforced plastic profiles (CFRP tendons) to prestress high-performance concrete (HPC) highly depends on the performance of the anchorage system and on material choice. For current applications, a prestressing degree of approximately 40% of the CFRP material strength is utilized in pretensioned concrete elements. A higher prestress implicates lower costs of fully prestressed concrete elements. The present project aimed to optimize the design of a removable and reusable pretensioning anchorage system for sand-coated CFRP rods. The optimized design was achieved by means of finite-element calculations in which parametric studies were complemented with extensive experimental work for validation. Analytical results demonstrated a reduction up to 25% for the relevant stress peaks in the tendons. The static rupture load under laboratory conditions increased by 25%, and the pretensioning level on-site could be increased by 50%. This improvement in production efficiency can be explained by easier applicability of the new system, i.e., failure tolerant assembly and prestressing process.
Keywords:Carbon  Fiber reinforced plastics  Prestressing  Anchors  Finite element method  Optimization  
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