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Partnership for Advancing Technologies in Housing: Microcellular Polymers Processing for Lightweight and Energy Efficient Advanced Panel Systems

Partnership for Advancing Technologies in Housing: Microcellular Polymers Processing for Lightweight and Energy Efficient Advanced Panel Systems
住房领域先进技术合作伙伴关系:用于轻质、节能先进面板系统的微孔聚合物加工
批准号:
0122055
负责人:
Vipin Kumar
金额:
$15.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2001
资助国家:
美国
项目状态:
已结题
起止时间:
2001-09-15 至 2004-08-31

项目摘要

项目成果

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中文摘要
翻译
路径:用于轻质和节能先进面板系统的微孔聚合物加工摘要该奖项支持PATH研究项目,以探索用于承重应用的微孔聚合物厚板的制造,例如用于房屋建筑的先进面板系统。微孔塑料是指具有大量非常小的气泡的闭孔热塑性泡沫。通常,泡孔的直径为10微米量级,并且每立方厘米(cm 3)的泡沫具有108个或更多个泡孔。微孔聚合物为房屋建筑应用提供了许多独特的优势。例如,微孔结构可以降低密度,导致板的重量降低。较轻的面板更具成本效益,并在房屋建造过程中提高安全性。此外,降低材料密度可以通过仅使用真正需要的材料来保护自然资源。此外,微孔结构可以降低热导率,从而提高板系统的能量效率。基本的固态微孔工艺是两阶段间歇工艺。在第一阶段中,将聚合物置于具有高压和非反应气体的压力容器中。该步骤通常在室温下进行。随着时间的推移,气体扩散到聚合物中,并在整个聚合物样品中达到均匀的浓度。当从压力容器中取出试样并使其达到大气压时,由于溶解在聚合物中的过量气体,产生了“过饱和”试样,该试样在化学上不稳定。在第二阶段,将试样加热到所谓的发泡温度。该步骤通常在具有温度控制的加热浴中进行。溶解的气体降低了聚合物的玻璃化转变温度,并且发泡温度仅需要高于气体-聚合物体系的玻璃化转变温度以使气泡成核和生长。由于聚合物仍处于固态,因此将由此产生的泡沫称为“固态泡沫”以将它们与在挤出机中由聚合物熔体产生的常规泡沫区分开。这项资助的研究将探索使用多种聚合物生产厚微孔样品的可行性,包括PVC,一种当今建筑材料中使用的常见塑料; PET,一种被认为与PVC具有成本竞争力的聚合物;以及一些最近推出的高强度聚合物,如PEEK和PEI。将探讨若干气体作为物理发泡剂。这些气体包括二氧化碳和氮气。这项研究将通过增加承重应用的新维度来推进新兴微孔聚合物技术的最新发展。它还将为本科生和研究生提供一个在发现和科学理解的环境中学习和成长的绝佳机会。
英文摘要
PATH: Microcellular Polymers Processing for Lightweight and Energy Efficient Advanced Panel SystemsAbstractThis award supports a PATH research project to explore the manufacture of thick sheets of microcellular polymers for load-bearing applications such as advanced panel systems for house construction. Microcellular Plastics refer to closed-cell thermoplastic foams with a very large number of very small bubbles. Typically, the cells are of order of 10 micrometers in diameter, and there are 108 or more cells per cubic centimeter (cm3) of the foam. The microcellular polymers offer a number of unique advantages for house construction applications. For example, the microcellular structure can reduce the density, leading to a reduction in the weight of the panels. Lighter panels are more cost effective and promote safety during house construction. In addition, reducing material density leads to conservation of natural resources by only using what is truly needed. Further, the microcellular structure can reduce the thermal conductivity and thus improve the energy efficiency of the panel systems. The basic solid-state microcellular process is a two-stage batch process. In the first stage, the polymer is placed in a pressure vessel with a high-pressure and non-reacting gas. This step is usually conducted at room temperature. Over time, the gas diffuses into the polymer, and attains a uniform concentration throughout the polymer specimen. When the specimen is removed from the pressure vessel and brought to the atmospheric pressure, a "supersaturated" specimen that is thermodynamically unstable due to the excessive gas dissolved into the polymer is produced. In the second stage, the specimen is heated to what is termed the foaming temperature. This step is typically carried out in a heated bath with temperature control. The dissolved gas lowers the glass transition temperature of the polymer and the foaming temperature needs only to be above the glass transition temperature of the gas-polymer system in order for the bubbles to nucleate and grow. Since the polymer is still in a solid state, the foams thus produced are called "solid-state foams" to distinguish them from the conventional foams that are produced in an extruder from a polymer melt. The funded research will explore the feasibility of producing thick microcellular specimens using a number of polymers, including PVC, a common plastic used in building materials today; PET, a polymer considered cost-competitive with PVC; and some of the more recently introduced high-strength polymers such as PEEK and PEI. A number of gases will be explored as a physical blowing agent. These gases include carbon dioxide and nitrogen. The research will advance the state-of-the-art of the emerging microcellular polymers technology by adding the new dimension of load-bearing applications. It will also provide an excellent opportunity for both undergraduate and graduate students to learn and grow in an environment of discovery and scientific understanding.
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