Page 89 - 《爆炸与冲击》2026年第8期
P. 89
第 46 卷 丁肇银,等: 非金属内肋增强粉末式破门弹的侵彻效应与附带损伤特性 第 8 期
bzycj/2022-0477.
ZHANG T Y, XIAO C, CHEN P W, et al. Experimental study on the lethality of blasting warhead with PEEK shell [J].
Explosion and Shock Waves, 2023, 43(9): 091414. DOI: 10.11883/bzycj/2022-0477.
[4] YAO W J, WANG X M, LI W B. Effect of metal powder on blast power of the low collateral damage ammunition [J].
Advanced Materials Research, 2010, 97/98/99/100/101: 547–551. DOI: 10.4028/www.scientific.net/AMR.97-101.547.
[5] 李俊承, 樊壮卿, 梁斌, 等. 一种低附带弹药金属颗粒定向加载技术 [J]. 爆炸与冲击, 2018, 38(4): 869–875. DOI:
10.11883/bzycj-2016-0376.
LI J C, FAN Z Q, LIANG B, et al. Experimental study on directed loading metal particles of low collateral damage
ammunition [J]. Explosion and Shock Waves, 2018, 38(4): 869–875. DOI: 10.11883/bzycj-2016-0376.
[6] WOIRIN K, VERMEERSCH F, CHAFFOIS L, et al. Experimental and numerical investigations of new prototypes for low
collateral damages ammunitions [C]//29th International Symposium on Ballistics. Edinburgh: DEStech Publications Inc.,
2016: 1734–1744.
[7] SUN B F, BAI C H, ZHAO C H, et al. Dispersal characteristics dependence on mass ratio for explosively driven dry powder
particle [J]. Materials, 2023, 16(13): 4537. DOI: 10.3390/ma16134537.
[8] 刘俊, 姚文进, 郑宇, 等. 低附带毁伤弹药的炸药/钨粉质量比对钨粉抛撒特性的影响 [J]. 含能材料, 2015, 23(3): 258–264.
DOI: 10.11943/j.issn.1006-9941.2015.03.011.
LIU J, YAO W J, ZHENG Y, et al. Effect of explosive/tungsten powder mass ratio for LCD ammunition on dispersal
characteristics of tungsten powder [J]. Chinese Journal of Energetic Materials, 2015, 23(3): 258–264. DOI: 10.11943/j.issn.
1006-9941.2015.03.011.
[9] LOISEAU J, PONTALIER Q, MILNE A M, et al. Terminal velocity of liquids and granular materials dispersed by a high
explosive [J]. Shock Waves, 2018, 28(3): 473–487. DOI: 10.1007/s00193-018-0822-4.
[10] 季顺迎, 李鹏飞, 陈晓东. 冲击荷载下颗粒物质缓冲性能的试验研究 [J]. 物理学报, 2012, 61(18): 184703. DOI: 10.7498/
aps.61.184703.
JI S Y, LI P F, CHEN X D. Experiments on shock-absorbing capacity of granular matter under impact load [J]. Acta Physica
Sinica, 2012, 61(18): 184703. DOI: 10.7498/aps.61.184703.
[11] YAN Y, LI P F, JI S Y. Buffer capacity of granular matter to impact of spherical projectile based on discrete element
method [J]. Frontiers of Structural and Civil Engineering, 2013, 7(1): 50–54. DOI: 10.1007/s11709-013-0186-x.
[12] LI X H, YIN Y, ZHU X, et al. Performance of hollow and aluminum foam-filled multi-cell thin-walled aluminum alloy tubes
(6063-T5) under axial impact [J]. Structures, 2023, 47: 1803–1821. DOI: 10.1016/j.istruc.2022.12.019.
[13] TU H, YANG H W, XU P Z, et al. Protective performance of shear stiffening gel-modified foam against ballistic impact:
experimental and numerical study [J]. Defence Technology, 2024, 32: 510–520. DOI: 10.1016/j.dt.2023.10.001.
[14] DHARMASENA K, QUEHEILLALT D, WADLEY H, et al. Dynamic response of a multilayer prismatic structure to
impulsive loads incident from water [J]. International Journal of Impact Engineering, 2009, 36(4): 632–643. DOI: 10.1016/
j.ijimpeng.2008.06.002.
[15] JIN M Z, HOU X H, YIN G S, et al. Improving the crashworthiness of bio-inspired multi-cell thin-walled tubes under axial
loading: experimental, numerical, and theoretical studies [J]. Thin-Walled Structures, 2022, 177: 109415. DOI: 10.1016/j.tws.
2022.109415.
[16] ZHANG H, SUN W F. Mechanical behavior and crashworthiness assessment of corrugated inner rib reinforced tubular
structures [J]. Thin-Walled Structures, 2023, 189: 110894. DOI: 10.1016/j.tws.2023.110894.
[17] ACAR E, ALTIN M, GÜLER M A. Evaluation of various multi-cell design concepts for crashworthiness design of thin-
walled aluminum tubes [J]. Thin-Walled Structures, 2019, 142: 227–235. DOI: 10.1016/j.tws.2019.05.012.
[18] FISCHER C, HÄHNEL F, WOLF K, et al. Impact analysis of compression preloaded honeycomb sandwich structures [J].
Journal of Sandwich Structures & Materials, 2024, 26(3): 350–372. DOI: 10.1177/10996362231208745.
[19] ALTIN M, KILINÇKAYA Ü, ACAR E, et al. Investigation of combined effects of cross section, taper angle and cell structure
on crashworthiness of multi-cell thin-walled tubes [J]. International Journal of Crashworthiness, 2019, 24(2): 121–136. DOI:
10.1080/13588265.2017.1410338.
[20] CHEN S, TAN X J, HU J Q, et al. A novel gradient negative stiffness honeycomb for recoverable energy absorption [J].
Composites Part B: Engineering, 2021, 215: 108745. DOI: 10.1016/j.compositesb.2021.108745.
083301-16

