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Cellulosic-crystals as a fumed-silica substitute in vacuum insulated panel technology used in building construction and retrofit applications

机译:纤维素晶体在建筑施工和改造应用中的真空隔热板技术中作为热解法二氧化硅的替代品

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摘要

This article investigates impact of substituting fumed silica with a cellulosic-crystal innovation in a commercial Vacuum Insulated Panel (VIP) core. High building performance demands have attracted VIP technology investment to increase production capacity and reduce cost. In building retrofit VIPs resolve practical problems on space saving that conventional insulations are unsuitable for. Three challenges exists in fumed silica: cost, low sustainability properties, and manufacture technical maturity. Cellulosic nano-crystal (CNC) technology is in its infancy and was identified as a possible alternative due to a similar physical nano-structure, and biodegradability. The study aim was to determine a performance starting point and establish how this compares with the current benchmarks. Laboratory cellulosic-crystal samples were produced and supplied for incorporation into commercial VIP manufacture. A selection of cellulosic-panels with core densities ranging 127–170 kg/m3 were produced. Thermal conductivities were tested at a pressure of 1 Pa (0.01 mBar), with the results compared against a selection of fumed silica-VIPs with core densities ranging 144–180 kg/m3. Conductivity tests were then done on a cellulosic-VIP with 140 kg/m3 density, under variable pressures ranging 1–100,000 Pa (0.01–1000 mBar). This investigated panel lifespan performance, with comparisons made to a fumed silica-VIP of similar core density. Manufactured cellulosic-samples were found unsuitable as a commercial substitute, with performance below current standards. Areas for cellulosic nano-material technology development were identified that show large scope for improvement. Pursuit could create a new generation of insulation materials that resolve problems associated with current commercial versions. This is most applicable in building retrofit where large ranges of domestic and commercial cases are marginalised from their construction markets due to impracticalities and high upgrade costs. This being a problem in multiple economies globally.
机译:本文研究了在商用真空绝热板(VIP)芯中用纤维素晶体创新替代气相二氧化硅的影响。较高的建筑性能要求吸引了VIP技术投资,以提高生产能力并降低成本。在建筑翻新中,VIP解决了节省空间的实际问题,这些问题是常规保温材料不适合的。气相二氧化硅存在三个挑战:成本,低可持续性和制造技术成熟度。纤维素纳米晶体(CNC)技术尚处于起步阶段,由于其相似的物理纳米结构和可生物降解性,被认为是一种可能的替代方法。该研究的目的是确定性能起点,并确定如何与当前基准进行比较。实验室纤维素晶体样品被生产出来并提供给商业VIP制造。生产了一系列密度为127–170 kg / m3的纤维素面板。在1 Pa(0.01 mBar)的压力下测试了热导率,并将结果与​​选择的热解硅石-VIP(芯密度为144-180 kg / m3)进行了比较。然后在密度为140 kg / m3的纤维素VIP上在1–100,000 Pa(0.01–1000 mBar)的可变压力下进行电导率测试。这项研究调查了面板的使用寿命,并与具有相似芯密度的气相二氧化硅-VIP进行了比较。发现制造的纤维素样品不适合作为商业替代品,其性能低于当前标准。确定了纤维素纳米材料技术发展的领域,这些领域显示出很大的改进空间。追求可以创造出新一代的绝缘材料,以解决与当前商业版本相关的问题。这最适用于建筑物翻新,由于不切实际和升级成本高昂,使得大量家用和商用案例在建筑市场中处于边缘地位。这是全球多个经济体的问题。

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