网络赌博网站平台-揭秘网络赌博_手机百家乐游戏_全讯网七星娱乐 (中国)·官方网站

今天是
今日新發(fā)布通知公告0條 | 上傳規(guī)范

爆炸科學(xué)與技術(shù)國家重點實驗室9月16日學(xué)術(shù)報告預(yù)告

發(fā)布日期:2013-09-13

報告題目:Smooth dynamics of oblique impact with friction
報告時間:2013年9月16日(星期一)下午2:30
報告地點:爆炸科學(xué)與技術(shù)國家重點實驗室計算與仿真中心(9號教學(xué)樓617房間)
報告人:Prof. W.J. Stronge(University of Cambridge)

報告摘要:
  Effects of friction during impact between hard bodies can be analyzed as a continuous function of the normal component of impulse p;  i.e. by considering the normal component of impulse as an independent variable.  The resulting expressions for changes in relative velocity at the contact point C, are obtained as a continuous function vC(p).  Any sliding during contact is opposed by Coulomb friction.  In this analysis the terminal normal component of impulse pf separates into an initial ‘period’ of compression or approach followed by a ‘period’ of expansion or restitution. For planar impact where initial slip is brought to rest before termination of impact, the tangential component of impulse separates into a ‘period’ of initial sliding and a subsequent ‘period’ of either reverse sliding or stick.
  For oblique planar impact in general, initial sliding can continue in the original direction or else slow and come to rest before separation.  After initial sliding is brought to rest, subsequently either the direction of sliding reverses or, with a sufficiently large coefficient of friction, the contact sticks.  Regions for each pattern of sliding are mapped as functions of the initial angle of incidence, the coefficient of friction and the inertia properties of the colliding bodies.  This mapping employs two non-dimensional parameters; (1) a normalized initial angle of incidence and (2) a parameter which depends on the unbalance of the configuration as well as the coefficient of friction. With these new impact parameters, terminal velocities and energy dissipation are calculated as functions of the normalized angle of incidence but independent of the impact speed.  Furthermore, specific relationships are obtained between the kinematic, kinetic and energetic coefficients of restitution. For frictional impact, it is shown that these definitions are equivalent only if the direction of sliding does not change.


報告題目:Impact Response of Polymer Metal Laminates
報告時間:2013年9月16日(星期一)下午4:00
報告地點:爆炸科學(xué)與技術(shù)國家重點實驗室計算與仿真中心(9號教學(xué)樓617房間)
報告人:Dr. Graham McShane(University of Cambridge)

報告摘要:
  Polymer coating is beginning to emerge as an efficient and economical solution for enhancing the blast and impact resistance of metallic plates. Coating materials such as polyurea can be sprayed onto existing structures, curing in-situ, offering a convenient retro-fit solution. However, the key mechanisms of energy dissipation for polymer-metal hybrid systems, and hence the optimal configurations, have not been clearly identified to date. The aim of this investigation is to identify the mechanisms by which a polymer coating is able to alter the perforation energy of a thin metallic plate. Although polyurea-steel is a practical material combination for many amour applications, this investigation considers first the use of polyethylene for the polymer layer. Polyethylene systems such as LDPE, HDPE and UHMWPE permit a wide range of microstructure and mechanical properties without significantly changing the density, allowing the relevant phenomena to be studied in a systematic and repeatable manner. Similarly, aluminum alloy is used for the metallic layer, permitting a range of mechanical properties to be achieved at fixed density via heat treatment. The findings from the extensive aluminum alloy-polyethylene study are finally compared with selected results from the more realistic steel-polyurea system, to assess their validity.
  The investigation is presented in two parts.  First, the perforation response of monolithic polymer plates is investigated. The deformation and failure modes are identified, and some key material characteristics governing energy absorption are determined. Secondly, polymer-metal bi-layer targets are considered comprising Al alloy 6082 (in both T6 and T4 tempers) for the metallic layer, and polyethylene sheets with a range of mechanical properties (LDPE, HDPE and UHMWPE) for the polymer layers. In both parts of the investigation, three contrasting nose shapes are considered: blunt, hemispherical and conical. Quasi-static indentation experiments are first performed in order to identify the phases of the indentation response, including both deformation and perforation, in the absence of significant inertia and strain rate effects. In order to investigate the dynamic effects, a gas gun apparatus is also used to apply impact loading. The influence of layer order (i.e. polymer or metal facing the indenter) and layer thicknesses are identified.
 

                                                       機(jī)電學(xué)院
2013年9月12日


太子百家乐的玩法技巧和规则 | 利都百家乐官网国际娱乐场开户注册 | 大发888博爱彩| 网络百家乐官网诈骗| 王牌百家乐的玩法技巧和规则 | 大化| 大发888游戏平台hanpa| 风水(24山定凶吉)最新整理| 鱼台县| 富二代百家乐的玩法技巧和规则 | 抚顺棋牌网| 免费百家乐官网的玩法技巧和规则 | 罗马百家乐官网的玩法技巧和规则| 大发888娱乐城客服lm0| 富二代百家乐官网的玩法技巧和规则 | 亚洲百家乐的玩法技巧和规则| 银河百家乐官网的玩法技巧和规则| 波克棋牌赢话费下载| 百家乐游戏玩法技巧| 百家乐官网打揽法| 赌博博彩论坛| 威尼斯人娱乐场首页| 百家乐之三姐妹赌博机| 百家乐官网娱乐平台网77scs| 太阳城娱乐城官网| 百家乐最佳注码法| 百家乐官网娱乐平台网77scs| 百家乐官网游戏策略| bet365 uo15| 女神百家乐的玩法技巧和规则| 澳门百家乐秘诀| 百家乐官网心术| 新丰县| 青鹏棋牌游戏大厅v3.0| 博九网百家乐现金网| 百家乐官网打水套利| 虚拟百家乐官网游戏下载| 和顺县| 皇博国际| 德州扑克胜率| 大发888游戏场下载|