<span id="fpn9h"><noframes id="fpn9h"><span id="fpn9h"></span>
<span id="fpn9h"><noframes id="fpn9h">
<th id="fpn9h"></th>
<strike id="fpn9h"><noframes id="fpn9h"><strike id="fpn9h"></strike>
<th id="fpn9h"><noframes id="fpn9h">
<span id="fpn9h"><video id="fpn9h"></video></span>
<ruby id="fpn9h"></ruby>
<strike id="fpn9h"><noframes id="fpn9h"><span id="fpn9h"></span>
  • 《工程索引》(EI)刊源期刊
  • 中文核心期刊
  • 中國科技論文統計源期刊
  • 中國科學引文數據庫來源期刊

留言板

尊敬的讀者、作者、審稿人, 關于本刊的投稿、審稿、編輯和出版的任何問題, 您可以本頁添加留言。我們將盡快給您答復。謝謝您的支持!

姓名
郵箱
手機號碼
標題
留言內容
驗證碼

條形藥包爆炸全場應變以及裂紋動態斷裂特性研究

左進京 楊仁樹 汪文良 龔敏 趙勇

左進京, 楊仁樹, 汪文良, 龔敏, 趙勇. 條形藥包爆炸全場應變以及裂紋動態斷裂特性研究[J]. 工程科學學報, 2022, 44(8): 1306-1314. doi: 10.13374/j.issn2095-9389.2021.10.19.003
引用本文: 左進京, 楊仁樹, 汪文良, 龔敏, 趙勇. 條形藥包爆炸全場應變以及裂紋動態斷裂特性研究[J]. 工程科學學報, 2022, 44(8): 1306-1314. doi: 10.13374/j.issn2095-9389.2021.10.19.003
ZUO Jin-jing, YANG Ren-shu, WANG Wen-liang, GONG Min, ZHAO Yong. Explosive full-field strain and crack dynamic fracture characteristics of a linear shaped charge[J]. Chinese Journal of Engineering, 2022, 44(8): 1306-1314. doi: 10.13374/j.issn2095-9389.2021.10.19.003
Citation: ZUO Jin-jing, YANG Ren-shu, WANG Wen-liang, GONG Min, ZHAO Yong. Explosive full-field strain and crack dynamic fracture characteristics of a linear shaped charge[J]. Chinese Journal of Engineering, 2022, 44(8): 1306-1314. doi: 10.13374/j.issn2095-9389.2021.10.19.003

條形藥包爆炸全場應變以及裂紋動態斷裂特性研究

doi: 10.13374/j.issn2095-9389.2021.10.19.003
基金項目: 中國博士后科學基金資助項目(2020TQ0032);國家自然科學基金資助項目(51934001);中央高校基本科研業務費專項資金資助項目(FRF-TP-20-037A1, FRF-IDRY-20-019)
詳細信息
    通訊作者:

    E-mail: cumtbyrsz@163.com

  • 中圖分類號: TU452

Explosive full-field strain and crack dynamic fracture characteristics of a linear shaped charge

More Information
  • 摘要: 為了探究不同起爆位置下條形藥包全場應變以及裂紋動態斷裂特性,采用爆炸荷載動態焦散線實驗系統和數字圖像相關方法(DIC),開展了爆破模型實驗研究。研究結果表明:條形藥包一端起爆時,起爆點處翼裂紋擴展長度最小,隨著炸藥爆轟的傳播,翼裂紋擴展長度增長;中心起爆時,中心位置翼裂紋擴展長度小于兩端位置翼裂紋擴展長度,一端起爆時非起爆端翼裂紋擴展長度最長。無論中心起爆或一端起爆,條形藥包中心區域翼裂紋擴展主要為Ⅰ型裂紋,并且中心翼裂紋起裂韌度最大,端部翼裂紋為以Ⅱ型為主的Ⅰ?Ⅱ型復合裂紋。一端起爆時,拉壓應變作用范圍沿炸藥傳爆方向傳遞,且非起爆端拉壓應變作用區域大于起爆端,壓應變最大值為距起爆點約0.67 ~ 0.83倍的裝藥長度。中心起爆時,拉壓應變的作用過程沿起爆中心向兩端呈對稱形式傳播,中心點位置應變最大。兩種起爆方式下都出現端部壓應力集中現象。

     

  • 圖  1  透射式焦散線試驗系統光路示意圖

    Figure  1.  Light path of the transmissive caustics experimental system

    圖  2  模型加工示意(單位:mm). (a) 中心起爆; (b) 一端起爆

    Figure  2.  Schematic of the model processing (unit: mm): (a) center-initiation; (b) end-initiation

    圖  3  實驗結果. (a) 中心起爆; (b) 一端起爆

    Figure  3.  Test results: (a) center-initiation; (b) end-initiation

    圖  4  焦散斑系列圖. (a) 中心起爆; (b) 一端起爆

    Figure  4.  Images of a series of dynamical caustics: (a) center-initiation; (b) end-initiation

    圖  5  翼裂紋位移?速度隨時間的變化曲線. (a) 中心起爆; (b) 一端起爆

    Figure  5.  Curves of the pre-crack displacement–velocity variation with time: (a) center-initiation; (b) end-initiation

    圖  6  翼裂紋應力強度因子隨時間的變化曲線. (a) 中心起爆; (b) 一端起爆

    Figure  6.  Curves of the pre-crack dynamic stress intensity factor variation with time:(a) center-initiation; (b) end-initiation

    圖  7  DIC基本原理示意圖

    Figure  7.  Sketch maps of the DIC fundamental principle before and after the speckle deformation

    圖  8  超高速數字圖像相關實驗系統

    Figure  8.  Ultrahigh speed digital image correlation system

    圖  9  模型加工示意(單位:mm). (a) 中心起爆; (b) 一端起爆

    Figure  9.  Schematic of the model processing (unit: mm): (a) center-initiation; (b) end-initiation

    圖  10  全場應變演化過程. (a) 中心起爆; (b) 一端起爆

    Figure  10.  Full-field strain evolutionary process of the specimens: (a) center-initiation; (b) end-initiation

    圖  11  測點位置示意圖. (a) 中心起爆; (b) 一端起爆

    Figure  11.  Sketch of the gage positions: (a) center-initiation; (b) end-initiation

    圖  12  測點處應變時程曲線. (a) 中心起爆; (b) 一端起爆

    Figure  12.  Curves of strain vs time:(a) center-initiation; (b) end-initiation

    圖  13  測點應變峰值曲線. (a) 中心起爆; (b) 一端起爆

    Figure  13.  Peak strain curve of the measuring points: (a) center-initiation; (b) end-initiation

    <span id="fpn9h"><noframes id="fpn9h"><span id="fpn9h"></span>
    <span id="fpn9h"><noframes id="fpn9h">
    <th id="fpn9h"></th>
    <strike id="fpn9h"><noframes id="fpn9h"><strike id="fpn9h"></strike>
    <th id="fpn9h"><noframes id="fpn9h">
    <span id="fpn9h"><video id="fpn9h"></video></span>
    <ruby id="fpn9h"></ruby>
    <strike id="fpn9h"><noframes id="fpn9h"><span id="fpn9h"></span>
    www.77susu.com
  • [1] Liu L Q, Katsabanis P D. A numerical study of the effects of accurate timing on rock fragmentation. Int J Rock Mech Min Sci, 1997, 34(5): 817 doi: 10.1016/S1365-1609(96)00067-8
    [2] Starfield A M, Pugliese J M. Compression waves generated in rock by cylindrical explosive charges: A comparison between a computer model and field measurements. Int J Rock Mech Min Sci Geomech Abstr, 1968, 5(1): 65 doi: 10.1016/0148-9062(68)90023-5
    [3] Blair D P. Blast vibration dependence on charge length, velocity of detonation and layered media. Int J Rock Mech Min Sci, 2014, 65: 29 doi: 10.1016/j.ijrmms.2013.11.007
    [4] Gong M, Li J H. A research on stress field of column and strip-shaped charge in different detonated points. J Univ Sci Technol Beijing, 2002, 24(3): 248 doi: 10.3321/j.issn:1001-053X.2002.03.005

    龔敏, 黎劍華. 延長藥包不同位置起爆時的應力場. 北京科技大學學報, 2002, 24(3):248 doi: 10.3321/j.issn:1001-053X.2002.03.005
    [5] Gong M, Wang D S, Li J H. Application of holographic interferometry to study vertical displacement field in linear charge. Explos Shock Waves, 2005, 25(3): 227 doi: 10.3321/j.issn:1001-1455.2005.03.006

    龔敏, 王德勝, 黎劍華. 全息干涉法在條形藥包離面位移場研究中的應用. 爆炸與沖擊, 2005, 25(3):227 doi: 10.3321/j.issn:1001-1455.2005.03.006
    [6] Xiang W F, Shu D Q, Zhu C B. Analysis of blast stress field of linear explosive charge based on starfield superprosition method. Explos Shock Waves, 2004, 24(5): 437 doi: 10.3321/j.issn:1001-1455.2004.05.010

    向文飛, 舒大強, 朱傳兵. 基于Starfield迭加法的條形藥包爆炸應力場分析. 爆炸與沖擊, 2004, 24(5):437 doi: 10.3321/j.issn:1001-1455.2004.05.010
    [7] Xiang W F, Shu D Q, Zhu C Y. Impacts of detonating mode on blast stress field of linear explosive charge. Chin J Rock Mech Eng, 2005, 24(9): 1624 doi: 10.3321/j.issn:1000-6915.2005.09.026

    向文飛, 舒大強, 朱傳云. 起爆方式對條形藥包爆炸應力場的影響分析. 巖石力學與工程學報, 2005, 24(9):1624 doi: 10.3321/j.issn:1000-6915.2005.09.026
    [8] Lu W B, Zhu C Y, Lai S X, et al. Simulation of cavity expansion with strip-shaped explosive charge. Explos Shock Waves, 1996, 16(2): 171 doi: 10.3321/j.issn:1001-1455.1996.02.001

    盧文波, 朱傳云, 賴世驤, 等. 條形藥包的空腔發展過程模擬. 爆炸與沖擊, 1996, 16(2):171 doi: 10.3321/j.issn:1001-1455.1996.02.001
    [9] Yang N H. The blasting effect at the end of a linear charge. Explos Shock Waves, 1997, 17(3): 214

    楊年華. 條形藥包端部效應的研究. 爆炸與沖擊, 1997, 17(3):214
    [10] Chen S H, Hu S W, Chu S F. Study on the blasting vibration effect influenced by millisecond time and cylindrical charging characteristics. Chin J Rock Mech Eng, 2017, 36(Suppl 2): 3974

    陳士海, 胡帥偉, 初少鳳. 微差時間及柱狀裝藥特征對爆破振動效應影響研究. 巖石力學與工程學報, 2017, 36(增刊2): 3974
    [11] Jiang X Y, Yan S L, Liu W, et al. Experimental analysis of the law of explosive wave of cylindrical charge. J Chongqing Univ, 2015, 38(4): 121 doi: 10.11835/j.issn.1000-582X.2015.04.017

    江向陽, 顏事龍, 劉偉, 等. 柱狀藥包爆炸波傳播規律的試驗分析. 重慶大學學報, 2015, 38(4):121 doi: 10.11835/j.issn.1000-582X.2015.04.017
    [12] Fu H X. Analysis of in situ measurement results of tunnel's stress field induced by linear charge explosion. Rock Soil Mech, 2009, 30(2): 483 doi: 10.3969/j.issn.1000-7598.2009.02.034

    傅洪賢. 條形藥包在隧道爆破中產生的應力場的實測分析. 巖土力學, 2009, 30(2):483 doi: 10.3969/j.issn.1000-7598.2009.02.034
    [13] Wei L Y, Li H C, Liu Y Z. Lateral influence rules on explosion-compacted loess embankment by linear explosive bars. Explos Shock Waves, 2018, 38(1): 233 doi: 10.11883/bzycj-2016-0298

    魏連雨, 李海超, 劉艷竹. 條形藥包爆炸擠密黃土路堤橫向影響規律. 爆炸與沖擊, 2018, 38(1):233 doi: 10.11883/bzycj-2016-0298
    [14] Qu S J, Liu J F. Numerical analysis of joint angle effect on cracking with presplit blasting. Rock Soil Mech, 2015, 36(1): 189

    璩世杰, 劉際飛. 節理角度對預裂爆破成縫效果的影響研究. 巖土力學, 2015, 36(1):189
    [15] Zhang F P, Peng J Y, Fan G H, et al. Mechanisms of blasting-induced rock fractures under different static stress and joint properties conditions. Rock Soil Mech, 2016, 37(7): 1839

    張鳳鵬, 彭建宇, 范光華, 等. 不同靜應力和節理條件下巖體爆破破巖機制研究. 巖土力學, 2016, 37(7):1839
    [16] Yang R S, Zuo J J, Yue Z W, et al. Experimental study on opposite cracks propagation behavior under blast loading. J China Coal Soc, 2017, 42(5): 1093

    楊仁樹, 左進京, 岳中文, 等. 爆炸載荷作用下相向裂紋擴展行為的實驗研究. 煤炭學報, 2017, 42(5):1093
    [17] Kalthoff J F. The Shadow Optical Method of Caustics. Vienna: Springer, 1986
    [18] Chu T C, Ranson W F, Sutton M A. Applications of digital-image-correlation techniques to experimental mechanics. Exp Mech, 1985, 25(3): 232 doi: 10.1007/BF02325092
    [19] Sabaté N, Vogel D, Gollhardt A, et al. Digital image correlation of nanoscale deformation fields for local stress measurement in thin films. Nanotechnology, 2006, 17(20): 5264 doi: 10.1088/0957-4484/17/20/037
  • 加載中
圖(13)
計量
  • 文章訪問數:  420
  • HTML全文瀏覽量:  160
  • PDF下載量:  52
  • 被引次數: 0
出版歷程
  • 收稿日期:  2021-10-19
  • 網絡出版日期:  2022-03-22
  • 刊出日期:  2022-07-06

目錄

    /

    返回文章
    返回