Chemical and Thermal Characterization of Cement Mortar Containing Ground Palm Oil Fuel Ash as a Partial Cement Replacement

Yousuf Sumra , Shafigh Payam , Ahmed Channa Iftikhar , M. Rizwan , Ahmed Khan Tanveer , Alsubari Belal , Gul Mustabshirha

Journal of Wuhan University of Technology Materials Science Edition ›› 2023, Vol. 38 ›› Issue (3) : 575 -581.

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Journal of Wuhan University of Technology Materials Science Edition ›› 2023, Vol. 38 ›› Issue (3) : 575 -581. DOI: 10.1007/s11595-023-2733-1
Cementitious Materials

Chemical and Thermal Characterization of Cement Mortar Containing Ground Palm Oil Fuel Ash as a Partial Cement Replacement

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Abstract

This study investigates the influence of using ground palm oil fuel ash (G-POFA) from 10%–30% as cement replacement (by weight) on the cement mortar’s pH under various curing conditions. These findings were supplemented by thermal gravimetric analysis (TGA). Moreover, the resistance of G-POFA blended cement mortars to water absorption and sorptivity was determined. Further, the k-value test was carried out to explain the pozzolanic and filler behavior of G-POFA and to support the results obtained from TGA. It was found that there was no significant impact of several curing conditions on the pH of mortars. The mortar with 10% G-POFA in replacement of cement (G-POFA-10) exhibited the best resistance against water absorption and sorptivity.

Keywords

curing condition / Ca(OH)2 content / k-value / pH / palm oil fuel ash

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Yousuf Sumra, Shafigh Payam, Ahmed Channa Iftikhar, M. Rizwan, Ahmed Khan Tanveer, Alsubari Belal, Gul Mustabshirha. Chemical and Thermal Characterization of Cement Mortar Containing Ground Palm Oil Fuel Ash as a Partial Cement Replacement. Journal of Wuhan University of Technology Materials Science Edition, 2023, 38(3): 575-581 DOI:10.1007/s11595-023-2733-1

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References

[1]

Sumra Y, Payam S, Zainah I. The pH of Cement-based Materials: A Review[J]. Journal of Wuhan University of Technology-Mater. Sci. Ed., 2020, 35(5): 908-924.

[2]

Angst U, Elsener B, Larsen C K, et al. Critical Chloride Content in Reinforced Concrete — a Review[J]. Cement and Concrete Research, 2009, 39(12): 1122-1138.

[3]

Yang H, Liu J, Xue Y, et al. Corrosion Behavior of Steel Fibers in Reactive Powder Concrete with High Volume of Mineral Admixtures[J]. Journal of Wuhan University of Technology-Mater. Sci. Ed., 2020, 35(3): 541-550.

[4]

Tjaronge M W, Caronge M A. Physico-mechanical and Thermal Performances of Eco-friendly Fired Clay Bricks Incorporating Palm Oil Fuel Ash[J]. Materialia, 2021, 17: 101 130.

[5]

Tangchirapat W, Jaturapitakkul C, Chindaprasirt P. Use of Palm Oil Fuel Ash as a Supplementary Cementitious Material for Producing High-strength Concrete[J]. Construction and Building Materials, 2009, 23(7): 2641-2646.

[6]

Kamaruddin S, Goh W I, Abdul Mutalib N A N, et al. Effect of Combined Supplementary Cementitious Materials on the Fresh and Mechanical Properties of Eco-Efficient Self-Compacting Concrete[J]. Arabian Journal for Science and Engineering, 2021, 46(11): 10953-10979.

[7]

Alsubari B, Shafigh P, Jumaat M Z, et al. Palm Oil Fuel Ash as a Partial Cement Replacement for Producing Durable Self-consolidating High-Strength Concrete[J]. Arabian Journal for Science and Engineering, 2014, 39(12): 8507-8516.

[8]

Ranjbar N, Behnia A, Alsubari B, et al. Durability and Mechanical Properties of Self-compacting Concrete Incorporating Palm Oil Fuel Ash[J]. Journal of Cleaner Production, 2016, 112: 723-730.

[9]

Alsubari B, Shafigh P, Jumaat M Z. Utilization of High-volume Treated Palm Oil Fuel Ash to Produce Sustainable Self-compacting Concrete[J]. Journal of Cleaner Production, 2016, 137: 982-996.

[10]

Altwair N M, Johari M A M, Hashim S F S. Strength Activity Index and Microstructural Characteristics of Treated Palm Oil Fuel Ash[J]. Structure, 2011, 5: 6.

[11]

Lothenbach B, Scrivener K, Hooton R D. Supplementary Cementitious Materials[J]. Cement and Concrete Research, 2011, 41(12): 1244-1256.

[12]

Toutanji H, Delatte N, Aggoun S, et al. Effect of Supplementary Cementitious Materials on the Compressive Strength and Durability of Short-term Cured Concrete[J]. Cement and Concrete Research, 2004, 34(2): 311-319.

[13]

Rashad A M. An Investigation on Very High Volume Slag Pastes Subjected to Elevated Temperatures[J]. Construction and Building Materials, 2015, 74: 249-258.

[14]

El-Dash K. Service Life Prediction for Buildings Exposed to Severe Weather[J]. Journal of Asian Architecture and Building Engineering, 2011, 10(1): 211-215.

[15]

Stewart M G, Rosowsky D V. Structural Safety and Serviceability of Concrete Bridges Subject to Corrosion[J]. Journal of Infrastructure Systems, 1998, 4(4): 146-155.

[16]

Awal A S M, Ahussin M W. The Effectiveness of Palm Oil Fuel Ash in Preventing Expansion due to Alkali-Silica Reaction[J]. Cement and Concrete Composites, 1997, 19(4): 367-372.

[17]

Safiuddin M, Abdus Salam M, Jumaat M Z. Utilization of Palm Oil Fuel Ash in Concrete: A Review[J]. Journal of Civil Engineering and Management, 2011, 17(2): 234-247.

[18]

Zhang W, Wu F, Zhang Y. Early Hydration and Setting Process of Fly Ash-blended Cement Paste under Different Curing Temperatures[J]. Journal of Wuhan University of Technology-Mater. Sci. Ed., 2020, 35(3): 551-560.

[19]

Ahmad S. Reinforcement Corrosion in Concrete Structures, Its Monitoring and Service Life Prediction—A Review[J]. Cement and Concrete Composites, 2003, 25(4): 459-471.

[20]

Grubb J A, Limaye H S, Kakade A M. Testing pH of Concrete[J]. Concrete International, 2007, 29(04): 78-83.

[21]

Räsänen V, Penttala V. The pH Measurement of Concrete and Smoothing Mortar Using a Concrete Powder Suspension[J]. Cement and Concrete Research, 2004, 34(5): 813-820.

[22]

Alarcon-Ruiz L, Platret G, Massieu E, et al. The Use of Thermal Analysis in Assessing the Effect of Temperature on a Cement Paste[J]. Cement and Concrete Research, 2005, 35(3): 609-613.

[23]

Mounanga P, Khelidj A, Loukili A, et al. Predicting Ca(OH)2 Content and Chemical Shrinkage of Hydrating Cement Pastes Using Analytical Approach[J]. Cement and Concrete Research, 2004, 34(2): 255-265.

[24]

Younsi A, Turcry P, Aït-Mokhtar A, et al. Accelerated Carbonation of Concrete with High Content of Mineral Additions: Effect of Interactions between Hydration and Drying[J]. Cement and Concrete Research, 2013, 43: 25-33.

[25]

BS. Testing Concrete: Method for Determination of Water Absorption[S]. British Standard 1881–122, 1983

[26]

ASTM. Standard Test Method for Measurement of Rate of Absorption of Water by Hydraulic-cement Concretes[S]. ASTM, 1585-04, 2004

[27]

Lizarazo-Marriaga J, Claisse P, Ganjian E. Effect of Steel Slag and Portland Cement in the Rate of Hydration and Strength of Blast Furnace Slag Pastes[J]. Journal of Materials in Civil Engineering, 2010, 23(2): 153-160.

[28]

McPolin D, Basheer P, Long A. Carbonation and pH in Mortars Manufactured with Supplementary Cementitious Materials[J]. Journal of Materials in Civil Engineering, 2009, 21(5): 217-225.

[29]

Mohammed T U, Otsuki N, Hamada H. Corrosion of Steel Bars in Cracked Concrete under Marine Environment[J]. Journal of Materials in Civil Engineering, 2003, 15(5): 460-469.

[30]

Hobbs D. Concrete Deterioration: Causes, Diagnosis, and Minimising Risk[J]. International Materials Reviews, 2001, 46(3): 117-144.

[31]

Ormellese M, Berra M, Bolzoni F, et al. Corrosion Inhibitors for Chlorides Induced Corrosion in Reinforced Concrete Structures[J]. Cement and Concrete Research, 2006, 36(3): 536-547.

[32]

Ortolan V, Mancio M, Tutikian B. Evaluation of the Influence of the pH of Concrete Pore Solution on the Corrosion Resistance of Steel Reinforcement[J]. Journal of Building Pathology and Rehabilitation, 2016, 1(1): 10

[33]

Plusquellec G, Geiker M, Lindgård J, et al. Determination of the pH and the Free Alkali Metal Content in the Pore Solution of Concrete: Review and Experimental Comparison[J]. Cement and Concrete Research, 2017, 96: 13-26.

[34]

Šiler P, Kolářová I, Sehnal T, et al. The Determination of the Influence of pH Value of Curing Conditions on Portland Cement Hydration[J]. Procedia Engineering, 2016, 151: 10-17.

[35]

Pacheco Torgal F, Miraldo S, Labrincha J A, et al. An Overview on Concrete Carbonation in the Context of Eco-efficient Construction: Evaluation, Use of SCMs and/or RAC[J]. Construction and Building Materials, 2012, 36: 141-150.

[36]

Vimer C, Yu S, Ghandehari M. Probing pH Levels in Civil Engineering Materials[J]. Journal of Materials in Civil Engineering, 2009, 21(2): 51-57.

[37]

Lothenbach B, Winnefeld F. Thermodynamic Modelling of the Hydration of Portland Cement[J]. Cement and Concrete Research, 2006, 36(2): 209-226.

[38]

Safiuddin M. Development of Self-consolidating High Performance Concrete Incorporating Rice Husk Ash [D], 2008 Waterloo: University of Waterloo.

[39]

Code C. CEB-FIB Model Code 1990, Design Code, Thomas Telford[M], 1993 Swizerland: Lausanne.

[40]

Neville A. Property of Concrete[M], 1995 London: Longman.

[41]

Alnahhal M F, Alengaram U J, Jumaat M Z, et al. Effect of Aggressive Chemicals on Durability and Microstructure Properties of Concrete Containing Crushed New Concrete Aggregate and Non-traditional Supplementary Cementitious Materials[J]. Construction and Building Materials, 2018, 163: 482-495.

[42]

Taylor H F. Proposed Structure for Calcium Silicate Hydrate Gel[J]. Journal of the American Ceramic Society, 1986, 69(6): 464-467.

[43]

Bamaga S O, Hussin M W, Ismail M A. Palm Oil Fuel Ash: Promising Supplementary Cementing Materials[J]. KSCE Journal of Civil Engineering, 2013, 17(7): 1 708-1 713.

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