簡易檢索 / 詳目顯示

研究生: Duy-Hai Vo
Duy-Hai Vo
論文名稱: The study of the effect of MgO on the performance and microstructure of alkali-activated slag paste and mortar with recycled fine aggregate
The study of the effect of MgO on the performance and microstructure of alkali-activated slag paste and mortar with recycled fine aggregate
指導教授: 黃兆龍
Chao-Lung Hwang
口試委員: 王和源
蘇南
黃然
黃重福
陳泰安
張大鵬
陳君弢
黃兆龍
學位類別: 博士
Doctor
系所名稱: 工程學院 - 營建工程系
Department of Civil and Construction Engineering
論文出版年: 2019
畢業學年度: 107
語文別: 英文
論文頁數: 132
中文關鍵詞: 鹼激發爐石飛灰稻殼灰微觀回收骨材砂漿水滑石工程性質
外文關鍵詞: Alkali-activated slag, fly ash, rice husk ash, microstructure, recycled aggregate mortar, hydrotalcite, engineering performance
相關次數: 點閱:285下載:0
分享至:
查詢本校圖書館目錄 查詢臺灣博碩士論文知識加值系統 勘誤回報

本研究的目的是探討MgO對鹼激發爐石漿體(AASP)和由廢棄材料所配製的(稻殼灰(RHA)和飛灰(FA))的砂漿在性能和微觀上的影響。首先,研究了MgO對鹼激發爐石漿體在水中和空氣中的養護的性能影響。接著,調整在水中養護的MgO鹼激發爐石漿體之稻殼灰比例。這個AAS漿體的性能由新拌性質 (坍流度、凝結時間)、硬固性質(抗壓強度、劈裂強度、超音波脈衝速度UPV、熱傳導TC、長度變化)、x 射線衍射XRD、掃描電子顯微鏡SEM、能量色散光譜儀EDS、導數熱重TGA、傅立葉變換紅外光譜FTIR所測試。也研究了砂漿上飛灰和回收細骨材的含量在新拌和硬固的工程性質上的影響。結果顯示,MgO對AAS漿體試體的性能有極大的影響。增加MgO的含量可以加快AAS在早期的水化反應,改變漿體的工作性和凝結時間。對漿體來說,在空氣養護下,強度的增加非常明顯;相較之下,在水中的養護就能發現有很多裂縫。使用RHA來避免AAS-MgO漿體在水中養護下的裂縫。在7.5%MgO和20%RHA的情況下有最高的強度。總而言之,全部的AAS-MgO漿體試體都能顯現出良好的性質。增加RA的含量對砂漿試體在強度和工程性質上有不好的影響。同時,15%的FA取代量可以增進砂漿試體的強度和硬固性質。此外,由XRD、TGA、FTIR分析顯示,C-S-H漿體和Ht狀的相是AAS-MgO漿體的主要水化產物,包含了SiO2和未水化的RHA顆粒。增加MgO生成更多Ht形狀的相,這闡述了MgO的意義和發現它會產生巨大的體積,和促進AAS的水化過程以及在水中養護的情況下導致很多裂縫的原因。


The aim of this study investigated the effect of reactive MgO on the performance and microstructure of alkali-activated slag paste (AASP) and mortar, which was modified by the waste materials (rice husk ash (RHA) and fly ash (FA)). Firstly, the effect of MgO on the performance the alkali-activated slag (AAS) paste under water and air curing condition was investigated. And then, Alkali-activated Slag-MgO (AASM) paste under water curing condition was modified by different RHA levels. The performance of AAS paste was examined through the fresh properties (slump flow, setting time), the hardened properties (compressive strength, splitting strength, ultrasonic pulse velocity (UPV), thermal conductivity (TC), length change) and the microstructure by X-ray diffraction (XRD), Scanning electron microscopy (SEM) with energy dispersive spectrometer (EDS), derivative thermogravimetric (TGA) and Fourier transform infrared spectroscopy (FTIR). For the mortar, the effects of FA and recycled fine aggregate (RFA) content on the engineering properties of fresh and hardened mortar samples were studied. The results illustrated that reactive MgO had significantly effects on the performance of AAS paste samples. Increasing MgO content accelerated the hydration reaction of AAS in the early age, reformed the workability and setting time of paste. In the pastes cured in air condition, the improvement in strength was remarkable while in the counterparts cured in water condition, many cracks occurred. Using RHA prevented the cracks in AAS-MgO paste under water curing condition. The highest strength was found with 7.5% MgO and 20% RHA. In general, all of the AAS-MgO mortar samples demonstrated the good properties. Increasing RA content led to negative effects on strength and engineering properties of mortar samples. While, the replacement with 15% FA content improved the strength and the hardened properties of mortar specimens. Moreover, the C-S-H gel and hydrotalcite-like phase (Ht) were main hydration products of AAS-MgO paste, which were showed by XRD, TGA, FTIR analysis including with cristobalite (SiO2) of un-hydrated particle of RHA. Increasing MgO formed more Ht-like phase, which specified the significant of MgO and this finding exhibited high voluminous, and promoted the hydration process of AAS as well as caused the many cracks in the pastes under water curing conditions.

摘要 i Abstract iii Acknowledgements v Contents vi List of symbols and abbreviations x List of tables xii List of figures xiii Chapter 1: Introduction 1 1.1. Motivation of this research 1 1.2. The aim of this research 6 Chapter 2: Literature review 8 2.1. Overview of utilization of waste materials in cementitious and concrete manufacture 8 2.1.1. Ground granulated blast furnace slag 8 2.1.2. Rice husk ash 9 2.1.3. Fly ash 12 2.1.4. Using of magnesium oxide to reduce the shrinkage of alkali-activated slag 14 2.1.5. Overview of utilization of construction demolish waste as recycled aggregates for mortar production 16 2.2. Overview of alkali-activated materials technology 17 2.3. Summary on the literature reviews about alkali-activated slag-MgO with FA, RHA and RFA in producing paste and mortar specimens 19 Chapter 3. Materials and experimental methods 44 3.1. Original materials properties 44 3.1.1. GGBFS, MgO, Rice husk ash, fly ash 44 3.1.2. Natural fine aggregate and recycled fine aggregate 48 3.1.3. Alkaline activator solution and mixing water 49 3.2. Experimental method and equipment 50 3.2.1. Fresh properties of paste and mortar 50 3.2.2. Hardened properties 51 3.2.3. Microstructure analysis 58 3.3. Mix proportion and sample preparation 61 Chapter 4. Effect of high MgO content on the performance of alkali-activated fine slag under water and air curing conditions 65 4.1. Engineering performance of AAS paste 65 4.1.1. Flowability 65 4.1.2. Setting time 66 4.1.3. Compressive strength 67 4.1.4. Cracks formation in the water curing condition 69 4.2. Microstructures 72 4.2.1. XRD results 72 4.2.2. SEM and EDS results 73 4.2.3. TGA results 76 Chapter 5. Engineering properties and microstructure of alkali-activated slag-rice husk ash (AASR) with addition of different MgO contents 80 5.1. Engineering properties of AASR samples 80 5.1.1. Flowability 80 5.1.2. Compressive strength 81 5.1.3. Thermal conductivity of hardened paste 86 5.1.4. Ultrasonic pulse velocity 88 5.2. Microstructures 91 5.2.1. XRD results 91 5.2.2. SEM and EDS results 93 5.2.3. FTIR results 98 Chapter 6. Effect of recycled fine aggregate and fly ash content on the strength developments and engineering properties of alkali-activated slag-MgO mortar 100 6.1. Slump flow and unit weight results 100 6. 2. Compressive strength 102 6.3. Splitting strength 104 6.4. Water absorption 105 6.5. UPV test 107 6.6. Electrical surface resistivity (ESR) 108 6.7. Chloride penetration resistance 110 Chapter 7. Conclusion and suggestions 112 7.1. Conclusion 112 Alkali-activated binders 112 Alkali-activated slag mortar 114 7.2. Suggestions 115 Reference 116

[1] A.A. Aliabdo, A.E.M. Abd Elmoaty, A.Y. Aboshama, Utilization of waste glass powder in the production of cement and concrete, Construction and Building Materials 124 (2016) 866-877.
[2] K.L. Scrivener, R.J. Kirkpatrick, Innovation in use and research on cementitious material, Cement and Concrete Research 38(2) (2008) 128-136.
[3] S. Raut, R. Ralegaonkar, S. Mandavgane, Utilization of recycle paper mill residue and rice husk ash in production of light weight bricks, Archives of Civil and Mechanical Engineering 13(2) (2013) 269-275.
[4] R. Khan, A. Jabbar, I. Ahmad, W. Khan, A.N. Khan, J. Mirza, Reduction in environmental problems using rice-husk ash in concrete, Construction and Building Materials 30 (2012) 360-365.
[5] C.-L. Hwang, L.-A.-T. Bui, C.-T. Chen, Effect of rice husk ash on the strength and durability characteristics of concrete, Construction and Building Materials 25(9) (2011) 3768-3772.
[6] G.L. Golewski, Green concrete composite incorporating fly ash with high strength and fracture toughness, Journal of Cleaner Production 172 (2018) 218-226.
[7] R. Siddique, D. Kaur, Properties of concrete containing ground granulated blast furnace slag (GGBFS) at elevated temperatures, Journal of Advanced Research 3(1) (2012) 45-51.
[8] M. Chieh Chi, J. Hao Chi, C. Hao Wu, Effect of GGBFS on Compressive Strength and Durability of Concrete, 2018.
[9] J. Tao, X. Wei, Effect of ground granulated blast-furnace slag on the hydration and properties of cement paste, Advances in Cement Research 0(0) 1-10.
[10] T. Luukkonen, Z. Abdollahnejad, J. Yliniemi, P. Kinnunen, M. Illikainen, One-part alkali-activated materials: A review, Cement and Concrete Research 103 (2018) 21-34.
[11] R.J. Myers, S.A. Bernal, J.L. Provis, Phase diagrams for alkali-activated slag binders, Cement and Concrete Research 95 (2017) 30-38.
[12] G. Rodríguez de Sensale, Effect of rice-husk ash on durability of cementitious materials, Cement and Concrete Composites 32(9) (2010) 718-725.
[13] J. Alex, J. Dhanalakshmi, B. Ambedkar, Experimental investigation on rice husk ash as cement replacement on concrete production, Construction and Building Materials 127 (2016) 353-362.
[14] S.A. Zareei, F. Ameri, F. Dorostkar, M. Ahmadi, Rice husk ash as a partial replacement of cement in high strength concrete containing micro silica: Evaluating durability and mechanical properties, Case Studies in Construction Materials 7(Supplement C) (2017) 73-81.
[15] H. Huang, X. Gao, H. Wang, H. Ye, Influence of rice husk ash on strength and permeability of ultra-high performance concrete, Construction and Building Materials 149 (2017) 621-628.
[16] T. Hemalatha, A. Ramaswamy, A review on fly ash characteristics – Towards promoting high volume utilization in developing sustainable concrete, Journal of Cleaner Production 147 (2017) 546-559.
[17] B. Sukumar, K. Nagamani, R. Srinivasa Raghavan, Evaluation of strength at early ages of self-compacting concrete with high volume fly ash, Construction and Building Materials 22(7) (2008) 1394-1401.
[18] A.K. Saha, Effect of class F fly ash on the durability properties of concrete, Sustainable Environment Research 28(1) (2018) 25-31.
[19] S.A. Bernal, R. Mejía de Gutiérrez, A.L. Pedraza, J.L. Provis, E.D. Rodriguez, S. Delvasto, Effect of binder content on the performance of alkali-activated slag concretes, Cement and Concrete Research 41(1) (2011) 1-8.
[20] S.A. Bernal, R. Mejía de Gutiérrez, J.L. Provis, Engineering and durability properties of concretes based on alkali-activated granulated blast furnace slag/metakaolin blends, Construction and Building Materials 33 (2012) 99-108.
[21] Z. Baščarevć, 14 - The resistance of alkali-activated cement-based binders to chemical attack, Handbook of Alkali-Activated Cements, Mortars and Concretes, Woodhead Publishing, Oxford, 2015, pp. 373-396.
[22] N.K. Lee, H.K. Lee, Influence of the slag content on the chloride and sulfuric acid resistances of alkali-activated fly ash/slag paste, Cement and Concrete Composites 72(Supplement C) (2016) 168-179.
[23] I. Ismail, S.A. Bernal, J.L. Provis, R. San Nicolas, D.G. Brice, A.R. Kilcullen, S. Hamdan, J.S.J. van Deventer, Influence of fly ash on the water and chloride permeability of alkali-activated slag mortars and concretes, Construction and Building Materials 48(Supplement C) (2013) 1187-1201.
[24] Z. Shi, C. Shi, S. Wan, Z. Ou, Effect of alkali dosage on alkali-silica reaction in sodium hydroxide activated slag mortars, Construction and Building Materials 143 (2017) 16-23.
[25] Z. Jiao, Y. Wang, W. Zheng, W. Huang, Effect of dosage of sodium carbonate on the strength and drying shrinkage of sodium hydroxide based alkali-activated slag paste, Construction and Building Materials 179 (2018) 11-24.
[26] R. Manjunath, M.C. Narasimhan, An experimental investigation on self-compacting alkali activated slag concrete mixes, Journal of Building Engineering 17 (2018) 1-12.
[27] S. Al-Otaibi, Durability of concrete incorporating GGBS activated by water-glass, Construction and Building Materials 22(10) (2008) 2059-2067.
[28] M. Chi, Effects of dosage of alkali-activated solution and curing conditions on the properties and durability of alkali-activated slag concrete, Construction and Building Materials 35 (2012) 240-245.
[29] C. Bilim, C.D. Atiş, Alkali activation of mortars containing different replacement levels of ground granulated blast furnace slag, Construction and Building Materials 28(1) (2012) 708-712.
[30] Y.J. Patel, N. Shah, Enhancement of the properties of Ground Granulated Blast Furnace Slag based Self Compacting Geopolymer Concrete by incorporating Rice Husk Ash, Construction and Building Materials 171 (2018) 654-662.
[31] P.V. Ramani, P. Kandukalpatti Chinnaraj, Geopolymer concrete with ground granulated blast furnace slag and black rice husk ash, Gradevinar 67(8) (2015) 741-747.
[32] A. Wardhono, D.W. Law, A. Strano, The Strength of Alkali-activated Slag/fly Ash Mortar Blends at Ambient Temperature, Procedia Engineering 125 (2015) 650-656.
[33] X. Gao, Q.L. Yu, H.J.H. Brouwers, Properties of alkali activated slag–fly ash blends with limestone addition, Cement and Concrete Composites 59 (2015) 119-128.
[34] K. Gu, F. Jin, A. Al-Tabbaa, B. Shi, J. Liu, Mechanical and hydration properties of ground granulated blastfurnace slag pastes activated with MgO–CaO mixtures, Construction and Building Materials 69 (2014) 101-108.
[35] FR Keith, CL Bentley, WW Walker, JA Holland, Shrinkage-Compensating Concrete Pavements Perform Well, Concrete International 28(01).
[36] K. Gu, F. Jin, A. Al-Tabbaa, B. Shi, Activation of ground granulated blast furnace slag by using calcined dolomite, Construction and Building Materials 68 (2014) 252-258.
[37] W. Shen, Y. Wang, T. Zhang, M. Zhou, J. Li, X. Cui, Magnesia modification of alkali-activated slag fly ash cement, Journal of Wuhan University of Technology-Mater. Sci. Ed. 26(1) (2011) 121-125.
[38] W.-H. Yang, D.-W. Ryu, D.-C. Park, W.-J. Kim, C.-H. Seo, A study of the effect of light-burnt dolomite on the hydration of alkali-activated Portland blast-furnace slag cement, Construction and Building Materials 57 (2014) 24-29.
[39] F. Jin, K. Gu, A. Al-Tabbaa, Strength and drying shrinkage of reactive MgO modified alkali-activated slag paste, Construction and Building Materials 51 (2014) 395-404.
[40] H.A. Abdel-Gawwad, Effect of reactive magnesium oxide on properties of alkali activated slag geopolymer cement pastes, 2015.
[41] F. Jin, K. Gu, A. Al-Tabbaa, Strength and hydration properties of reactive MgO-activated ground granulated blastfurnace slag paste, Cement and Concrete Composites 57 (2015) 8-16.
[42] F. Jin, A. Al-Tabbaa, Strength and drying shrinkage of slag paste activated by sodium carbonate and reactive MgO, Construction and Building Materials 81 (2015) 58-65.
[43] F. Jin, K. Gu, A. Abdollahzadeh, A. Al-Tabbaa, Effects of Different Reactive MgOs on the Hydration of MgO-Activated GGBS Paste, Journal of Materials in Civil Engineering 27(7) (2015) B4014001.
[44] H. Wan, Z. Shui, Z. Lin, Analysis of geometric characteristics of GGBS particles and their influences on cement properties, Cement and Concrete Research 34(1) (2004) 133-137.
[45] P. Z. Wang, V. Rudert, R. Trettin, Effect of Fineness and Particle Size Distribution of Granulated Blast-Furnace Slag on the Hydraulic Reactivity in Cement Systems, Advances in Cement Research 17(4) (2005) 161-167.
[46] R.V. Silva, J. de Brito, R.K. Dhir, Properties and composition of recycled aggregates from construction and demolition waste suitable for concrete production, Construction and Building Materials 65 (2014) 201-217.
[47] G. Banias, C. Achillas, C. Vlachokostas, N. Moussiopoulos, S. Tarsenis, Assessing multiple criteria for the optimal location of a construction and demolition waste management facility, Building and Environment 45(10) (2010) 2317-2326.
[48] R. da Rosa Azambuja, V.G. de Castro, R. Trianoski, S. Iwakiric, Utilization of construction and demolition waste for particleboard production, Journal of Building Engineering 20 (2018) 488-492.
[49] E. Iacovidou, P. Purnell, M.K. Lim, The use of smart technologies in enabling construction components reuse: A viable method or a problem creating solution?, Journal of Environmental Management 216 (2018) 214-223.
[50] F. Puertas, S. Martı́nez-Ramı́rez, S. Alonso, T. Vázquez, Alkali-activated fly ash/slag cements: Strength behaviour and hydration products, Cement and Concrete Research 30(10) (2000) 1625-1632.
[51] E. Shumuye, Z. Jun, A Review on Ground Granulated Blast Slag GGBS in Concrete, Proc. of the Eight International Conference On Advances in Civil and Structural Engineering 2018.
[52] E. Özbay, M. Erdemir, H.İ. Durmuş, Utilization and efficiency of ground granulated blast furnace slag on concrete properties – A review, Construction and Building Materials 105 (2016) 423-434.
[53] J.M. Gao, C.X. Qian, H.F. Liu, B. Wang, L. Li, ITZ microstructure of concrete containing GGBS, Cement and Concrete Research 35(7) (2005) 1299-1304.
[54] S. Teng, T.Y.D. Lim, B. Sabet Divsholi, Durability and mechanical properties of high strength concrete incorporating ultra fine Ground Granulated Blast-furnace Slag, Construction and Building Materials 40 (2013) 875-881.
[55] M.A. Megat Johari, J.J. Brooks, S. Kabir, P. Rivard, Influence of supplementary cementitious materials on engineering properties of high strength concrete, Construction and Building Materials 25(5) (2011) 2639-2648.
[56] S. Teng, D. Lim, B. Sabet Divsholi, Durability and mechanical properties of high strength concrete incorporating ultra fine Ground Granulated Blast-furnace Slag, Construction and Building Materials 40 (2013) 875-881.
[57] F. Pacheco-Torgal, J. Castro-Gomes, S. Jalali, Alkali-activated binders: A review: Part 1. Historical background, terminology, reaction mechanisms and hydration products, Construction and Building Materials 22(7) (2008) 1305-1314.
[58] S. Liu, W. Han, Q. Li, Hydration Properties of Ground Granulated Blast-Furnace Slag (GGBS) Under Different Hydration Environments, Materials Science 23(1) (2017) 70-77.
[59] D. V S P Rajesh, A.N. Reddy, U. Venkata Tilak, M. Raghavendra, M. Tech Student, Performance of alkali activated slag with various alkali activators, International Journal of Innovative Research in Science, Engineering and Technology 2(2) (2013) 378-386.
[60] C. Duran Atiş, C. Bilim, Ö. Çelik, O. Karahan, Influence of activator on the strength and drying shrinkage of alkali-activated slag mortar, Construction and Building Materials 23(1) (2009) 548-555.
[61] M.C.G. Juenger, F. Winnefeld, J.L. Provis, J.H. Ideker, Advances in alternative cementitious binders, Cement and Concrete Research 41(12) (2011) 1232-1243.
[62] W. Chen, H.J.H. Brouwers, The hydration of slag, part 1: Reaction models for alkali-activated slag, J Mater Sci (2007) 42:428–443.
[63] F. Collins, J.G. Sanjayan, Effect of pore size distribution on drying shrinking of alkali-activated slag concrete, Cement and Concrete Research 30(9) (2000) 1401-1406.
[64] A.A. Melo Neto, M.A. Cincotto, W. Repette, Drying and autogenous shrinkage of pastes and mortars with activated slag cement, Cement and Concrete Research 38(4) (2008) 565-574.
[65] S.-D. Wang, K.L. Scrivener, Hydration products of alkali activated slag cement, Cement and Concrete Research 25(3) (1995) 561-571.
[66] C.L. Hwang, S. Chandra, 4 - The use of rice husk ash in concrete, in: S. Chandra (Ed.), Waste Materials Used in Concrete Manufacturing, William Andrew Publishing, Westwood, NJ, 1996, pp. 184-234.
[67] C. Fapohunda, B. Akinbile, A. Shittu, Structure and properties of mortar and concrete with rice husk ash as partial replacement of ordinary Portland cement – A review, International Journal of Sustainable Built Environment 6(2) (2017) 675-692.
[68] S. Das, A. Patel, Potential of rice husk ash in concrete production: a literature review, 2th International Conference on Advances in Concrete, Structural & Geotechnical Engineering (2018).
[69] M.H. Zhang, R. Lastra, V.M. Malhotra, Rice-husk ash paste and concrete: Some aspects of hydration and the microstructure of the interfacial zone between the aggregate and paste, Cement and Concrete Research 26(6) (1996) 963-977.
[70] B. Chatveera, P. Lertwattanaruk, Evaluation of nitric and acetic acid resistance of cement mortars containing high-volume black rice husk ash, Journal of Environmental Management 133 (2014) 365-373.
[71] W. Xu, Y.T. Lo, D. Ouyang, S.A. Memon, F. Xing, W. Wang, X. Yuan, Effect of rice husk ash fineness on porosity and hydration reaction of blended cement paste, Construction and Building Materials 89 (2015) 90-101.
[72] D. Chopra, R. Siddique, Kunal, Strength, permeability and microstructure of self-compacting concrete containing rice husk ash, Biosystems Engineering 130 (2015) 72-80.
[73] P.J.M.M. Nicole P. Hasparyk, C. Helena, Effect of Silica Fume and Rice Husk Ash on Alkali-Silica Reaction, Materials Journal 97(4).
[74] K. Sakr, Effects of Silica Fume and Rice Husk Ash on the Properties of Heavy Weight Concrete, Journal of Materials in Civil Engineering 18(3) (2006) 367-376.
[75] R. Kishore, V. Bhikshma, P.J. Prakash, Study on Strength Characteristics of High Strength Rice Husk Ash Concrete, Procedia Engineering 14 (2011) 2666-2672.
[76] S. Hesami, S. Ahmadi, M. Nematzadeh, Effects of rice husk ash and fiber on mechanical properties of pervious concrete pavement, Construction and Building Materials 53 (2014) 680-691.
[77] K. Ganesan, K. Rajagopal, K. Thangavel, Rice husk ash blended cement: Assessment of optimal level of replacement for strength and permeability properties of concrete, Construction and Building Materials 22(8) (2008) 1675-1683.
[78] A. Naji Givi, S. Abdul Rashid, F. Nora, F. Abdul aziz, M. Amran, A. Salleh, Contribution of rice husk ash to the properties of mortar and concrete: A review, International Journal of Engineering Research & Technology 2(2) (2010) 1-7.
[79] C.-L. Hwang, T.-P. Huynh, Investigation into the use of unground rice husk ash to produce eco-friendly construction bricks, Construction and Building Materials 93 (2015) 335-341.
[80] F. Alwani Wan Chik, B.H. Bakar, M.A. Megat Johari, R. Putra Jaya, Properties of concrete block containing rice husk ash, 2011.
[81] Y.Y. Kim, B.-J. Lee, V. Saraswathy, S.-J. Kwon, Strength and durability performance of alkali-activated rice husk ash geopolymer mortar, TheScientificWorldJournal 2014 (2014) 209584-209584.
[82] C.-L. Hwang, T.-P. Huynh, Effect of alkali-activator and rice husk ash content on strength development of fly ash and residual rice husk ash-based geopolymers, Construction and Building Materials 101 (2015) 1-9.
[83] T.L. Theis, J.L. Wirth, Sorptive behavior of trace metals on fly ash in aqueous systems, Environmental Science & Technology 11(12) (1977) 1096-1100.
[84] P. Nath, P. Sarker, Effect of Fly Ash on the Durability Properties of High Strength Concrete, Procedia Engineering 14 (2011) 1149-1156.
[85] V.M. Malhotra, P.K. Mehta, High-performance, High-volume Fly Ash Concrete: Materials, Mixture Proportioning, Properties, Construction Practice, and Case Histories, Supplementary Cementing Materials for Sustainable Development 2005.
[86] R. Cheerarot, C. Jaturapitakkul, A study of disposed fly ash from landfill to replace Portland cement, Waste Management 24(7) (2004) 701-709.
[87] Y.-Y. Chen, B.L.A. Tuan, C.-L. Hwang, Effect of paste amount on the properties of self-consolidating concrete containing fly ash and slag, Construction and Building Materials 47 (2013) 340-346.
[88] A.E.A. Elshekh, N. Shafiq, M.F. Nuruddin, A. Fathi, Mechanical properties of high strength concrete using fly ash, 2013 IEEE Business Engineering and Industrial Applications Colloquium (BEIAC), 2013, pp. 306-310.
[89] C.-L. Hwang, M.-F. Hung, Durability design and performance of self-consolidating lightweight concrete, Construction and Building Materials 19(8) (2005) 619-626.
[90] P. Nuaklong, V. Sata, P. Chindaprasirt, Influence of recycled aggregate on fly ash geopolymer concrete properties, Journal of Cleaner Production 112, Part 4 (2016) 2300-2307.
[91] C. Gunasekara, D.W. Law, S. Setunge, Long term permeation properties of different fly ash geopolymer concretes, Construction and Building Materials 124 (2016) 352-362.
[92] L.N. Assi, E. Deaver, M.K. ElBatanouny, P. Ziehl, Investigation of early compressive strength of fly ash-based geopolymer concrete, Construction and Building Materials 112 (2016) 807-815.
[93] N.K. Lee, H.K. Lee, Setting and mechanical properties of alkali-activated fly ash/slag concrete manufactured at room temperature, Construction and Building Materials 47 (2013) 1201-1209.
[94] M. Mastali, P. Kinnunen, A. Dalvand, R. Mohammadi Firouz, M. Illikainen, Drying shrinkage in alkali-activated binders – A critical review, Construction and Building Materials 190 (2018) 533-550.
[95] Y. Ma, G. Ye, The shrinkage of alkali activated fly ash, Cement and Concrete Research 68 (2015) 75-82.
[96] S. Nagataki, H. Gomi, Expansive admixtures (mainly ettringite), Cement and Concrete Composites 20(2) (1998) 163-170.
[97] P. Yan, F. Zheng, J. Peng, X. Qin, Relationship between delayed ettringite formation and delayed expansion in massive shrinkage-compensating concrete, Cement and Concrete Composites 26(6) (2004) 687-693.
[98] P. Yan, X. Qin, The effect of expansive agent and possibility of delayed ettringite formation in shrinkage-compensating massive concrete, Cement and Concrete Research 31(2) (2001) 335-337.
[99] Z. Bofang, 19 - Construction of Dam by MgO Concrete, in: Z. Bofang (Ed.), Thermal Stresses and Temperature Control of Mass Concrete, Butterworth-Heinemann, Oxford, 2014, pp. 409-424.
[100] L. Mo, M. Deng, A. Wang, Effects of MgO-based expansive additive on compensating the shrinkage of cement paste under non-wet curing conditions, Cement and Concrete Composites 34(3) (2012) 377-383.
[101] J.I. Escalante-Garcia, A. Fuentes, P. E. Fraire-Luna, A. Gorokhovsky, G. Mendoza-Suarez, Hydration Products and Reactivity of Blast‐Furnace Slag Activated by Various Alkalis, 2003.
[102] M.B. Haha, B. Lothenbach, G. Le Saout, F. Winnefeld, Influence of slag chemistry on the hydration of alkali-activated blast-furnace slag — Part I: Effect of MgO, Cement and Concrete Research 41(9) (2011) 955-963.
[103] N. Kisku, H. Joshi, M. Ansari, S.K. Panda, S. Nayak, S.C. Dutta, A critical review and assessment for usage of recycled aggregate as sustainable construction material, Construction and Building Materials 131 (2017) 721-740.
[104] D. Chisholm, Best practice guide for the use of recycled aggregates in new concrete, 2011.
[105] A. Katz, Properties of Concrete Made With Recycled Aggregate from Partially Hydrated Old Concrete, Cement and Concrete Research 33(5) (2003) 703-711.
[106] M. Martín-Morales, M. Zamorano, A. Ruiz-Moyano, I. Valverde-Espinosa, Characterization of recycled aggregates construction and demolition waste for concrete production following the Spanish Structural Concrete Code EHE-08, 2011.
[107] J.M.V. Gómez-Soberón, Porosity of recycled concrete with substitution of recycled concrete aggregate: An experimental study, Cement and Concrete Research 32(8) (2002) 1301-1311.
[108] F. Debieb, L. Courard, S. Kenai, R. Degeimbre, Mechanical and durability properties of concrete using contaminated recycled aggregates, Cement and Concrete Composites 32(6) (2010) 421-426.
[109] F. Debieb, S. Kenai, The use of coarse and fine crushed bricks as aggregate in concrete, Construction and Building Materials 22(5) (2008) 886-893.
[110] T.-Y. Tu, Y.-Y. Chen, C.-L. Hwang, Properties of HPC with recycled aggregates, Cement and Concrete Research 36(5) (2006) 943-950.
[111] G. Dimitriou, P. Savva, M.F. Petrou, Enhancing mechanical and durability properties of recycled aggregate concrete, Construction and Building Materials 158 (2018) 228-235.
[112] D.M. Roy, Alkali-activated cements Opportunities and challenges, Cement and Concrete Research 29(2) (1999) 249-254.
[113] I. Ismail, S.A. Bernal, J.L. Provis, R. San Nicolas, S. Hamdan, J.S.J. van Deventer, Modification of phase evolution in alkali-activated blast furnace slag by the incorporation of fly ash, Cement and Concrete Composites 45 (2014) 125-135.
[114] T. Yang, H. Zhu, Z. Zhang, X. Gao, C. Zhang, Q. Wu, Effect of fly ash microsphere on the rheology and microstructure of alkali-activated fly ash/slag pastes, Cement and Concrete Research 109 (2018) 198-207.
[115] S. Bernal, R. Mejia, E. Rodríguez, Alkali-activated materials: cementing a sustainable future, Revista de la Facultad de Ingenieria 15(2) (2013) 211-233.
[116] J.E. Oh, P.J.M. Monteiro, S.S. Jun, S. Choi, S.M. Clark, The evolution of strength and crystalline phases for alkali-activated ground blast furnace slag and fly ash-based geopolymers, Cement and Concrete Research 40(2) (2010) 189-196.
[117] M.B. Haha, B. Lothenbach, G. Le Saout, F. Winnefeld, Influence of slag chemistry on the hydration of alkali-activated blast-furnace slag — Part II: Effect of Al2O3, Cement and Concrete Research 42(1) (2012) 74-83.
[118] J.M. Mejía, R. Mejía de Gutiérrez, F. Puertas, Rice husk ash as a source of silica in alkali-activated fly ash and granulated blast furnace slag systems, Materiales de Construcción 63(311) (2013) 361-375.
[119] M.R. Karim, M.F.M. Zain, M. Jamil, F.C. Lai, Fabrication of a non-cement binder using slag, palm oil fuel ash and rice husk ash with sodium hydroxide, Construction and Building Materials 49 (2013) 894-902.
[120] B. N. Sangeetha, Effect of Rice Husk Ash and GGBS on Performance of Concrete, International Journal of Engineering and Technical Research (2015).
[121] N. Marjanovic, M. Komljenović, Z. Bascarevic, V. Nikolic, R. Petrović, Physical-mechanical and microstructural properties of alkali-activated fly ash–blast furnace slag blends, 2014.
[122] S. Bernal, E. Rodríguez, R. Mejia, J. Provis, Performance at high temperature of alkali-activated slag pastes produced with silica fume and rice husk ash based activators, Materiales de Construcción 65(2015) 1-10.
[123] S.A. Bernal, R.S. Nicolas, J.S.J. van Deventer, J.L. Provis, Alkali-activated slag cements produced with a blended sodium carbonate/sodium silicate activator, Advances in Cement Research 28(4) (2015) 262-273.
[124] M. Chi, Mechnical strength and durability of alkali-activated fly ash/slag concrete, Journal of Marine Science and Technology (2016) 958-967.
[125] S. Inti, M. Sharma, V. Tandon, Ground Granulated Blast Furnace Slag (GGBS) and Rice Husk Ash (RHA) Uses in the Production of Geopolymer Concrete, Geo-Chicago 2016.
[126] Y. Chen, Z. Shui, W. Chen, Q. Li, G. Chen, Effect of MgO content of synthetic slag on the formation of Mg-Al LDHs and sulfate resistance of slag-fly ash-clinker binder, Construction and Building Materials 125 (2016) 766-774.
[127] H.N. Yoon, S.M. Park, H.K. Lee, Effect of MgO on chloride penetration resistance of alkali-activated binder, Construction and Building Materials 178 (2018) 584-592.
[128] S.-T. Lee, N. Swamy Ramnath, S.-S. Kim, Y.-G. Park, Durability of Mortars Made with Recycled Fine Aggregates Exposed to Sulfate Solutions, Journal of Materials in Civil Engineering 20(1) (2008) 63-70.
[129] C. Neno, J.d. Brito, R. Veiga, Using fine recycled concrete aggregate for mortar production, Materials Research 17 (2014) 168-177.
[130] M. Chi, R. Huang, Binding mechanism and properties of alkali-activated fly ash/slag mortars, Construction and Building Materials 40 (2013) 291-298.
[131] N.K. Lee, J.G. Jang, H.K. Lee, Shrinkage characteristics of alkali-activated fly ash/slag paste and mortar at early ages, Cement and Concrete Composites 53 (2014) 239-248.
[132] J.G. Jang, N.K. Lee, H.K. Lee, Fresh and hardened properties of alkali-activated fly ash/slag pastes with superplasticizers, Construction and Building Materials 50 (2014) 169-176.
[133] G. Ferro, C. Spoto, J.-M. Tulliani, L. Restuccia, Mortar Made of Recycled Sand from C&D, Procedia Engineering 109 (2015) 240-247.
[134] Z. Zhao, S. Rémond, D. Damidot, W. Xu, Influence of fine recycled concrete aggregates on the properties of mortars, Construction and Building Materials 81 (2015) 179-186.
[135] N.K. Lee, K.T. Koh, M.O. Kim, G.H. An, G. Ryu, Physicochemical changes caused by reactive MgO in alkali-activated fly ash/slag blends under accelerated carbonation, Ceramics International 43(15) (2017) 12490-12496.
[136] R. Chandrasekaran, S. Saha, Enhancement of the properties of fly ash based geopolymer paste by incorporating ground granulated blast furnace slag, onstruction and Building Materials 146 (2017) 615-620.
[137] M. Abo El-Wafa, K. Fukuzawa, Early-Age Strength of Alkali-Activated Municipal Slag–Fly Ash–Based Geopolymer Mortar, Journal of Materials in Civil Engineering 30(4) (2018) 04018040.
[138] A. Ardani, J. Tanesi, Surface Resistivity Test Evaluation as an Indicator of the Chloride Permeability of Concrete, 2012.
[139] C.-L. Hwang, V.-A. Tran, Engineering and Durability Properties of Self-Consolidating Concrete Incorporating Foamed Lightweight Aggregate, Journal of Materials in Civil Engineering 28(9) (2016) 04016075.
[140] C.-L. Hwang, D.-H. Vo, V.-A. Tran, M.D. Yehualaw, Effect of high MgO content on the performance of alkali-activated fine slag under water and air curing conditions, Construction and Building Materials 186 (2018) 503-513.
[141] I. Mehdipour, K.H. Khayat, Effect of particle-size distribution and specific surface area of different binder systems on packing density and flow characteristics of cement paste, Cement and Concrete Composites 78 (2017) 120-131.
[142] Y.-m. Gu, Y.-h. Fang, D. You, Y.-f. Gong, C.-h. Zhu, Properties and microstructure of alkali-activated slag cement cured at below- and about-normal temperature, Construction and Building Materials 79 (2015) 1-8.
[143] S.A. Bernal, J.L. Provis, V. Rose, R.M. de Gutiérrez, High-Resolution X-ray Diffraction and Fluorescence Microscopy Characterization of Alkali-Activated Slag-Metakaolin Binders, Journal of the American Ceramic Society 96(6) (2013) 1951-1957.
[144] A.R. Brough, A. Atkinson, Sodium silicate-based, alkali-activated slag mortars: Part I. Strength, hydration and microstructure, Cement and Concrete Research 32(6) (2002) 865-879.
[145] J.I. Escalante-García, A.F. Fuentes, A. Gorokhovsky, P.E. Fraire-Luna, G. Mendoza-Suarez, Hydration Products and Reactivity of Blast-Furnace Slag Activated by Various Alkalis, Journal of the American Ceramic Society 86(12) (2003) 2148-2153.
[146] Y. Yi, M. Liska, A. Al-Tabbaa, Properties and microstructure of GGBS–magnesia pastes, Advances in Cement Research 26(2) (2014) 114-122.
[147] F. Jin, A. Al-Tabbaa, Thermogravimetric study on the hydration of reactive magnesia and silica mixture at room temperature, Thermochimica Acta 566(Supplement C) (2013) 162-168.
[148] G.M. Kim, H.R. Khalid, H.J. Kim, H.K. Lee, Alkali activated slag pastes with surface-modified blast furnace slag, Cement and Concrete Composites 76 (2017) 39-47.
[149] M.S. Kim, Y. Jun, C. Lee, J.E. Oh, Use of CaO as an activator for producing a price-competitive non-cement structural binder using ground granulated blast furnace slag, Cement and Concrete Research 54 (2013) 208-214.
[150] P. Parashar, V. Sharma, D.D. Agarwal, N. Richhariya, Rapid synthesis of hydrotalcite with high antacid activity, Materials Letters 74 (2012) 93-95.
[151] K. Rozov, U. Berner, C. Taviot-Gueho, F. Leroux, G. Renaudin, D. Kulik, L.W. Diamond, Synthesis and characterization of the LDH hydrotalcite–pyroaurite solid-solution series, Cement and Concrete Research 40(8) (2010) 1248-1254.
[152] T.-P. Huynh, D.-H. Vo, C.-L. Hwang, Engineering and durability properties of eco-friendly mortar using cement-free SRF binder, Construction and Building Materials 160 (2018) 145-155.
[153] P. Duxson, J.L. Provis, G.C. Lukey, S.W. Mallicoat, W.M. Kriven, J.S.J. van Deventer, Understanding the relationship between geopolymer composition, microstructure and mechanical properties, Colloids and Surfaces A: Physicochemical and Engineering Aspects 269(1) (2005) 47-58.
[154] R.P. Venkatesan, K.C. Pazhani, Strength and durability properties of geopolymer concrete made with Ground Granulated Blast Furnace Slag and Black Rice Husk Ash, KSCE Journal of Civil Engineering 20(6) (2016) 2384-2391.
[155] Q.L. Yu, P. Spiesz, H.J.H. Brouwers, Development of cement-based lightweight composites – Part 1: Mix design methodology and hardened properties, Cement and Concrete Composites 44 (2013) 17-29.
[156] H. Uysal, R. Demirboğa, R. Şahin, R. Gül, The effects of different cement dosages, slumps, and pumice aggregate ratios on the thermal conductivity and density of concrete, Cement and Concrete Research 34(5) (2004) 845-848.
[157] H. Yuan, Y. Shi, Z. Xu, C. Lu, Y. Ni, X. Lan, Effect of nano-MgO on thermal and mechanical properties of aluminate cement composite thermal energy storage materials, Ceramics International 40(3) (2014) 4811-4817.
[158] B. Xu, H. Ma, Z. Li, Influence of magnesia-to-phosphate molar ratio on microstructures, mechanical properties and thermal conductivity of magnesium potassium phosphate cement paste with large water-to-solid ratio, Cement and Concrete Research 68 (2015) 1-9.
[159] C.-L. Hwang, T.-P. Huynh, Effect of alkali-activator and rice husk ash content on strength development of fly ash and residual rice husk ash-based geopolymers, Construction and Building Materials 101, Part 1 (2015) 1-9.
[160] R.M. Ferraro, A. Nanni, Effect of off-white rice husk ash on strength, porosity, conductivity and corrosion resistance of white concrete, Construction and Building Materials 31 (2012) 220-225.
[161] J.H. Bungey, The validity of ultrasonic pulse velocity testing of in-place concrete for strength, NDT International 13(6) (1980) 296-300.
[162] W. Ren, J. Xu, E. Bai, Strength and Ultrasonic Characteristics of Alkali-Activated Fly Ash-Slag Geopolymer Concrete after Exposure to Elevated Temperatures, Journal of Materials in Civil Engineering 28(2) (2016) 04015124.
[163] M. Liska, Properties and Applications of Reactive Magnesia Cements in Porous Blocks, University of Cambridge 2010.
[164] P. Yu, R.J. Kirkpatrick, B. Poe, P.F. McMillan, X. Cong, Structure of Calcium Silicate Hydrate (C‐S‐H): Near‐, Mid‐, and Far‐Infrared Spectroscopy, Journal of the American Ceramic Society 82(3) (1999) 742-748.
[165] M.L. Berndt, Properties of sustainable concrete containing fly ash, slag and recycled concrete aggregate, Construction and Building Materials 23(7) (2009) 2606-2613.
[166] H. Yaprak, H.Y. Aruntas, I. Demir, O. Simsek, G. Durmus, Effects of the fine recycled concrete aggregates on the concrete properties, International Journal of Physical Sciences 6(10) (2011) 2455-2461.
[167] C.-L. Hwang, C.-H. Chiang, T.-P. Huynh, D.-H. Vo, B.-J. Jhang, S.-H. Ngo, Properties of alkali-activated controlled low-strength material produced with waste water treatment sludge, fly ash, and slag, Construction and Building Materials 135 (2017) 459-471.
[168] A.M. Rashad, Properties of alkali-activated fly ash concrete blended with slag, Iran. J. Mater. Sci. Eng 10(1) (2013) 57-64.
[169] C.S. Poon, Z.H. Shui, L. Lam, H. Fok, S.C. Kou, Influence of moisture states of natural and recycled aggregates on the slump and compressive strength of concrete, Cement and Concrete Research 34(1) (2004) 31-36.
[170] M. Nedeljković, Z. Li, G. Ye, Setting, Strength, and Autogenous Shrinkage of Alkali-Activated Fly Ash and Slag Pastes: Effect of Slag Content, Materials (Basel, Switzerland) 11(11) (2018) 2121.
[171] S.-H. Chen, H.-Y. Wang, J.-W. Jhou, Investigating the properties of lightweight concrete containing high contents of recycled green building materials, Construction and Building Materials 48 (2013) 98-103.
[172] L. Evangelista, J. de Brito, Mechanical behaviour of concrete made with fine recycled concrete aggregates, Cement and Concrete Composites 29(5) (2007) 397-401.
[173] S.C. Kou, C.S. Poon, D. Chan, Influence of fly ash as a cement addition on the hardened properties of recycled aggregate concrete, Materials and Structures 41(7) (2008) 1191-1201.
[174] L. Evangelista, J. de Brito, Durability performance of concrete made with fine recycled concrete aggregates, Cement and Concrete Composites 32(1) (2010) 9-14.
[175] A. Yerramala, B. Desai, Influence of fly ash replacement on strength properties of cement mortar, International Journal of Engineering Science and Technology (2012) 3657-3665.
[176] R. Kurda, J. de Brito, J.D. Silvestre, Water absorption and electrical resistivity of concrete with recycled concrete aggregates and fly ash, Cement and Concrete Composites 95 (2019) 169-182.
[177] F. Jin, A. Abdollahzadeh, A. Al-Tabbaa, Effect of different MgO on the hydration of MgO-activated granulated ground blastfurnace slag paste, Proc. Int. Conf. Sustain. Constr. Mater. Technol., Kyoto, Japan, 2013, p. 4.
[178] M.G. Hernández, M.A.G. Izquierdo, A. Ibáñez, J.J. Anaya, L.G. Ullate, Porosity estimation of concrete by ultrasonic NDE, Ultrasonics 38(1) (2000) 531-533.
[179] A. Lorenzi, F. Teston Tisbierek, L.C. Silva Filho, Ultrasonic pulse velocity analysis in concrete specimens, 2007.
[180] V.M. Malhotra, Testing hardened concrete: nondestructive methods, Iowa State Press1976.
[181] W.H. Kwan, M. Ramli, K.J. Kam, M.Z. Sulieman, Influence of the amount of recycled coarse aggregate in concrete design and durability properties, Construction and Building Materials 26(1) (2012) 565-573.
[182] R. Latif Al-Mufti, A.N. Fried, The early age non-destructive testing of concrete made with recycled concrete aggregate, Construction and Building Materials 37 (2012) 379-386.
[183] O. Sengul, Use of electrical resistivity as an indicator for durability, Construction and Building Materials 73 (2014) 434-441.
[184] H. Layssi, P. Ghods, A.R. Alizadeh, M. Salehi, Electrical resistivity of concrete, Concrete International 37(5) (2015) 41-46.
[185] S.C. Pal, A. Mukherjee, S.R. Pathak, Investigation of hydraulic activity of ground granulated blast furnace slag in concrete, Cement and Concrete Research 33(9) (2003) 1481-1486.
[186] M. Uysal, K. Yilmaz, M. Ipek, The effect of mineral admixtures on mechanical properties, chloride ion permeability and impermeability of self-compacting concrete, Construction and Building Materials 27(1) (2012) 263-270.
[187] P. Azarsa, R. Gupta, Electrical resistivity of concrete for durability evaluation: a review, Advances in Materials Science and Engineering 2017 (2017).
[188] O. Sengul, O.E. Gjørv, Electrical resistivity measurements for quality control during concrete construction, ACI Materials Journal 105(6) (2008) 541.
[189] J. Sun, Z. Chen, Influences of limestone powder on the resistance of concretes to the chloride ion penetration and sulfate attack, Powder Technology 338 (2018) 725-733.
[190] H.-A. Nguyen, T.-P. Chang, J.-Y. Shih, C.-T. Chen, T.-D. Nguyen, Engineering properties and durability of high-strength self-compacting concrete with no-cement SFC binder, Construction and Building Materials 106 (2016) 670-677.

無法下載圖示 全文公開日期 2024/05/07 (校內網路)
全文公開日期 本全文未授權公開 (校外網路)
全文公開日期 2069/05/07 (國家圖書館:臺灣博碩士論文系統)
QR CODE