Volume 49 Issue 8
Aug.  2023
Turn off MathJax
Article Contents
LIU Bin, LI Xuefeng. Experimental study on the influence of cutting distance on the rock-breaking features of pick-shaped cutter[J]. Journal of Mine Automation,2023,49(8):156-164.  doi: 10.13272/j.issn.1671-251x.2022120046
Citation: LIU Bin, LI Xuefeng. Experimental study on the influence of cutting distance on the rock-breaking features of pick-shaped cutter[J]. Journal of Mine Automation,2023,49(8):156-164.  doi: 10.13272/j.issn.1671-251x.2022120046

Experimental study on the influence of cutting distance on the rock-breaking features of pick-shaped cutter

doi: 10.13272/j.issn.1671-251x.2022120046
  • Received Date: 2022-12-15
  • Rev Recd Date: 2023-07-20
  • Available Online: 2023-09-04
  • The pick-shaped cutter is the most widely used cutter type in mining machinery such as roadheader and coal mining machine. In the actual cutting process, the pick-shaped cutter mainly works under the multi-tooth coupling cutting condition. The cutting distance is an important parameter under this working condition. At present, research on the influence of cutting spacing on the rock-breaking process has not considered the weakening effect of interference cutting. A calculation method for cutting force during multi-tooth coupling cutting is proposed to solve the above problem. Full-size single-tooth cutting tests are carried out on limestone, red sandstone and two simulated rock samples, comparing and analyzing the rock-breaking processes of free cutting and interference cutting. The experiment collects cutting force data and conducts noise reduction processing and collects cutting debris to analyze the impact law of cutting spacing on cutting load, cutting debris coarseness, cutting energy consumption, and cutting grooves. The experimental results show the following points. ① The cutting force of the cutter increases with the increase of cutting distance and gradually approaches the free cutting state. Moreover, there is a good linear relationship between the cutting force ratio under interference cutting and free cutting conditions and the cutting distance/cutting depth. The correlation coefficients are greater than 0.95. The cutting load of the cutter under interference cutting conditions can be estimated using the free cutting load. The cutting force estimation equation under interference cutting conditions based on the existing peak cutting force model is obtained. ② The coarseness index (CI) and specific energy (SE) are used respectively to evaluate the particle size distribution and cutting energy consumption of the cutting experiment. As the cutting distance increases, CI shows a trend of first increasing and then decreasing. SE shows a trend of first decreasing and then increasing. ③ When the cutting distance is small, the interference between the cutting grooves is significant, the residual rock ridges between the cutting grooves are small, and the cutting load is small. However, due to the interference between the cutting grooves, more small debris is generated. It consumes more energy and increases energy consumption. As the cutting distance increases, the residual rock ridge increases, and the cutting force increases. However, due to the weakening effect of existing cutting grooves on the rock and less interference between cutting grooves, the proportion of large debris formed increases, and the cutting energy consumption decreases. As the cutting distance further increases, there is no interference between the cutting grooves. The weakening effect of the existing cutting grooves on the rock decreases. The cutting force increases, the coarseness decreases, and the cutting energy consumption increases. The cutting state gradually approaches free cutting.

     

  • loading
  • [1]
    WANG Xiang,WANG Qingfeng,LIANG Yunpei,et al. Dominant cutting parameters affecting the specific energy of selected sandstones when using conical picks and the development of empirical prediction models[J]. Rock Mechanics and Rock Engineering,2018,51(10):3111-3128. doi: 10.1007/s00603-018-1522-1
    [2]
    LIU Songyong,CUI Xinxia,DU Changlong,et al. Method to determine installing angle of conical point attack pick[J]. Journal of Central South University of Technology,2011,18(6):1994-2000. doi: 10.1007/s11771-011-0933-x
    [3]
    HEKIMOGLU O Z. Suggested methods for optimum rotative motion of point attack type drag tools in terms of skew angles[J]. International Journal of Mining Reclamation & Environment,2019(1):1-19.
    [4]
    BAO Ronghao,ZHANG Liangchi,YAO Qingyu,et al. Estimating the peak indentation force of the edge chipping of rocks using single point-attack pick[J]. Rock Mechanics and Rock Engineering,2011,44(3):339-347. doi: 10.1007/s00603-010-0133-2
    [5]
    BALCI C,TUMAC D. Investigation into the effects of different rocks on rock cuttability by a V-type disc cutter[J]. Tunnelling and Underground Space Technology,2012,30:183-193. doi: 10.1016/j.tust.2012.02.018
    [6]
    刘春生,宋杨. 不同楔入角的镐齿破岩截割力模型与仿真[J]. 黑龙江科技学院学报,2012,22(3):277-281,205.

    LIU Chunsheng,SONG Yang. Development and simulation of cutting force model on conical pick cutting rock at different wedge angles[J]. Journal of Heilongjiang Institute of Science and Technology,2012,22(3):277-281,205.
    [7]
    TUNCDEMIR H,BILGIN N,COPUR H,et al. Control of rock cutting efficiency by muck size[J]. International Journal of Rock Mechanics and Mining Sciences,2008,45(2):278-288. doi: 10.1016/j.ijrmms.2007.04.010
    [8]
    张倩倩,韩振南,张梦奇,等. 截齿破岩机制及截线间距优化试验研究[J]. 岩土力学,2016,37(8):2172-2179,2186.

    ZHANG Qianqian,HAN Zhennan,ZHANG Mengqi,et al. Experimental study of breakage mechanisms of rock induced by a pick and associated cutter spacing optimization[J]. Rock and Soil Mechanics,2016,37(8):2172-2179,2186.
    [9]
    梁运培,王想,王清峰. 截割厚度与截线距对镐型截齿破岩力学参数的影响[J]. 振动与冲击,2018,37(3):27-33.

    LIANG Yunpei,WANG Xiang,WANG Qingfeng. Effects of cut depth and cut spacing on tool forces acting on a conical pick in rock cutting[J]. Journal of Vibration and Shock,2018,37(3):27-33.
    [10]
    逯振国,李长江,王洪斌,等. 截线间距与截齿截深的比值对截齿截割力的影响[J]. 煤炭技术,2022,41(2):203-205.

    LU Zhenguo,LI Changjiang,WANG Hongbin,et al. Effect of ratio of intersecting distance to cutting depth of pick on cutting force of pick[J]. Coal Technology,2022,41(2):203-205.
    [11]
    EVANS I. A theory of the picks cutting force for point-attack picks[J]. International Journal of Mining Engineering,1984,2(1):63-71. doi: 10.1007/BF00880858
    [12]
    GOKTAN R M,GUNNES N. A semi-empirical approach to cutting force prediction for point-attack picks[J]. South African Institute of Mining & Metallurgy,2005,105(2):257-263.
    [13]
    王立平,蒋斌松,张翼,等. 基于Evans截割模型的镐型截齿峰值截割力的计算[J]. 煤炭学报,2016,41(9):2367-2372.

    WANG Liping,JIANG Binsong,ZHANG Yi,et al. Calculation of peak cutting force of conical picks based on Evans' cutting model[J]. Journal of China Coal Society,2016,41(9):2367-2372.
    [14]
    王立平,蒋斌松,张强. 镐型截齿截槽非对称的峰值截割力计算[J]. 煤炭学报,2016,41(11):2876-2882.

    WANG Liping,JIANG Binsong,ZHANG Qiang. Calculation of peak cutting force of conical picks under conditions of dissymmetrical slotting[J]. Journal of China Coal Society,2016,41(11):2876-2882.
    [15]
    NISHIMATSU Y. The mechanics of rock cutting[J]. International Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts,1972,9(2):261-270.
    [16]
    牛东民. 煤炭切削力学模型的研究[J]. 煤炭学报,1994,19(5):526-530.

    NIU Dongmin. Mechanical model of coal cutting[J]. Journal of China Coal Society,1994,19(5):526-530.
    [17]
    LI Xuefeng,WANG Shibo,GE Shirong,et al. A theoretical model for estimating the peak cutting force of conical picks[J]. Experimental Mechanics,2018,58(5):709-720. doi: 10.1007/s11340-017-0372-1
    [18]
    张强,张晓宇. 不同卸荷工况下采煤机滚筒截割性能研究[J]. 河南理工大学学报(自然科学版),2022,41(1):91-99,158.

    ZHANG Qiang,ZHANG Xiaoyu. Research on cutting performance of shearer drum under different coal unloading condition[J]. Journal of Henan Polytechnic University(Natural Science),2022,41(1):91-99,158.
    [19]
    麻晓红,于信伟,芦玉梅,等. 复杂煤层采煤机滚筒载荷的数值模拟[J]. 黑龙江科技学院学报,2012,22(1):42-46.

    MA Xiaohong,YU Xinwei,LU Yumei,et al. Numerical simulation of shearer drum loads on complex coal seam[J]. Journal of Heilongjiang Institute of Science and Technology,2012,22(1):42-46.
    [20]
    YASER D,MASOUD S,VAHID C. Empirical mode decomposition and fourier analysis of caspian sea level's time series[J]. Ocean Engineering,2022,252(15):1-10.
    [21]
    BILGIN N,DEMIRCIN M A,COPUR H,et al. Dominant rock properties affecting the performance of conical picks and the comparison of some experimental and theoretical results[J]. International Journal of Rock Mechanics & Mining Sciences,2006,43(1):139-156.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(15)  / Tables(5)

    Article Metrics

    Article views (147) PDF downloads(27) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return