采矿与安全工程学报
採礦與安全工程學報
채광여안전공정학보
JOURNAL OF MINING AND SAFETY ENGINEERING
2014年
4期
544-550
,共7页
康宝伟%王贻明%吴爱祥%夏红春%黎强
康寶偉%王貽明%吳愛祥%夏紅春%黎彊
강보위%왕이명%오애상%하홍춘%려강
水压支柱%采矿工艺%支护强度%初撑力%工作阻力%回归分析
水壓支柱%採礦工藝%支護彊度%初撐力%工作阻力%迴歸分析
수압지주%채광공예%지호강도%초탱력%공작조력%회귀분석
hydraulic props%mining technology%support intensity%setting load%sustaining resistance%regression analysis
对门山矿深部矿体属典型的缓倾斜薄层状难采矿体。用全面法开采,地压管理困难,作业安全不能保证;用房柱法开采,留存矿柱损失大。引进单体水压支柱护顶技术能够很好地解决上述问题。设计水压支柱护顶全面采矿法,其中采场尺寸为40 m×8 m×4 m;基于塌落拱理论推导工作面支护强度计算公式,可得支护强度26.42 kPa,进而确定了支护密度为0.275根/m2;应用FLAC3D软件计算比选,最终确定最佳支护网度为3 m×1.2 m;通过工业试验,监测和分析支柱初撑力、工作阻力、活柱下缩量、顶板沉降量等数据,证明单体水压支柱护顶技术很好地控制了采场地压,并通过回归分析确定了该采场水压支柱合理初撑力和工作阻力分别为128.36,150.18 kN。
對門山礦深部礦體屬典型的緩傾斜薄層狀難採礦體。用全麵法開採,地壓管理睏難,作業安全不能保證;用房柱法開採,留存礦柱損失大。引進單體水壓支柱護頂技術能夠很好地解決上述問題。設計水壓支柱護頂全麵採礦法,其中採場呎吋為40 m×8 m×4 m;基于塌落拱理論推導工作麵支護彊度計算公式,可得支護彊度26.42 kPa,進而確定瞭支護密度為0.275根/m2;應用FLAC3D軟件計算比選,最終確定最佳支護網度為3 m×1.2 m;通過工業試驗,鑑測和分析支柱初撐力、工作阻力、活柱下縮量、頂闆沉降量等數據,證明單體水壓支柱護頂技術很好地控製瞭採場地壓,併通過迴歸分析確定瞭該採場水壓支柱閤理初撐力和工作阻力分彆為128.36,150.18 kN。
대문산광심부광체속전형적완경사박층상난채광체。용전면법개채,지압관리곤난,작업안전불능보증;용방주법개채,류존광주손실대。인진단체수압지주호정기술능구흔호지해결상술문제。설계수압지주호정전면채광법,기중채장척촌위40 m×8 m×4 m;기우탑락공이론추도공작면지호강도계산공식,가득지호강도26.42 kPa,진이학정료지호밀도위0.275근/m2;응용FLAC3D연건계산비선,최종학정최가지호망도위3 m×1.2 m;통과공업시험,감측화분석지주초탱력、공작조력、활주하축량、정판침강량등수거,증명단체수압지주호정기술흔호지공제료채장지압,병통과회귀분석학정료해채장수압지주합리초탱력화공작조력분별위128.36,150.18 kN。
It is a typical gently inclined, thin and troublesome ore-body in the deep level of Bainiu-chang Mine. When using the overall mining method, it is difficult to manage the ground pressure and the operation safety can’t be ensured. Meanwhile, the loss of pillar left is huge when the room-pillar mining method is used. The roof supporting technology by using individual hydraulic props can be a good technology to solve the above problems. In this paper, the stope with its dimension of 40 m×8 m ×4 m was studied by overall mining method and roof supporting technology of hydraulic props. Using slumping arch theory the support intensity and support density were calculated, which are 26.42 kPa and 0.275 root/m 2, respectively. Meanwhile, the optimal proper space between hydraulic props is determined as 3 m×1.2 m by the calculation of FLAC3D . During the industrial test, by monitoring and analyzing the data such prop as setting load, sustaining resistance, descending amount of piston, and roof settle-ment, the roof supporting technology of hydraulic props can well control ground pressure of stope. Moreover, by regression analysis, the proper setting load and sustaining resistance of hydraulic props are 128.36 kN and 150.18 kN.