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High strain rate effects on direct tensile behavior of high performance fiber reinforced cementitious composites
Affiliation:1. Institute of Bridge Engineering, Department of Civil, Structural, and Environmental Engineering, State University of New York at Buffalo, 135 Ketter Hall, Buffalo, NY 14260, USA;2. Department of Civil and Environmental Engineering, University of Michigan Ann Arbor, 2350 Hayward St, Ann Arbor, MI 48109, USA;3. US Army Engineer Research and Development Center (ERDC), 3909 Halls Ferry Rd, Bldg 5028, Vicksburg, MS 39180, USA;1. TU Dresden, Institute of Construction Materials, Dresden, Germany;2. Fraunhofer Institute for High-speed Dynamics, Ernst-Mach-Institute, EMI, Freiburg, Germany
Abstract:Direct tensile behavior of high performance fiber reinforced cementitious composites (HPFRCCs) at high strain rates between 10 s?1 and 30 s?1 was investigated using strain energy frame impact machine (SEFIM) built by authors. Six series of HPFRCC combining three variables including two types of fiber, hooked (H) and twisted (T) steel fiber, two fiber volume contents, 1% and 1.5%, and two matrix strengths, 56 MPa and 81 MPa, were investigated. The influence of these three variables on the high strain rate effects on the direct tensile behavior of HPFRCCs was analyzed based on the test results. All series of HPFRCCs showed strongly sensitive tensile behavior at high strain rates, i.e., much higher post cracking strength, strain capacity, and energy absorption capacity at high strain rates than at static rate. However, the enhancement was different according to the types of fiber, fiber volume content and matrix strength: HPFRCCs with T-fibers produced higher impact resistance than those with H-fibers; and matrix strength was more influential, than fiber contents, for the high strain rate sensitivity. In addition, an attempt to predict the dynamic increase factor (DIF) of post cracking strength for HPFRCCs considering the influences of fiber type and matrix strength was made.
Keywords:Strain energy impact test system  High strain rates  High performance fiber reinforced cementitious composites  Dynamic increase factor  Strain rate effect
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