Energy Evolution Law of Ore-Bearing Rock during Unloading under High Static Stress and Frequent Disturbance
Based on the complex engineering environment in deep rock engineering, preloaded high axial pressure, unloading of axial pressure, and impact loading were used to simulate high in situ stress, unloading of excavation, and blasting disturbance, respectively; the experimental study on frequent impact...
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Series: | Complexity |
Online Access: | http://dx.doi.org/10.1155/2020/3806521 |
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doaj-e4b18dcc563b4145b41fba64007afe152020-11-25T03:34:50ZengHindawi-WileyComplexity1076-27871099-05262020-01-01202010.1155/2020/38065213806521Energy Evolution Law of Ore-Bearing Rock during Unloading under High Static Stress and Frequent DisturbanceChun Wang0Mei-zhi Xie1Zu-qiang Xiong2Cheng Wang3Lu-ping Cheng4School of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo, Henan 454000, ChinaGuangxi Key Laboratory of Disaster Prevention and Engineering Safety, Guangxi University, Nanning, Guangxi 530029, ChinaSchool of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo, Henan 454000, ChinaSchool of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo, Henan 454000, ChinaSchool of Energy Science and Engineering, Henan Polytechnic University, Jiaozuo, Henan 454000, ChinaBased on the complex engineering environment in deep rock engineering, preloaded high axial pressure, unloading of axial pressure, and impact loading were used to simulate high in situ stress, unloading of excavation, and blasting disturbance, respectively; the experimental study on frequent impact disturbances under unloading of high static load was carried out, which aimed at revealing the energy evolution law of rock. First, the equations of elastic property, plastic energy, and incident energy in the impact process are discussed by theoretical analysis. Then, it is found by further investigation that dynamic stress-strain curve and envelope curve of rock are with the same change tendency. The initial stage was short straight stage, and then linear stage appeared and was less influenced by unloading rate. The plastic energy, the ratio of reflected energy to incident energy, and the energy consumption per unit volume of rock increase during impact. The higher the preloaded axial pressure is, the greater the ratio of reflected energy to incident energy is, the smaller the ratio of transmitted energy to incident energy and the average energy dissipation per unit volume of rock are. When the unloading rate increased, the elastic energy generated by impact gradually increased, the plasticity gradually weakened, the ratio of transmitted energy to incident energy increased, and the ratio of reflection energy to incident energy decreased.http://dx.doi.org/10.1155/2020/3806521 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Chun Wang Mei-zhi Xie Zu-qiang Xiong Cheng Wang Lu-ping Cheng |
spellingShingle |
Chun Wang Mei-zhi Xie Zu-qiang Xiong Cheng Wang Lu-ping Cheng Energy Evolution Law of Ore-Bearing Rock during Unloading under High Static Stress and Frequent Disturbance Complexity |
author_facet |
Chun Wang Mei-zhi Xie Zu-qiang Xiong Cheng Wang Lu-ping Cheng |
author_sort |
Chun Wang |
title |
Energy Evolution Law of Ore-Bearing Rock during Unloading under High Static Stress and Frequent Disturbance |
title_short |
Energy Evolution Law of Ore-Bearing Rock during Unloading under High Static Stress and Frequent Disturbance |
title_full |
Energy Evolution Law of Ore-Bearing Rock during Unloading under High Static Stress and Frequent Disturbance |
title_fullStr |
Energy Evolution Law of Ore-Bearing Rock during Unloading under High Static Stress and Frequent Disturbance |
title_full_unstemmed |
Energy Evolution Law of Ore-Bearing Rock during Unloading under High Static Stress and Frequent Disturbance |
title_sort |
energy evolution law of ore-bearing rock during unloading under high static stress and frequent disturbance |
publisher |
Hindawi-Wiley |
series |
Complexity |
issn |
1076-2787 1099-0526 |
publishDate |
2020-01-01 |
description |
Based on the complex engineering environment in deep rock engineering, preloaded high axial pressure, unloading of axial pressure, and impact loading were used to simulate high in situ stress, unloading of excavation, and blasting disturbance, respectively; the experimental study on frequent impact disturbances under unloading of high static load was carried out, which aimed at revealing the energy evolution law of rock. First, the equations of elastic property, plastic energy, and incident energy in the impact process are discussed by theoretical analysis. Then, it is found by further investigation that dynamic stress-strain curve and envelope curve of rock are with the same change tendency. The initial stage was short straight stage, and then linear stage appeared and was less influenced by unloading rate. The plastic energy, the ratio of reflected energy to incident energy, and the energy consumption per unit volume of rock increase during impact. The higher the preloaded axial pressure is, the greater the ratio of reflected energy to incident energy is, the smaller the ratio of transmitted energy to incident energy and the average energy dissipation per unit volume of rock are. When the unloading rate increased, the elastic energy generated by impact gradually increased, the plasticity gradually weakened, the ratio of transmitted energy to incident energy increased, and the ratio of reflection energy to incident energy decreased. |
url |
http://dx.doi.org/10.1155/2020/3806521 |
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