首页> 外文会议>International Solar Energy Conference(Solar 2004); 20040711-14; Portland,OR(US) >COST ANALYSIS OF SOLAR REFLECTIVE HARD-COAT MATERIALS DEPOSITED BY ION- BEAM-ASSISTED DEPOSITION
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COST ANALYSIS OF SOLAR REFLECTIVE HARD-COAT MATERIALS DEPOSITED BY ION- BEAM-ASSISTED DEPOSITION

机译:离子束辅助沉积太阳反射硬质涂层材料的成本分析

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Commercialization of concentrating solar power (CSP) technologies require the development of advanced reflector materials that are low cost and maintain high specular reflectance for extended lifetimes under severe outdoor environments. During the past 9 years, the National Renewable Energy Laboratory (NREL) has funded Science Applications International Corporation (SAIC) in McLean, Virginia, to develop a promising low-cost advanced solar reflective material (ASRM) combining the best of both thin-glass and silvered- polymer reflectors. The alumina (Al_2O_3) coating is deposited by ion-beam-assisted physical vapor deposition (IBAD). Materials undergoing testing demonstrate excellent durability under accelerated and outdoor weathering. To help commercialize the technology, NREL had a cost analysis performed incorporating realistic web coating assumptions and the technical improvements made in the ASRM. The biggest process cost items are the alumina and machine burden (which collects the cost of the building and office staff). The switch from a polyethylene terethaphalate (PET) to a steel substrate for the ASRM is a significant contributor to the cost. The cost of high-purity alumina should drop from $400/kg to $200/kg when purchased in 20-kg quantities. Alumina deposition rate then becomes the critical cost driver. In a previous study, deposition rates above 100 nm/s were not examined, but deposition rates greater than 100 nm/s are being used routinely for thin alumina coatings deposited on commercial web-coaters as barrier coatings. In addition, multiple (2-3) Al_2O_3 IBAD zones can be used in one roll-coating machine to deposit thicker alumina at a lower web speed. This means that with increasing deposition rate and/or multiple zones, the total production cost of the SAIC ASRM with 1-μm thick Al_2O_3 on PET will meet both the 1992 cost goal of $10.76/m~2 ($l/ft~2) and the equivalent cost goal of $13.79/m~2 ($1.31/ft~2) when the 1992 cost goal is corrected for inflation. There is a minimum deposition rate needed to reach the cost goal and a maximum deposition rate related to the number of zones after which no significant cost gains are observed. These asymptotic total production costs are $8.06/m~3 ($7.39/m~2 excluding substrate) for a large commercial web-coating company and $7.62/m~2 ($6.94/m~2 excluding substrate) for a smaller company. As can be seen by these numbers, the $10.76/m~2cost goal can be reached, but the cost of the substrate is still a major consideration. In addition, the width of the web was increased from 600 to 1200 mm, which decreased the asymptotic total production costs. The results of the cosl analysis will be described.
机译:聚光太阳能(CSP)技术的商业化要求开发先进的反射器材料,这些材料成本低廉,并能在恶劣的室外环境下保持高镜面反射率以延长使用寿命。在过去的9年中,国家可再生能源实验室(NREL)为位于弗吉尼亚州麦克莱恩的国际科学应用国际公司(SAIC)提供了资金,以开发出一种有前途的低成本先进太阳能反射材料(ASRM),将两种薄玻璃的优点相结合和镀银聚合物反射器。氧化铝(Al_2O_3)涂层通过离子束辅助物理气相沉积(IBAD)进行沉积。经过测试的材料在加速和室外气候条件下显示出优异的耐久性。为了帮助将该技术商业化,NREL进行了成本分析,其中包括了现实的卷材涂层假设和ASRM中进行的技术改进。加工成本最大的项目是氧化铝和机器的负担(这要负担建筑物和办公室人员的成本)。对于ASRM,从聚对苯二甲酸乙二酯(PET)切换到钢质基材是成本的重要贡献。以20公斤为单位购买时,高纯度氧化铝的价格应从400美元/公斤下降到200美元/公斤。氧化铝的沉积速率成为关键的成本驱动因素。在先前的研究中,没有检查高于100 nm / s的沉积速率,但是通常将大于100 nm / s的沉积速率用于沉积在商用幅材涂布机上的薄氧化铝涂层,作为隔离涂层。此外,在一台辊涂机中可以使用多个(2-3)Al_2O_3 IBAD区,以较低的幅材速度沉积较厚的氧化铝。这意味着随着沉积速率的提高和/或多个区域的增加,在PET上使用厚度为1μm的Al_2O_3的SAIC ASRM的总生产成本将同时满足1992年的成本目标$ 10.76 / m〜2($ l / ft〜2)。修正了1992年的成本目标后,当量成本目标为$ 13.79 / m〜2($ 1.31 / ft〜2)。存在达到成本目标所需的最小沉积速率,并且与区域数量相关的最大沉积速率之后没有观察到明显的成本增加。对于一家大型商业幅材涂布公司,这些渐进式总生产成本为$ 8.06 / m〜3($ 7.39 / m〜2,不含基材),对于较小的公司,则为$ 7.62 / m〜2($ 6.94 / m〜2,不含基材)。从这些数字可以看出,可以达到$ 10.76 / m〜2的成本目标,但是基材的成本仍然是主要考虑因素。另外,幅材的宽度从600mm增加到1200mm,这降低了渐近的总生产成本。将描述cosl分析的结果。

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