|本期目录/Table of Contents|

[1]孙可明,辛利伟,张树翠,等.超临界CO2气爆致裂规律实验研究[J].中国安全生产科学技术,2016,12(7):27-31.[doi:10.11731/j.issn.1673-193x.2016.07.005]
 SUN Keming,XIN Liwei,ZHANG Shucui,et al.Experimental study on laws of crack caused by gas burst of supercritical carbon dioxide[J].JOURNAL OF SAFETY SCIENCE AND TECHNOLOGY,2016,12(7):27-31.[doi:10.11731/j.issn.1673-193x.2016.07.005]
点击复制

超临界CO2气爆致裂规律实验研究
分享到:

《中国安全生产科学技术》[ISSN:1673-193X/CN:11-5335/TB]

卷:
12
期数:
2016年7期
页码:
27-31
栏目:
学术论著
出版日期:
2016-07-30

文章信息/Info

Title:
Experimental study on laws of crack caused by gas burst of supercritical carbon dioxide
作者:
孙可明辛利伟张树翠李天舒吴迪
(辽宁工程技术大学 力学与工程学院,辽宁 阜新 123000)
Author(s):
SUN KemingXIN LiweiZHANG ShucuiLI TianshuWU Di
SUN Keming,XIN Liwei,ZHANG Shucui,LI Tianshu,WU Di
关键词:
超临界CO2气爆技术渗透率动力特性物理模拟
Keywords:
supercritical carbon dioxide gas burst technology permeability dynamic characteristic physical simulation
分类号:
X936
DOI:
10.11731/j.issn.1673-193x.2016.07.005
文献标志码:
A
摘要:
针对我国低渗透性煤层增透困难的现状,研发了可控超临界二氧化碳气爆发生装 置,对不同强度的模拟煤体进行了不同温压条件下的超临界CO2气爆实验,结合孔内窥 镜观测和外观测量手段,对爆后宏观裂隙数目和长度等爆破响应信息进行统计分析。结 果表明:气爆裂纹起裂所需的最小爆破压力与介质的抗拉强度呈指数式增长的关系,主 要是固体材料在动力载荷作用下强度增大引起的;超临界二氧化碳气爆后产生宏观裂隙 的数目和累计长度与爆破压力满足Logistic函数关系,是裂隙面积超线性增加所消耗能 量也超线性增加的结果;超临界CO2对温压条件敏感,爆破有降温作用,是良好的物理 爆破原料,使用超临界二氧化碳作为爆破原料的爆破效果优于空气爆破效果。
Abstract:
To change the current situation that it is difficult to increase the permeability of low permeability coal seam in China, a generating device on controllable gas burst of supercritical carbon dioxide was developed, and the gas burst experiments of supercritical carbon dioxide under different pressure and temperature conditions were conducted on simulated coal mass with different intensity. Combined the hole endoscope observation with appearance measurement means, the statistical analysis was carried out on the burst response information, such as macroscopic crack number and length after the burst. The results showed that the required minimum burst pressure for gas burst crack initiation presents an exponential growth with the tensile strength of media, which is mainly caused by the strength increase of solid material under the action of dynamic load. The number and cumulative length of macroscopic crack after gas burst of supercritical carbon dioxide meet the Logistic functional relationship with burst pressure, which is caused by the ultra-linear increase of energy consumption with the ultra-linear increase of crack area. Supercritical carbon dioxide is sensitive to temperature and pressure and the burst has a cooling effect, so it is a good physical burst material, and the effects of burst using supercritical carbon dioxide as burst material is better than that of air.

参考文献/References:

[1]胡千庭,蒋时才,苏文叔.我国煤矿瓦斯灾害防治对策[J].矿业安全与环 保,2000,27(1):1-4. HU Qianting, JIANG Shicai, SU Wenshu. Countermeasures for prevention and control of coal and gas outburst hazard in China's coal mines[J].]Mining Safety & Environmental Protection, 2000,27(1):1-4.
[2]钱鸣高,缪协兴,许家林.资源与环境协调(绿色)开采[J].煤炭学报,2007,32 (1):1-7. QIAN Minggao, MIAO Xiexing, XU Jialin. Green mining of coal resources harmonizing with environment [J]. Journal of China Coal Society, 2007,32 (1):1-7.
[3]周军民.水力压裂增透技术在突出煤层中的试验[J].中国煤层气,2009,6(3):34 -39. ZHOU Junmin. Trials on hydrofracturing technology for enhancement of outburst coal seam[J].China Coalbed Methane, 2009,6(3):34-39.
[4]艾灿标,贾献宗,吕涛,等.新义煤矿水力压裂试验与效果分析[J].煤矿开 采,2010,15(4):109-117. AI Canbiao, JIA Xianzong, LV Tao, et al. Test of hydraulic fracture and its effect analysis in Xinyi colliery[J]. Coalmining Technology, 2010,15(4): 109-117.
[5]王念红,任培良.单一低透气性煤层水力压裂技术增透效果考察分析[J].煤矿安 全,2011,42(2):109-112. WANG Nianhong,REN Peiliang. A single low permeability coal seam hydraulic fracturing technology antireflection effect investigation and analysis [J].Safety in Coal Mines, 2011,42(2):109-112.
[6]付江伟.井下水力压裂煤层应力场与瓦斯流场模拟研究[D].北京:中国矿业大学 ,2013.
[7]唐巨鹏,杨森林,李利萍.多重水力割缝下煤层气储层卸压数值模拟[J].水资源与 水工程学报.2012,23(2):33-36. TANG Jupeng,YANG Senlin, LI Li-ping. Numerical simulation for methane store pressure release in coalbed under mult-hydraulic cutting seam [J].Journal of Water Resources & Water Engineering, 2012,23(2):33-36.
[8]谢和平,高峰,周宏伟,等.煤与瓦斯共采中煤层增透率理论与模型研究[J].煤炭 学报,2013,38(7):1101-1108. XIE Heping, GAO Feng, ZHOU Hongwei, et al. On theoretical and modeling approach to mining-enhanced permeability for simultaneous exploitation of coal and gas[J]. Journal of China Coal Society, 2013,38(7):1101-1108.
[9]陈洋.深孔控制预裂爆破增透试验研究[J].矿业安全与环境,2014,41(5):29- 32. CHEN Yang. Test study on permeability Enhancement by deep-hole controlled pre-splitting blasting[J].Mining Safety & Environmental Protection, 2014,41(5):29-32.
[10]周建伟,王晓蕾,李云.深孔控制CO2预裂爆破在煤巷掘进消突中的应用[J].煤炭 技术,2014,33(9):30-32. ZHOU Jianwei, WANG Xiaolei, LI Yun. Application for CO2 parameter design of deep-hole controlling presplitting blasting in coalroad driving[J]. Coal Technology, 2014,33(9):30-32.
[11]赵阳升,杨栋,胡耀青,等.低渗透煤储层煤层气开采有效技术途径的研究[J].煤 炭学报, 2001,26(5)455-458. ZHAO Yangsheng,YANG Dong,HU Yaoqing, et al. Study on the effect technology way for mining methane in low permeability coal seam[J].Journal of China Coal Society, 2001,26(5)455-458.
[12]徐颖,张笑天.气体爆破疏通煤仓堵塞技术[J]. 煤炭科学技术,2001,29(9):9- 11. XU Ying, ZHANG Xiaotian. Air blasting technology applied to solve coal bunker jam[J].Coal Science and Technology, 2001,29(9):9-11.
[13]徐颖.高压气体爆破采煤技术的发展及其在我国的应用[J].爆破,1998,15 (1):67-82. XU Ying. Development of high-pressure gas blasting mining technology and its application in China[J]. Blasting, 1998,15(1):67-82.
[14]徐颖,程玉生.高压气体爆破破煤机理模型试验研究[J].煤矿爆破,1996(3):1- 4. XU Ying, CHENG Yusheng. Experimental study on the mechanism model of coal blasting high-pressure gas break[J]. Coal Mine Blasting,1996(3):1-4.
[15]曾范永.气爆技术提高煤体渗透性规律的研究[D].阜新:辽宁工程技术大 学,2011.
[16]史宁.高压空气冲击煤体增透技术实验研究[D].阜新:辽宁工程技术大 学,2010.
[17]李守国.高压空气爆破煤层增透关键技术与装备研发[J].煤炭科学技 术,2015,43(2):92-95. LI Shouguo. Key technology and equipment research and development of improving coal seam permeability by high pressure air blasting[J]. Coal Science and Technology, 2015,43(2):92-95.
[18]孙可明,李云.低渗煤层预裂爆破裂纹扩展数值模拟研究[J].爆破, 2014,31 (1):31-37. SUN Keming, Li Yun. Numerical simulation on crack propagation law of pre- splitting explosion in lowly permeable coal seam[J].Blasting, 2014,31 (1):31-37.
[19]李守国.高压空气爆破致裂煤体数值模拟[J].煤矿安全,2013,44(12):163-165. LI Shouguo. Numerical simulation of coal fracture caused by high-pressure air blasting[J]. Safety in Coal Mines, 2013,44(12):163-165.
[20]陈静.高压空气冲击煤体气体压力分布的模拟研究[D].阜新:辽宁工程技术大 学,2009.

相似文献/References:

备注/Memo

备注/Memo:
国家自然科学基金项目(51574137);国家自然科学基金青年科学基金项目 (51504122)
更新日期/Last Update: 2016-08-04