Full-scale fiber toughened ultra-high performance concrete and preparation method thereof
An ultra-high performance, fiber toughening technology, applied in the field of building materials, can solve the problem that ordinary mixers are difficult to form, and achieve the effect of maintaining volume stability
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Embodiment 1
[0027] A full-scale fiber-toughened ultra-high-performance concrete, including the following components by weight: 160 parts of steel fiber, 10 parts of basalt fiber, 20 parts of calcium carbonate whisker, 0.8 part of carbon nanotube, ordinary 52.5R portland cement 690 parts, 212 parts of mineral powder, 160 parts of silica fume, 1060 parts of river sand, 9 parts of admixture, and 170 parts of water.
[0028] and prepared by the following steps:
[0029] (1) Vibrating, stirring and dispersing cement, mineral powder, silica fume and river sand to obtain ultra-high performance concrete dry powder with good homogeneity;
[0030] (2) The carbon nanotubes and calcium carbonate whiskers are dispersed in the admixture by means of ultrasonic dispersion;
[0031] (3) Pour the above-mentioned ultra-high-performance concrete dry powder into an ordinary forced mixer, add weighed water and an admixture in which carbon nanotubes are dispersed, and stir for 3 to 5 minutes to obtain a slurry...
Embodiment 2
[0037] A full-scale fiber-toughened ultra-high performance concrete, including the following components by weight: 200 parts of steel fibers, 10 parts of calcium carbonate whiskers, 1.0 parts of carbon nanotubes, 690 parts of ordinary 52.5R Portland cement, mineral powder 212 parts, 160 parts of silica fume, 1060 parts of river sand, 9 parts of admixture, 180 parts of water.
[0038] After mixing, the concrete compressive strength test piece of 100mm×100mm×100mm and the concrete flexural strength test piece of 100mm×100mm×400mm are formed according to the standard T / CCPA 7-2018 "Basic Properties and Test Methods of Ultra-high Performance Concrete". After the slurry is hardened, remove the mold and place it in a standard curing room for curing. The performance test results are shown in Table 1.
Embodiment 3
[0040] A full-scale fiber-toughened ultra-high-performance concrete, including the following components by weight: 120 parts of steel fibers, 20 parts of basalt fibers, 20 parts of calcium carbonate whiskers, 1.2 parts of carbon nanotubes, and ordinary 42.5R portland cement 690 parts, 212 parts of mineral powder, 160 parts of silica fume, 1060 parts of machine-made sand, 9 parts of admixture, and 170 parts of water.
[0041] After mixing, the concrete compressive strength test piece of 100mm×100mm×100mm and the concrete flexural strength test piece of 100mm×100mm×400mm are formed according to the standard T / CCPA 7-2018 "Basic Properties and Test Methods of Ultra-high Performance Concrete". After the slurry is hardened, remove the mold and place it in a standard curing room for curing. The performance test results are shown in Table 1.
[0042] Table 1
[0043]
[0044]In Table 1, comparative example 1 is ultra-high performance concrete with conventional steel fibers added,...
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