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姓名 楊喬宇(Chiao-Yu Yang)  查詢紙本館藏   畢業系所 土木工程學系
論文名稱 探討哈耳電壓與水磁化變數之關係及其對水泥砂漿抗壓強度之影響
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摘要(中) 本研究主要區分為四個階段:第一階段探討水磁化變數對水泥砂漿抗壓強度之影響,第二階段探討哈耳電壓與水磁化變數的關係,第三階段為監測哈耳電壓,並探討水磁化變數對水泥砂漿抗壓強度之影響,第四階段為控制哈耳電壓,並探討哈耳電壓對水泥砂漿抗壓強度之影響。
研究發現磁化水在0.8T之磁場強度中有較佳之成效,可提升水泥砂漿抗壓強度約10% ~ 20 %,0.8T以下磁場強度成效不佳,甚至有可能降低水泥砂漿抗壓強度。添加0.001N 濃度之電解質溶液在0.65T之磁場強度之下磁化就能具有提昇抗壓強度之效果,尤其有以氯化鈉和氫氧化鈣效果最佳。哈耳電壓能充分反應出磁化水磁化變數的改變,且趨勢與理論公式相符,哈耳電壓在30mV以上皆有良好成效。水質特性的量測上,表面張力低於58 dyne/cm 以下之磁化自來水,皆有良好之抗壓強度成效,高於58 dyne/cm以下之磁化自來水則無。
摘要(英) There are four stages in this research: (1) We study the effect of magnetic water on compressive strength of mortar. (2) To observe the relationship between the Hall voltage and the magnetic water variables. (3) We study the effect of magnetic water variables on Hall voltage and compressive strength of mortar. (4) We study the effect of the compressive strength of mortar mixed with magnetic water at the same Hall voltage value.
The compressive strength of mortar mixed with magnetic water of 0.8 T, which could increase 10 ~ 20% more than those mixed with tap water samples. However, when the magnetic strength was less than 0.8T, it could reduce the compressive strength of mortar. Therefor, we magnetize 0.001N sodium chloride solution and 0.001N calcium hydroxide solution, which could increase the compressive strength of mortar. The trend of Hall voltage on this experiment corresponded with Hall effect theory. When Hall voltage was above 30mV, the magnetic water increased the compressive strength of mortar. If the surface tension of magnetic water was below 58 dyne/cm, it could increase compressive strength of mortar. On the other hand, when the surface tension of magnetic water was above 58 dyne/cm, it was ineffective.
關鍵字(中) ★ 砂漿抗壓強度
★ 哈耳電壓
★ 磁化水
關鍵字(英) ★ Hall voltage
★ magnetic water
★ compressive strength of mortar
論文目次 目錄
中文摘要
英文摘要
第一章 緒論........1
1.1 研究源起與動機.....1
1.2 研究內容.............2
1.3 研究目的.............2
第二章 文獻回顧.....3
2.1 水的架構與性質...........3
2.1.1 純水的架構......................3
2.1.2 氫鍵......................4
2.1.3 水分子團簇的尺寸.............5
2.2 磁化水的原理.......................7
2.3 磁化水之磁性作用.............8
2.4 磁化水之電性作用..................9
2.4.1 勞倫茲力...........10
2.4.2 勞倫茲力與磁化水的關係.................................11
2.4.3 哈耳效應 ........................................13
2.4.4 哈耳效應與磁化水的關係......................................14
2.5 磁化設備.............................................16
2.5.1 管線材質的影響...............................................16
2.5.2 電極材質的影響..............................................18
2.5.3 磁化裝置的種類................................................19
2.5.3.1 磁鐵位置............................................19
2.5.3.2 水流與磁場夾角..............................................20
2.5.4.3 電磁鐵與永久磁鐵的差異...............................21
2.6 磁化水之成效...............................................22
2.6.1 抑制水垢........................................22
2.6.1.1 抑制水垢之成效........................................22
2.6.1.2 抑制水垢之機理........................................23
2.6.2 水質變化.....................................................25
2.6.3 磁化水對水泥混凝土之影響..................................27
2.6.3.1 台灣之研究現況..........................................27
2.6.3.2 大陸之使用現況........................................29
第三章 實驗規劃......................................31
3.1 實驗材料.................................................31
3.2 實驗設備...................................................34
3.3 實驗流程與方法....................................45
3.3.1 實驗流程...............................................45
3.3.1.1 第一階段....................................46
3.3.1.2 第二階段...................................49
3.3.1.3 第三階段...................................50
3.3.1.4 第四階段...........................................51
3.3.2實驗方法..........................................52
第四章 結果與分析...........................................54
4.1 第一階段..................................................54
4.1.1磁場強度與流量變化對砂漿抗壓強度之影響................54
4.1.2 磁場強度與長度變化對砂漿抗壓強度之影響................59
4.1.3 管線材質與水質對砂漿抗壓強度之影響........................64
4.2 第二階段................................................67
4.2.1 哈耳電壓與磁場強度之關係...................................67
4.2.2 哈耳電壓與流量之關係.........................................68
4.2.3 哈耳電壓與磁鐵組數之關係..................................69
4.2.4 哈耳電壓與水質之關係......................................70
4.2.5 哈耳電壓與磁場配置之關係....................................71
4.3 第三階段..................................................72
4.3.1 不同磁場強度與流量之哈耳電壓與抗壓強度的關係....72
4.3.1.1 磁場強度與流量對抗壓強度之影響.........................72
4.3.1.2 哈耳電壓與流量及抗壓強度之關係...................74
4.3.1.3 水質變化與哈耳電壓及抗壓強度之關係.................76
4.3.2 不同溶液之哈耳電壓與抗壓強度之關係....................84
4.3.2.1 使用0.01 N之電解質溶液................................. 84
4.3.2.2 使用0.001 N之電解質溶液..............................92
4.4 第四階段.............................................96
4.4.1 不同磁場強度和長度,控制相同哈耳電壓....................96
4.4.2 相吸磁組和相斥磁組之差異.................................103
4.5 綜合分析....106
第五章 結論與建議..............................................108
5.1 結論.....................................................108
5.2 建議..............................................110
參考文獻..……………………………………………………………..111
附錄……………………………………………………………………116
參考文獻 參考文獻
1. Kenneth S. D. and John A. D. 著,朱錦煜 譯,水-科學之明鏡,台灣商務印書館,(1972)。
2. Khan A.,(2000), A liquid water model: Density variation form spercooled to superheated states , prediction pf H-bonds , and temperature limits. J. Phys. Chem. 104 , 11268-11274.
3. C. N. R. Rao .(1972), Theory of hydrogen bonding in water , in F. Franks (Ed), Water A comprehensive treatise , Vol. 1, Plenum Press , New York, pp. 93-114.
4. Martin Chaplin ,Water structure and behavior,The Water Molecule, http://www.lsbu.ac.uk/water/molecule.html.
5. 吳劍秋,基礎電磁學,全華科技圖書。
6. Shoogo Ueno and Masskazu Iwasaka (1994) , Parting of water by magnetic fields, IEEE Transaction on magnetucs , Vol. 30, No. 6 .
7. Iwasaka, M. and Ueno, S. (1998), Structure of water molecules under 14T magnetic field. Journal of applied physics. Vol. 83, No. 11.
8. Subas rai. And Singh N. N. (1995), Magnetic restructuring of water, Med. & Biol. Eng. & Comput. , 33 , 614-617.
9. John S. B. and Simon J. J. (1996), Magnetic amelioration of scale formation, Wat. Res. Vol. 30, N0.2 , pp. 247-260 .
10. Kenneth W. B. and Marianna A. B. (1997) , Laboratory studies on magnetic water treatment and their relationship to a possible mechanism for scale reduction. Desalination 109,pp. 131-148 .
11. Ronald G. and Ziqi A. Z. (1995), Reduction of soluble mineral concentrations in CaSO4 saturated water using a magnetic field. Wat. Res. Vol. 29, No. 3, pp. 933-940.
12. Kozic, V. and Lipus, L. C. (2003), Magnetic Water Treatment for a Less Tenacious Scale, J. Chem. Inf. Comput. Sci. , 43, 1815-1819.
13. Glushchenko I. M. , Grishaenko S. P. and Myagkov Y. V. (1983), Magnetic apparatus for the coke and chemical industry. Coke Chem. (USSR)(English translation of Kokss I khimiya)11, 61-65.
14. Lipus L. C. and Krope J.(2001), Dispersion Destabilization in Magnetic Water Treatment. Journal and Colloid and Interface Science 236, 60-66.
15. 台大普物實驗室,哈耳效應。 http://neko.phys.ntu.edu.tw/lecture s_pages/experiments_pages/hall_effect.htm
16. Busch K. W.,Busch M. A.,Parker D. H.(1986) Studies of a water treatment device that uses magnetic fields .Corrosion 42, 211-221.
17. L. J. Michot, F. Villiéras, M. François, I. Bihannic, M. Pelletier, J-M. Cases (2002), Water organisation at the solid-aqueous solution interface, Comptes Rendus Geosciences 334 ,611-631.
18. FEMP (1998), Non-Chemical Technologies for Scale and Hardness Control., DOE/EE-0162 .
19. Gruber C. E. and Carda D. D. (1981) , Performance analysis of permanent magnet type water treatment devices. WSA Research report : Final Report . Water Quality Association.
20. 許桂銘 (2001),磁化水對水泥混凝土性能影響之探討,鋪面工程學術研討會第11屆 。
21. A. Szkatula, M. Balanda, M. Kopec: Magnetic treatment of industrial water.Silica activation.European Physical Journal - Applied Physics 18 41-49 2002
22. Miroslav Colic *, Dwain Morse.The elusive mechanism of the magnetic “memory” of water. A: Physicochemical and Engineering Aspects 154 (1999) 167-174.
23. Ellingsen F. T. and Kristiansen. H. (1979) Dose magnetic treatment influence precipitation of calcium carbonate from supersaturated solutions.Vatten 35,309-315.
24. Ellingsen F. T. and Vik E. A. (1982) A revue of scale formation with emphasis on magnetic water treamentic water treatment. In Proc. 14th World Congr. Int. Wat. Suppl. Assoc,Zurich SS8,12-25.
25. Hasson D. and Bramson D. (1985) Effectiveness of magnetic water conditioner under accelerated scaling conditions. In Proc. Prog. Prevention of Fouling of Industrial Plant,pp 217223,Nottingham.
26. Kronenberg K. J. (1985) Experimental evidence for effects of magnet- ic fields on moving water . IEEE Trans. Magn. Mag-21,2059-2061.
27. Crolet J. L. and Ledion J. (1988) Experimental evaluation of the effectiveness of a magnetic antiscaling device. Techn. Sci. Meth. L,Eau 83,435-442.
28.Donaldson J. D. (1988) Scale prevention and descaling. Tube Int. , Jan. , pp. 39-49.
29. Donaldson J. D. (1994) The magnetic treatment of fluids. Brewers’ Guardian, July, pp. 20-24.
30. Grimes S. M.(1988) Magnetic field effect on crystals. Tube Int., March , pp.111-118.
31. Chou S. F. and Lin S. C. (1989) Magnetic effects on silica fouling. Heat Transf. Equip. Fundament. Design, Appl. Op. Prob. 108, 239-244.
32. Dalas E. and Koutsoukos P. G. (1989) The effect of magnetic fields on calcium carbonate scale formation. J. Cryst. Growth 96,802-806.
33. Bernardin J. D. and Chan S. H. (1991) Magnetic effect on simulated brine properties pertaining to magnetic water treatment. Fouling and Emhancement Interactions, HTD-164,109-117. AM. Soc. Mech. Eng.,Heat Transfer Div., New York.
34. Lloyd D. J. (1991) Blockage of piggery effluent pipes: a magnet- hydrodynamic solution. Water (Australia) 18,39-40.
35. Higashitani K., Kage A. , Katamura S. Imai K. and HatadeS. (1993) Effects of magnetic field on formation of CaCO3 particles. J. Coll. Int. Sci. 156, 90-95.
36. Gehr R. (1995),Reduction of soluble mineral concentrations in CaSO4 saturated water using a magnetic field.Wat. Res. Vol. 29, No. 3, pp. 933-940.
37. Joshi K. M. and Kamat P. V. (1966) Effect od magnetic field on the physical properties of water. J. Ind. Chem. Soc. 43, 620-622 .
38. Gonet B. (1985) Influence of constant magnetic fields on certain physicochemical properties of water. Bioelectromagnetics 6, 169-175.
39. Ozeki S. , Wakai C. and Ono S. (1991) Is a magnetic effect on water adsorption possible? J. Phys. Chem. Technol. 13, 45-64.
40. Ayrapetyan S. N. , Grigorian K. V., Avanesian A. S. and Stamboltsian K. V. (1994) Magnetic fields alter electrical properties of solutions and their physiological effects, Bioelectromagnetics 15, 133-142.
41. Simon A. P. and Bao L. W.(1997), Magnetic treatment pf calcium carbonate scale-effect of pH control. Wat. Res. Vol. 31, No. 2, pp. 399-342.
42. Kenneth W. ,Marianna A.(1997) Laboratory studies on magnetic water treatment and their relationship to a possible mechanism for scale reduction.Desalination, 109, 131-148.
43. Busch K. W.,Busch M. A.,Parker D. H.(1986) Studies of a water treatment device that uses magnetic fields .Corrosion 42, 211-221.
44. 安燕、劉雲,磁化水及其溶液表面性質的研究,中科院化學所。(2000)。
45. 蘇南、呂坤宗,磁化水對混凝土力學性質及微觀結構之影響,中國土木水利工程學刊,Vol.11 No.3 pp.473-483,(1999)。
46. Nan Su, Yeong H. W.,Chung Y. M. (2003) Effect of magnetic water on the engineering properties of concrete containing granulated blast- furnace slag.Cement & Concrete Research. 30 pp.599-605.
47. Nan Su, Chea-Fang Wu . (2003) Effect of magnetic field treated water on mortar and concrete containing fly ash.Cement & Concrete Composites 25 p681–688.
48. 張庭瑋,”強塑劑與水的磁化對混凝土性質的影響”,雲林科技大學碩士論文。
49. 劉占金、王恩松、余大全,永磁式磁水器在混凝土工程中的應用技術。(1994)
50. 劉和、劉乾、李明遠,磁化水在水泥混凝土中應用試驗研究簡介,http://www.hncd.gov.cn/zazhi/jiaotongshehui/2000dijiuqi/p32.htm.
51. 揚昌林、廖振方、陳德淑,強極性活化水增強混凝土力學性能的機理研究,新型建築材料。(2004)
指導教授 李釗(Chau Lee) 審核日期 2004-7-13
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