Abstract

This paper aims to study the dynamic mechanical properties, failure patterns, fractal behaviors, and energy dissipation of polypropylene fiber-reinforced cement soil under impact loading. Dynamic compression tests for reinforced cement soil with different polypropylene fiber contents of 0%, 0.4%, 0.8%, and 1.2% were conducted using a 50 mm diameter split Hopkinson pressure bar (SHPB) device. The static and dynamic stress-strain curves, dynamic strength increase factor (DIF), fractal behaviors, and energy dissipation properties of polypropylene fiber-reinforced cement soil were investigated and analyzed. The experimental results indicated that the dynamic strength increase factor (DIF) of cement soil increases firstly and then decreases with the increase of polypropylene fiber content from 0% to 1.2%. The maximum dynamic compressive strength of cement soil was obtained with adding 0.8% polypropylene fiber. With the increase of polypropylene fiber content, the average particle size of cement soil fragments has an increasing trend, whereas the fractal dimension presents a decreasing trend. Besides, the fragmentation degree of cement soil decreases correspondingly with the increase of polypropylene fiber content. The fractal dimension value has a linear relationship with the polypropylene fiber content and a decreasing exponential relationship with the average particle size. The absorbed energy per unit volume of cement soil presents an increasing trend firstly and a decreasing trend subsequently as the polypropylene fiber content increases from 0% to 1.2%. When the fractal dimension of cement soil is kept in the range of 2.04 to 2.15, the absorbed energy per unit volume of cement soil increases first and then decreases. The absorbed energy per unit volume of cement soil has a quadratic parabola relationship with polypropylene fiber content and fractal dimension, respectively. At last, the relationship of the absorbed energy per unit volume, fractal dimension, and polypropylene fiber content can be established, which can be used in the studies of dynamic behaviors and fractal properties of the fiber-reinforced cement soil under impact loading.

Highlights

  • Polypropylene fiber has many advantages as high strength, low elongation, durability, impermeability, freezing resistance, and impact resistance

  • With the polypropylene fiber content increasing from 0% to 1.2%, the average particle size of impact broken fragments increases directly and the fractal dimension decreases gradually. ere is a good linear relationship between fractal dimension and polypropylene fiber content

  • (3) e polypropylene fiber dosage has a certain influence on the absorbed energy per unit volume of cement soil

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Summary

Introduction

Polypropylene fiber has many advantages as high strength, low elongation, durability, impermeability, freezing resistance, and impact resistance. E study of dynamic properties and fractal characteristics of polypropylene fiber cement soil under impact loading can be used to evaluate the impact resistance and absorption ability of polypropylene fiber-reinforced cement soil. It can be seen from the literature [13] that the higher strain rate does not significantly improve the dynamic impact strength of cement soil. The influence of polypropylene fiber content on dynamic strength increase factor (DIF), fractal dimension, and absorbed energy per unit volume of fiberreinforced cement soil was analyzed, respectively. The influence of polypropylene fiber content on dynamic strength increase factor (DIF), fractal dimension, and absorbed energy per unit volume of fiberreinforced cement soil was analyzed, respectively. e relationship between fractal dimension and absorbed energy per unit volume was analyzed

Experimental Procedure
Dynamic Mechanical Properties of Cement Soil
Incident pulse
Fractal Characteristics of Cement Soil Fragmentation
Energy Dissipation Analysis of Cement Soil under Impact Loading
Findings
Conclusions
Full Text
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