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Dynamic Behaviour of Multiphase Media under High-Strain-Rate Loading

Dynamic Behaviour of Multiphase Media under High-Strain-Rate Loading
高应变率载荷下多相介质的动态行为
批准号:
RGPIN-2014-06295
负责人:
Petel, Oren
金额:
$1.68万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2019
资助国家:
加拿大
项目状态:
已结题
起止时间:
2019-01-01 至 2020-12-31

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中文摘要
翻译
我提出的研究项目是研究多相材料在高应变率加载下的动态响应,重点是介观非均质性变化对块体材料响应的影响。该计划包括与两种多相材料有关的推力领域,特别是i)泡沫和ii)颗粒掺杂弹性体。研究方法将主要是实验,但计算研究将补充所有实验工作。该研究计划的长期目标概括为:*促进对冲击载荷下多相材料响应的基本理解。*调查和模拟多尺度物理效应,特别是中尺度变化对多相和多材料系统的整体材料行为的影响。*开发和应用与冲击和冲击波加载下的多相材料的高应变率测试有关的新的实验方法。*将新的制造技术和创新的优化方法应用于保护设备中的材料设计。*培训高应变率变形领域的下一代科学家和工程师。*拟议研究计划的实际目标主要是开发应用于保护设备设计的先进材料。这些材料与从运动设备和防弹到汽车和工业安全的一系列商业应用有关。研究计划的多学科性质和广泛的适用性确保了HQP的有效培训。所提议的主要领域的研究工作总结如下:**i)泡沫塑料因其吸收能量的能力而被广泛用于个人和结构保护应用。近年来,人们对新材料的开发越来越感兴趣,以提供更好的保护,使其免受各种潜在危险的影响,例如常见的与运动有关的影响或防止爆炸造成的冲击波。研究计划是开发各种性能分级的泡沫,这些泡沫经过优化,可以减少转移到受保护物体上的压力水平。这将通过改变样品的厚度和密度(孔隙率控制)来改变实际的泡沫材料来实现。与单独的密度分级相比,用多种材料生产泡沫在材料属性方面提供了更大的参数可变性。泡沫将使用添加剂制造技术生产,并将在准静态和高应变率加载下进行测试。研究的重点是材料分级方法在应力衰减方面的有效性。**ii)掺入硬质夹杂物的环氧树脂已被用作高强度间隙元件。在环氧树脂或弹性体中添加体积分数在5-30%范围内的夹杂物,在准静态试验中可显著增强介质的强度。实验证据表明,聚合颗粒悬浮液对防弹织物具有比其他间隙添加剂更好的防弹性能,如剪切增稠液。掺杂弹性体的动态行为和破坏行为将在不同的应变率下进行研究,以确定夹杂物体积分数的影响。这项工作的实际应用涉及在聚合基质中加入陶瓷颗粒的混合防护织物的设计,这种织物可以提供出色的防弹、刺伤和一般撕裂保护。
英文摘要
My proposed research program investigates the dynamic response of multiphase materials under high-strain-rate loading, focusing on the role of mesoscopic variations in heterogeneity on the response of the bulk materials. This program is comprised of thrust areas pertaining to two types of multiphase materials, specifically i) foams and ii) particle-doped elastomers. The research approach will be primarily experimental, however computational investigations will complement all experimental work. The long-term objectives of the research program are summarized as: * advancing the fundamental understanding of multiphase material response under impulsive loading.* investigating and modeling multi-scale physical effects, particularly the effect of mesoscale variations on the bulk material behaviour of multiphase and multi-material systems.* develop and apply new experimental methodologies related to high-strain-rate testing of multiphase materials under impact and blast wave loading.* apply new manufacturing technologies and innovative optimization approaches to the design of materials with applications in protective equipment.* train the next generation of scientists and engineers in the area of high-strain-rate deformation.*The practical objectives of the proposed research program pertain primarily to the development of advanced materials applied to the design of protective equipment. These materials are relevant to a range of commercial applications from sporting equipment and ballistic protection to automotive and industrial safety. The multidisciplinary nature of the research plan and broad applicability ensures effective training of HQP. A summary of research efforts in the proposed thrust areas is as follows:**i) Foams are used extensively in personal and structural protective applications due to their energy absorption capabilities. In recent years, there has been an increased interest in the development of new materials to provide superior protection from a wide range of potential dangers, such as common sport-related impacts or protection from blast waves due to an explosion. The research plan is to develop a variety of property-graded foams that are optimized to reduce the levels of stress transferred to a protected body. This will be accomplished by varying the actual foam materials through the thickness of the samples as well as their density (porosity control). Producing a foam from several materials offers greater parametric variability in terms of material properties than density grading alone. The foams will be produced using additive manufacturing technologies and will be tested under quasi-static and high-strain-rate loading. The investigation focuses on the effectiveness of material grading approaches with regard to stress attenuation.**ii) Epoxies doped with hard inclusions have found applications as high-strength interstitial components. The addition of inclusions to either epoxies or elastomers at volume fractions in the range of 5-30% has been shown to result in significant strengthening of the medium in quasi-static testing. The experimental evidence suggests that a polymerized particle suspension should provide superior ballistic performance over other interstitial additives to ballistic fabrics, such as shear thickening fluids. The dynamic and failure behaviour of doped elastomers, the timescale of which has been shown to be strongly inclusion-size dependent, will be investigated at various strain rates to determine the influenced of inclusion volume fraction. The practical application of this work relates to the design of hybrid protective fabrics incorporating ceramic particles in a polymerized matrix that can provide superior ballistic, stab, and general laceration protection.
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Dynamic Behaviour of Polymer-Matrix Materials
  • 批准号:
    RGPIN-2020-07178
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.97万
  • 财政年份:
    2022
  • 负责人:
    Petel, Oren
  • 依托单位:
Dynamic Behaviour of Polymer-Matrix Materials
  • 批准号:
    RGPIN-2020-07178
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.97万
  • 财政年份:
    2021
  • 负责人:
    Petel, Oren
  • 依托单位:
Dynamic Behaviour of Polymer-Matrix Materials
  • 批准号:
    RGPIN-2020-07178
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.97万
  • 财政年份:
    2020
  • 负责人:
    Petel, Oren
  • 依托单位:
Dynamic Behaviour of Multiphase Media under High-Strain-Rate Loading
  • 批准号:
    RGPIN-2014-06295
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $1.68万
  • 财政年份:
    2018
  • 负责人:
    Petel, Oren
  • 依托单位:
海外基金