书签 分享 收藏 举报 版权申诉 / 26

类型外文翻译-长臂开采工作面回采巷道顶板支护的设计方法.doc

  • 文档编号:20221
  • 上传时间:2024-03-19
  • 格式:DOC
  • 页数:26
  • 大小:664.12KB
  • 配套讲稿:

    如PPT文件的首页显示word图标,表示该PPT已包含配套word讲稿。双击word图标可打开word文档。

    特殊限制:

    部分文档作品中含有的国旗、国徽等图片,仅作为作品整体效果示例展示,禁止商用。设计者仅对作品中独创性部分享有著作权。

    关 键  词:
    外文 翻译 长臂 开采 工作面 回采 巷道 顶板 支护 设计 方法
    资源描述:

    1、英文原文A method for the design of longwall gateroad roof supportW.Lawrence Geowork Engineering,Emerald,QLD,AustraliaAbstract:A longwall gateroad roof support design method for roadway development and panel extraction is demonstrated. It is a hybrid numerical and empirical method called gateroad roof su

    2、pport model(GRSM), where specification of roof support comes from charts or equations. GRSM defines suggested roof support densities by linking a rock-mass classification with an index of mining-induced stress, using a large empirical database of Bowen Basin mining experience. Inherent in the develo

    3、pment of GRSM is a rock-mass classification scheme applicable to coal measure strata. Coal mine roof rating(CMRR)is an established and robust coal industry standard, while the geological strength index(GSI)may also be used to determine rock-mass geomechanical properties.An elastic three-dimensional

    4、numerical model was established to calculate an index of mining induced stress, for both roadway development and longwall retreat. Equations to calculate stress index derived from the numerical modelling have been developed. An industry standard method of quantifying roof support is adopted as a bas

    5、e template(GRSUP).The statistical analyses indicated that an improved quantification of installed support can be gained by simple modifications to the standard formulation of GRSUP. The position of the mathematically determined stable/failed boundary in the design charts can be changed depending on

    6、design criteria and specified risk.Keywords: Coal mine;Roof control;Support Design1. IntroductionLongwall gateroad strata stability is essential to ensure uninterrupted production. In Central Queenslands Bowen Basin, immediate gateroad roof lithology varies from coal to weak interlaminated material,

    7、 to strong almost massive sandstone, with localised areas of weak fault affected strata. It is usual for roof conditions within any one mine to vary significantly. Typically, longwall mines in the Bowen Basin have specified gateroad roof support based on past practice. Modifications to gateroad supp

    8、ort are generally reactive, due to encountered difficult strata conditions, and less proactive. Current gateroad support design approaches have limitations, which have restricted their applicability and adoption as mine site design tools.A prototype for an improved gateroad support design methodolog

    9、y has been developed that is integrated and systematic, based on rock engineering principals, but requires engineering judgement and experience 1. There were several broad objectives for the design methodology. A consistent and unambiguous definition of strata conditions and behaviour was required.

    10、Gateroad roof support needed to be assessed and specified. The method had to provide design calculations and justification for compliance and statutory purposes, and could serve as a frame work for a mine strata management system. Mine site support designers must be able to readily use the method to

    11、 manage uncertainty and risk. The method must be able to be reviewed, modified and expanded.2. Current roof support design methods for longwall gateroadsNumerous roof support design methods have been proposed over the years, but none have gained widespread acceptance by the coal mining industry 2. T

    12、here are empirical databases, some proprietary, based on industry practice, which specify gateroad primary and secondary support densities, using a statistical approach 3,4. Analytical methods are not appropriate when rock-mass yield due to high mining induced stresses occurs, but may be applicable

    13、and adapted to low stress environments 5. The application of complex post-yield numerical modelling in the design process for excavation support is valid although contentious, and requires a more comprehensive justification and better industry understanding of its strength and limitations 6. The com

    14、plete mathematical representation of rock-mass properties and behaviour is a complex issue, which is still outside the capability of current numerical modelling code 6.Engineers and mathematicians do not have the current capability to fully define rock-mass geomechanical properties and their mathema

    15、tical representation. Elasticplastic numerical modelling is a useful tool if used appropriately. It is not exclusively correct or unique, or always superior to other available and accepted design techniques. These aspects have been recognised during recent collaborative Australian Coal Association R

    16、esearch Program research on longwall microseismics 7, where it was considered that current 3D numerical models lack sufficient validated constitutive relationships, and are forced to make compromises when dealing with complex rock-mass behaviour.Simplified elastic numerical methods 8,9 have merit and are certainly applicable for more massive sedimentary rock-masses 5. An assessment of their applicability to weaker, laminated clastic rock-masses is requ

    展开阅读全文
    提示  图海文库所有资源均是用户自行上传分享,仅供网友学习交流,未经上传用户书面授权,请勿作他用。
    关于本文
    本文标题:外文翻译-长臂开采工作面回采巷道顶板支护的设计方法.doc
    链接地址:https://www.thwenku.com/cad/20221.html
    关于我们 - 网站声明 - 网站地图 - 资源地图 - 友情链接 - 网站客服 - 联系我们

    网站客服QQ:2356858848

      客服联系电话:18503783681

    copyright@ 2008-2022 thwenku.com网站版权所有

    ICP备案:豫ICP备2022023751号-1