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| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 張豐丞 | |
| dc.contributor.author | Chia-Yuan Chang | en |
| dc.contributor.author | 張家源 | zh_TW |
| dc.date.accessioned | 2021-06-16T02:25:21Z | - |
| dc.date.available | 2018-08-31 | |
| dc.date.copyright | 2015-08-31 | |
| dc.date.issued | 2015 | |
| dc.date.submitted | 2015-08-06 | |
| dc.identifier.citation | 行政院環境保護署 (2014) 環境保護統計年報。行政院環境保護署。
Baumgarten, P. K. (1971). Electrostatic Spinning of Acrylic Microfibers. Journal of Colloid and Interface Science, 36, 71–79. Bharadwaj, R., Patel, A., Chokdeepanich, S., and Chase, G. G. (2008). Oriented Fiber Filter Media. Journal of Engineered Fibers and Fabrics, 3, 29–34. Bhardwaj, N., and Kundu, S. (2010). Electrospinning: A Fascinating Fiber Fabrication Technique. Biotechnology Advances, 28, 325–347. Biermann, C. J. (1993). Essentials of Pulping and Papermaking. San Diego: Academic Press. Bonso, J., Kalaw, G., and Ferraris, J. (2014). High Surface Area Carbon Nanofibers Derived from Electrospun PIM–1 for Energy Storage Applications. Journal of Materials Chemistry A, 2, 418–424. Brown, R. (1993). Air Filtration: An Integrated Approach to the Theroy and Applications of Fibrous Filters. Oxford: Pergamon Press. Bura, R., and Gustafson, R. (2013, 11 15). Pulping and Bleaching. Retrieved from University of Washington College of Forest Resources: http://www.sefs.washington.edu/classes.pse.476/notes.htm Burger, C., Hsiao, B., and Chu, B. (2006). Nanofibrous Materials and Their Applications. Annual Review of Materials Research, 36, 333–368. Chang, J. S., Tsai, L. J., and Vigneswaran, S. (1996). Experimental Investigation of the Effect of Particle Size Distribution of Suspended Particles on Microfiltration. Water Science and Technology, 34, 133–140. Chase, G. G., Beniwal, V., and Venkataraman, C. (2000). Measurement of Uni–axial Fiber Angle in Non–woven Fibrous Media. Chemical Engineering Science,55, 2151–2160. Chitral, J., and Shesha, H. (2011). Analysis of the Effects of Solution Conductivity on Electrospinning Process and Fiber Morphology. IEEE Transactions on Industry Applications, 47(3), 1109–1117. Choi, S., Jo, S., Lee, W., and Kim, Y. (2003). An Electrospun Poly(vinylidene fluoride) Nanofibrous Membrane and Its Battery Applications. Advanced Materials, 15, 2027–2032. CooperA., OldinskiR., MaH., BryersD.J., and ZhangM. (2013). Chitosan–based Nanofibrous Membranes for Antibacterial Filter Applications. Carbohydrate Polymers, 92, 254–259. Dallmeyer, I., Ko, F., and Kadla, J. (2010). Electrospinning of Technical Lignins for the Production of Fibrous Networks. Journal of Wood Chemistry and Technology, 30(4), 315–329. Daneleviciute–Vaisniene, A., Katunskis, J., and Buika, G. (2009). Electrospun PVA Nanofibres for Gas Filtration Applications. Fibers and Textiles in Eastern Europe, 6(77), 40–43. Davies, C. N. (1950). The Separation of Airborne Dust and Particles. Arhiv za Higijenu Rada, 1(4), 393–427. Deitzel, J. M., Kleinmeyer, J., Harris, D., and Beck, T. N. (2001). The Effect of Processing Variables on the Morphology of Electrospun Nanofibers and Textiles. Polymer, 42(1), 261–272. Donaldson, L. A. (2001). Lignification and Lignin Topochemistry–An Ultrastructural View. Phytochemistry, 57, 859–873. Dotti, F., Varesano, A., Montarsolo, A., Aluigi, A., Tonin, C., and Mazzuchetti, G. (2007). Electrospun Porous Mats for High Efficiency Filtration. Journal of Industrial Textiles, 37(2), 151–162. DoultonUSA. (2014, 3 8). Doulton Water Filter Ceramic Candle and Cartridge Technologies, taking the mysteries out of the drinking water filtration. Retrieved from Ceramics, a natural water filter – Sterasyl micro–filter: http://doultonusa.com/HTML%20pages/technology.htm Eda, G., and Shivkumar, S. (2007). Bead–to–fiber Transition in Electrospun Polystyrene. Journal of Applied Polymer Science, 40(16), 475–787. FAO. (2010). Pulp and Paper Capacities. Rome: Food and Agriculture Organization of The United Nations. Fathona, I., Khairurrijal, and Yabuki, A. (2014). One–step Fabrication of Short Nanofibers by Electrospinning: Effect of Needle Size on Nanofiber Length. Advanced Materials Research, 896, 33–36. Figeys, D., and Pinto, D. (2000). Lab–on–a–chip: A Revolution in Biological and Medical Sciences– A Look at Some of the Basic Concepts and Novel Components Used to Construct Prototype Devices. Analytical Chemistry, 72, 330–335. Fong, H., Chun, I., and Reneker, D. (1999). Beaded Nanofibers Formed during Electrospinning. Polymer, 40(16), 4585–4592. Forchheimer, P. (1901). Wasserbewegung durch Boden (Vol. 45). Zeitz: Deutsch Ing. FormhalsA. (1934). Patent No. 1975504. US. Fridrikh, S. V., Yu, J. H., Brenner, M. P., and Rutledge, G. C. (2003). Controlling the Fiber Diameter during Electrospinning. Physical Review Letters, 90, p. 114502. Friess, W. (1998). Collagen–biomaterial for Drug Delivery. European Journal of Pharmaceutics and Biopharmaceutics, 45, 113–136. Gandhi, M., Yang, H., Shor, L., and Ko, F. (2009). Post–spinning Modivication of Electrospun Nanofiber Nanocomposite from Bombys mori Silk and Carbon Nanotubes. Polymer, 50, 1918–1924. Graham, K., Ouyang, M., Reather, T., Grafe, T., McDonald, B., and Knauf, P. (2002). Polymeric Nanofibers in air Filtration Applications. Minneapolis: American Filtration and Separations Society. Gupta, P., Elkins, C., Long , T. E., and Wilkes, G. L. (2005). Electrospinning of Linear Homopolymers of Poly(methyl methacrylate): Exploring Relationships Between Fiber Formation, Viscosity, Molecular Weigh and Concentration in a Good Solvent. Polymer, 46, 4799–4810. Gupta, P., Elkins, C., Long, T., and Wilkes, G. (2005). Electrospinning of Linear Homopolymers of Poly(methyl methacrylate): Expoloring Relationships Between Fiber Formation, Viscosity, Molecular Weight and Concentration in a Good Solvent. Polymer, 46, 4799–4810. Haber, C., Skupsky, J., Lee, A., and Lander, R. (2004). Membrane Chromatography of DNA: Conformation–induced Capacity and Selectivity. Biotechnology and Bioengineering, 88, 26–34. Han, D. H. (2008). Performance of Respirator Filters Using Quality Factor in Korea. Industrial Health, 38, 380–384. He, J., Liu, Y., Mo, L., Wan, Y., and Xu, L. (2008). Electrospun Nanofibres and Their Applications. Shropshire: Smithers Rapra Technology. Hollister, S. J. (2005). Porous Scaffold Design for Tissue Engineering. Natural Materials, 4, 518–524. Jarusuwannapoom, T., Hongrojjanawiwat, W., Jitjaicham, S., Wannatong, L., Nithitanakul, M., Pattamaprom, C., and Supaphol, P. (2005). Effect of Solvents on Electrospinnability of Polystyrene Solutions and Morphological Appearance of Resulting Electrospun. European Polymer Journal, 41(3), 409–421. Jeong, E., Yang, J., and Youk, J. (2007). Preparation of Polyurethane Cationomer Nanofiber Mats for Use in Antimicrobial Nanofilter Applications. Materials Letters, 61, 3991–3994. Jia, H., Zhu, G., Vugrinovich, B., Kataphinan, W., Reneker, D., and Wang, P. (2002). Enzyme–carrying Polymeric Nanofibers Prepared via Electrospinning for Use as Unique Biocatalysts. Biotechnology Progress, 18, 1027–1032. Jiang, H., Fang, D., Hsiao, B., Chu, B., and Chen, W. (2004a). Optimization and Characterization of Dextran Membranes Prepared by Electrospinning. Biomacromolecules, 5, 326–333. Johansson, A., Aaltonen, O., and Ylinen, P. (1987). Organosolv Pulping – Methods and Pulp Properties. Biomass, 31(1), 45–65. Kadla, J. F., Kubo, S., Venditti, R. A., Gilbert, R. D., Compere, A. L., and Griffith, W. (2002). Lignin–based Carbon Fibers for Composite Fiber Applications. Carbon 40, 2913–2920. Kakade, M. V., Givens, S., Gardner, K., Lee, K. H., Chase, D. B., and Raboit, J. F. (2007). Electric Field Induced Orientation of Polymer Chains in Macroscopically Aligned Electrospun Polymer Nanofibers. Journal of American Chemical Society, 129(10), 2777–2782. Kayaci, F., Aytac, Z., and Uyar, T. (2013). Surface Modification of Electrospun Polyester Nanofibers with Cyclodextrin Polymer for the Removal of Phenanthrene from Aqueous Solution. Journal of Hazardous Materials, 261, 286–294. Ken, S. (2008). Filters and Filtration Handbook. Oxford: Elsevier. Kost, J., and Langer, R. (2001). Responsive Polymeric Delivery Systems. Advanced Drug Delivery Reviews, 46, 125–148. Lackowski, M., Krupa, A., and Jaworek, A. (2011). Nonwoven Filtration Mat Production by Electrospinning Method. Journal of Physics, 301(1), 1–4. Larrondo , L., and St. John, M. (1981). Electrostatic Fiber Spinning from Polymer Melts. Experimental Observations on Fiber Formation and Properties. 19(6), 909–920. Li, X., Wang, Z., Wang, J., Liu, J., and Li, C. (2014). Preparation and Properties of TPU Micro/Nanofibers by a Laser Melt–Electrospinning System. Polymer Engineering and Science, 54(6), 1412–1417. Liu, Y., He, J., Yu, J., and Zeng, H. (2008). Controlling Numbers and Sizes of Beads in Electrospun Nanofibers. Polymer International, 57, 632–636. Magarvey, R., and Outhouse, L. (1962). Note on the Break–up of a Charged Liquid Jet. Journal of Fluid Mechanics, 31, 151–157. Marek, J., Margate, and England. (1957). Patent No. 2792006. United States. Matthew, B., Andro, M., and Mary, F. W. (2010). Polynomial Filtration Laws for Low Reynolds Number Flows Through Porous Media. Transport in Porous Media, 81, 35–60. Meister, J. (2002). Modification of Lignin. Journal of Macromolecular Science Polymer Reviews, 235–289. Miller, F. (2003). Pulp and Paper International. International Fact and Price Book. San Francisco: Paperloop. Mit–uppatham, C., Nithitanakul, M., and Supaphol, P. (2004). Ultrafine Electrospun Polyamide–6 Fibers: Effect of Solution Conditions on Morphology and Average Fiber Diameter. Weinheim: Wiley–VCH Verlag GmbH and Co. KGaA. Munir, C. (1998). Ultrafiltration and Microfiltration Handbook. Lancaster: Tecnomic. Muzzarelli, R., Muzzarelli, C., Tarsi, R., Mlllani, M., Gabbanelli, F., and Cartolari, M. (2001). Fungistatic Activity of Modified Chitosans Against Saprolegnia parasitica. Biomacromolecules, 2, 165–169. Nandana, B., and Subhas, C. (2010). Electrospinning: A Fascinating Fiber Fabrication Technique. Biotechnology Advances, 28, 325–347. Nasouri, K., Haji, A., Shoushtari, A., and Kaflou, A. (2013). A Novel Study of Electrospun Nanofibers Morphology as a Function of Polymer Solution Properties. Proceedings of the International Conference Nanomaterials: Applications and Properties, 2(3), p. 4. Nayani, K., Katepalli, H., Sharma, C., Sharma, A., Patil, S., and Venkataraghavan, R. (2012). Electrospinning Combined with Nonsolvent–Induced Phase Separation to Fabricate Highly Porous and Hollow Submicrometer Polymer Fibers. Industrial and Engineering Chemistry Research, 51, 1761–1766. Nicolai, R. E., and Janni, K. A. (2001). Biofilter Media Mixture Ratio of Wood Chips and Compost Treating Swine Odors. Water Science Technology, 44, 261–267. Nuray, K., Yesim, B., Murat, K., and Dilek, C. (2012). Effect of Needle Diameter on Diameter of Electrospun Silk Fibroin Nanofibers. Bangkok. Oh, J. H., Park, J., and Ellis, T. G. (2013). Septic Wastewater Treatment Using Recycled Rubber Particles as Biofiltration Media. Environmental Technology, 35, 637–644. Park, H., and Park, Y. (2004). Filtration Properties of Electrospun Ultrafine Fiber Webs. Korean Journal of Chemical Engineering, 22, 165–172. Pearl, I. A. (1967). The Chemistry of Lignin. New York: Marcel Dekker. Petrik, S., and Maly, M. (2008). Design and Parameters of Cellulose Filter Media with Polymer Nanofiber. Materials, Fabrication, Particles and Characterization Technical Proceedings of the 2008 NSTI Nanotechnology Conference and Trade Show (pp. 329–332). liberec: Elmarco Ltd. Pich, J. (1966). Pressure Drop of Fibrous Filters at Small Kundsen Numbers. The Annals of Occupational Hygiene, 9, 23–27. Pich, J. (1966). Theory of Aerosol Filtration by Fibrous and Membrane Filter. New York: Academic Press. Qin, X., and Wang, S. (2006). Filtration Properties of Electrospinning Nanofibers. Journal of Applied Polymer Science, 102, 1285–1290. Rabea, E. I., Badawy, M. T., Stevens, C. V., Smagghe, G., and Steurbaut, W. (2003). Chitosan as Antimicrobial Agent: An Applications and Mode of Action. Biomacromolecules, 4, 1457–1465. Ramakrishna, S., Fujihara, K., Teo, W., Lim, L., and Ma, Z. (2005). An Introduction to Electrospinning and Nanofibers. New Jersey: World Scientific Publishing Company. Ramakrishna, S., Fujihara, K., Teo, W., Yong, T., Ma, Z., and Ramaseshan, R. (2006). Electrospun Nanofibers: Solving Global Issues. Materials Today, 9, 40–50. Reneker, D. H., and Yarin, A. L. (2008). Electrospinning Jets and Polymer Nanofibers. Polymer, 49, 2387–2425. Reneker, D., and Chun, I. (1996). Nanometre Diameter Fibers of Polymer, Produced by electrospinning. Nanotechnology, 7(3), 216–223. Richard, W. B. (2004). Membrane Technology and Applications. New York: John Wiley and Sons. Rutledge, G., and Fridrikh, S. (2007). Formation of Fibers by Electrospinning. Advanced Drug Delivery, 59, 1384–1391. Ryu, Y., Kim, H., Lee, K., Park, H., and Lee, D. (2003). Transport Properties of Electrospun Nylon 6 Nonwoven Mats. European Polymer Journal, 39, 1883–1889. Safaew, R., Zaridze, D., and Sinelnikov, L. (1995). Patent No. 5409021. United States. Sarkanen, K. V., and Ludwig, C. H. (1971). Lignin: Occurrence, Formation, Structure and Reactions. New York: Wiley–Interscience. Savage, D. (2009). LignoBoost: Lignin from Pulp Mill Black Liquor. Results Pulp and Paper, 3, 22–23. Schafer, A. I. (2001). Natural Organics Removal Using Membranes: Principles, Performance, and Cost. Pennsylvania: Technomic Publishing Company. Sener, A., Altay, A., and Altay, F. (2011). Effect of Voltage on Morphology of Electrospun Nanofibers. Electrical and Electronics Engineering (pp. 1–321–1328). Bursa: Electrical and Electronics Engineering. Shon, H. K., Vigneswaran, S., Kandasamy, J., and Cho, J. (2014, 3 8). Membrane Technology for Organic Removal in Wastewater. Retrieved from EOLSS : http://www.eolss.net/sample–chapters/c07/e6–144–05.pdf Shukla, M., Nigam, V., Singh, H., Setua, D., and Mathur, G. (2004). Lignin Reinforced Rubber Composites. Kanpur: Defence Materials and Stores Research and Development Establilshment. Sixta, H. (2006). Hand Book of Pulp. Weinheim: Wiley–VCH verlag GmbH. Stenius, P. (2000). Papermaking Science and Technology Series. Forest Products Chemistry, p. 350. Subbiah, T., Bhat, G., Tock, R., Parameswaran, S., and Ramkumar, S. (2004). Electrospinning of Nanofibers. Journal of Applied Polymer, 96, 557–569. Sun, G., Teng, H., Zhang, C., Dou, Y., and Li, Y. (2010). Preparation of Ultrafine Water–soluble Polymers Nanofiber Mats via Electrospinning. Chemical Research in Chinese Universities, 26(2), 318–322. Sun, Y., Zhang, J., Yang, G., and Li, Z. (2006). Removal of Pollutants with Activated Carbon Produced from K2CO3 of Lignin From Reed Black Liquors. Chemical and Biochemical Engineering Quarterly, 20(4), 429–435. Sundarrajan, S., Tan, K., Lim, S. H., and Ramakrishna, S. (2014). Electrospun Nanofibers for Air filtration Applications. Procedia Engineering, 75, 159–163. Teng, N. Y. (2009). Dispersion of Multi–Walled Carbon Nanotubes and Their Incorporation into Lignin Based Fibres. Vancouver, Canada: University of British Columbia. Tsaia, P., Schreuder–Gibson, H., and Gibson, P. (2002). Different Electrostatic Methods for Making Electret Filters. Journal of Electrostatics, 54, 333–341. TSI. (2002). Mechanisims of filtration for high efficiency fibrous filters application note. ITI–041. Tymczyna, L., Chmielowie, K. A., Paluszak, Z., Dobrowolska, M., Banach, M., and Pulit, J. (2013). The Use of Oak Chips and Coconut Fiber as Biofilter Media to Remove VOCs in Rendering Process. Acta Biochimica Polonica, 60, 747–751. Valencia, J., Rajesh, D., and Malik, M. (2010). The Influence of Electrospinning Parameters on the Structural Morphology and Diameter of Electrospun Nanofibers. Journal of Applied Polymer Science, 115, 3130–3136. Vigueras–Cortés, J. M., Villanueva–Fierro, I., Garzón–Zúñiga, M. A., De Jesús Návar–Cháidez, J., Chaires–Hernández, I., and Hernández–Rodríguez, C. (2013). Performance of a Biofilter System with Agave Fiber Filter Media for Municipal Wastewater Treatment. Water Science adn Technology, 68, 599–607. Wang, H., Zheng, G., and Sun, D. H. (2007). Electrospun Nanofibrous Membrance for Air Filtration. Hong Kong: Institute of Electrical and Electronics Engineers. Wei, A., Wang, J., Wang, X., Hou, D., and Wei, Q. (2012). Morphology and Surface Properties of Poly(L–lactic acid)/Captopril Composite Nanofiber Membranes. Journal of Engineered Fibers and Fabrics, 7(1), 129–135. Yang, Q., Li, Z., Hong, Y., Zhao, Y., Qiu, S., Wang, C., and Wei, Y. (2004). Influence of Solvents on the Formation of Ultrathin Uniform Poly(vinly pyrrolidone) Nanofibers with Electrospinning. Journal of Polymer Science Part B: Polymer Physics, 42(20), 3721–3726. Yuan, X., Zhang, Y., Dong, C., and Sheng, J. (2004). Morphology of Ultrafine Polysulfone Fibers Prepared by Electrospinning. Polymer International, 53(11), 1704–1710. Zhang, C., Yuan, X., Wu, L., Han, Y., and Sheng, J. (2005). Study on Morphology of Electrospun Poly(vinyl alcohol) mats. European Polymer Journal, 41(3), 423–432. Zhang, L., Menkhaus, T., and Fong, H. (2008b). Fabrication and Bioseparation Studies of Adsorptive Membranes/Felts Made from Electrospun Cellulose Acetate Nanofibers. Journal of Membrane Science, 319, 176–184. Zhao, Y. Y., Yang, Q., Lu, X., Wang, C., and Wei, Y. (2005). Study on Correlation of Morphology of Electrospun Products of Polyacrylamide with Ultrahigh Molecular Weight. Journal of Polymer Science Part B: Polymer Physics, 43(16), 2190–2195. Zong, X., Kim, K., Fang, D., Ran, S., Hsiao, B., and Chu, B. (2002). Structure and Process Relationship of Electrospun Bioabsorbable Nanofiber Membrances. Polymer, 43(16), 4403–4412. | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/53521 | - |
| dc.description.abstract | 木質素是一生物性材料,大量存在於植物體當中且為製漿過程之副產物,具有成本低、生物可分解等優點,本研究利用靜電紡絲技術將木質素製成奈米等級之纖維,並應用於空氣過濾方面。經實驗發現許多參數皆會影響纖維成型與否,不良的靜電紡絲條件會產生串珠結構、纖維表面不均勻等缺點,嚴重者甚至無法產生纖維結構,因此本研究以電子顯微鏡針對不同變因所形成之纖維進行照相,並以纖維直徑、形態等為主要分析目標。分析結果指出溶液濃度、針徑、電壓和流速等因子會顯著影響纖維直徑,且不同參數之間存在交互作用,將不同參數對纖維直徑之影響以統計分析所得迴歸式具有高度相關性。另外將木質素纖維所形成之薄膜進行空氣過濾試驗,結果顯示單獨使用木質素纖維並無法得到良好的過濾效果,此乃因其機械性質較弱等因素所造成。若將木質素和PEO結合市售口罩進行靜電紡絲作業後,所得複合式濾材具有良好的空氣過濾效果,達到N95標準,可作為未來改良、發展的目標。 | zh_TW |
| dc.description.abstract | Lignin is believed to be an important biomaterial, since a vast quantity of lignin would be byproduced during the pulping process. If reprocessing properly, we can not only achieve waste recovery but also reduce the cost of raw material. By introducing electrospinning technology, a layered-web structure of lignin fibers can be formed, which may have a great potential in filtration application. Therefore, the focus of this research was mainly on developing lignin fibers as filter media using electrospinning technique. The electrospinning process was operated and fibers were produced and analyzed, and various factors such as solution concentration, needle gauge, applied voltage and flow rate of solution were statistically significant on fiber diameters. Since different factors were correlated, multiple regression analysis was conducted. The regression model showed that fiber diameter was highly correlated with different factors and interaction terms. Furthermore, in order to evaluate the filtration efficiency of lignin-based filter, a series of tests were conducted. Preliminary results showed that the lignin-based filter had relatively insufficient efficiency due to its unfavorable mechanical properties. However, laminating with PEO fibers and surgical masks to form a lignin-based composite filter, according to the testing results, its filtration efficiency was comparable to N95 level. Therefore, the lignin-based composite filter was assumed to have a great potential on air filtration applications. | en |
| dc.description.provenance | Made available in DSpace on 2021-06-16T02:25:21Z (GMT). No. of bitstreams: 1 ntu-104-R02625033-1.pdf: 5298018 bytes, checksum: 20db6eb2468b6ae63c34737395ed5686 (MD5) Previous issue date: 2015 | en |
| dc.description.tableofcontents | 摘 要 I
Abstract II 目 錄 III 圖 目 錄 V 表 目 錄 X 壹、前言 1 貳、研究目標 3 參、文獻回顧 5 一、木質素 5 (一) 木質素磺酸鹽Lignosulfonates 6 (二) Kraft 木質素 8 (三) 溶劑型木質素 9 二、靜電紡絲技術 10 (一) 歷史發展 10 (二) 應用領域 11 (三) 操作參數 15 三、簡介過濾相關背景 20 (一) 濾材的種類 20 (二) 濾材的過濾機制 21 (三) 氣體過濾理論 24 (四) 過濾效率分類 26 (五) 靜電紡絲應用於過濾之實例 30 (六) 木質素應用於過濾之實例 31 肆、材料設備與方法 32 一、木質素纖維 32 (一) 試驗材料 32 (二) 試驗方法 34 二、木質素濾材 35 (一) 試驗材料 35 (二) 試驗方法 36 伍、結果與討論 39 一、木質素纖維 39 (一) Lignosulfonates靜電紡絲操作參數 39 (二) 針徑對纖維直徑大小之影響 45 (三) 濃度、黏度對纖維直徑的影響 45 (四) 電壓、流速對纖維直徑的影響 51 (五) 多元迴歸分析 52 (六) 官能基分析 54 二、木質素濾材 55 (一) 純木質素濾材 55 (二) 木質素複合濾材 72 陸、結論與未來研究 79 柒、參考文獻 81 | |
| dc.language.iso | zh-TW | |
| dc.subject | 空氣過濾 | zh_TW |
| dc.subject | 木質素 | zh_TW |
| dc.subject | 纖維 | zh_TW |
| dc.subject | 靜電紡絲 | zh_TW |
| dc.subject | fiber | en |
| dc.subject | air filtration | en |
| dc.subject | Electrospinning | en |
| dc.subject | Lignin | en |
| dc.title | 應用靜電紡絲技術生產木質素纖維過濾材料 | zh_TW |
| dc.title | Developing Lignin-based Electrospun Fibrous Materials for Filtration | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 103-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.oralexamcommittee | 陳文章,胡明銓,林法勤 | |
| dc.subject.keyword | 木質素,纖維,靜電紡絲,空氣過濾, | zh_TW |
| dc.subject.keyword | Lignin,fiber,Electrospinning,air filtration, | en |
| dc.relation.page | 91 | |
| dc.rights.note | 有償授權 | |
| dc.date.accepted | 2015-08-06 | |
| dc.contributor.author-college | 生物資源暨農學院 | zh_TW |
| dc.contributor.author-dept | 森林環境暨資源學研究所 | zh_TW |
| 顯示於系所單位: | 森林環境暨資源學系 | |
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