Investigation on Basalt Based High Performance Concrete

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Open Access

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Year : | [if 1553 equals=””] Volume :11 [else] Volume :11[/if 1553] | [if 424 equals=”Regular Issue”]Issue[/if 424][if 424 equals=”Special Issue”]Special Issue[/if 424] [if 424 equals=”Conference”][/if 424] : 10 | Page : 1-8

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    Diwakar B.J., Shyalaja N., Kannam Praveen

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  1. M-Tech in Construction Technology and Management, Assistant Professor, Associate Professor, REVA University, School of Civil Engineering, REVA University, School of Civil Engineering, REVA University, Karnataka, Karnataka, Karnataka, India, India, India
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Abstract

nThe study aims to explore the potential of basalt fibers and metakaolin in enhancing the mechanical, durability, and microstructural characteristics of concrete. The investigation begins with a thorough literature review is conducted to ascertain the present status of information regarding metakaolin, basalt fibers, and their impact on concrete. The experimental program involves the formulation of concrete mixtures with varying percentages of basalt fibers and metakaolin, alongside a control mixture without these additions. At various stages of the curing process, mechanical attributes such split tensile strength and compressive strength are assessed. The results are compared with the control mixture to assess the influence of basalt fibers and metakaolin on the strength development of HPC. The aim is to determine the effectiveness of basalt fibers and metakaolin in enhancing the resistance of HPC to environmental degradation factors. The research findings reveal that the inclusion of basalt fibers and metakaolin in high-performance concrete leads to improvements in mechanical properties, such as increased compressive strength, and split tensile strength.

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Keywords: Basalt fibers, Metakaolin, Mechanical Properties, Durability and High Performance Concrete etc.

n[if 424 equals=”Regular Issue”][This article belongs to Journal of Polymer and Composites(jopc)]

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[/if 424][if 424 equals=”Special Issue”][This article belongs to Special Issue under section in Journal of Polymer and Composites(jopc)][/if 424][if 424 equals=”Conference”]This article belongs to Conference [/if 424]

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How to cite this article: Diwakar B.J., Shyalaja N., Kannam Praveen Investigation on Basalt Based High Performance Concrete jopc ; 11:1-8

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How to cite this URL: Diwakar B.J., Shyalaja N., Kannam Praveen Investigation on Basalt Based High Performance Concrete jopc {cited };11:1-8. Available from: https://journals.stmjournals.com/jopc/article=/view=0

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References

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  1. Siddique, R. and Klaus, J. Influence of metakaolin on the properties of mortar and concrete: A review. Applied Clay Science, 2009; 43(3-4): 392–
  2. Siddique, R. Utilization of silica fume in concrete: Review of hardened properties. Resources, Conservation and Recycling, 2011; 55(11): 923–
  3. Khan, M.I. and Siddique, R. Utilization of silica fume in concrete: Review of durability properties. Resources, Conservation and Recycling, 2011; 57:30–
  4. Ayub T., Shafiq, N. and Nuruddin, M.F. Mechanical properties of high-performance concrete reinforced with basalt fibers. Procedia Engineering, 2014; 77: 131–
  5. Sadrmomtazi, A., Tahmouresi, B. and Saradar, A. Effects of silica fume on mechanical strength and microstructure of basalt fiber reinforced cementitious composites (BFRCC). Construction and Building Materials, 2018; 162:321–
  6. Ahmad, M.R. and Chen, B. Effect of silica fume and basalt fiber on the mechanical properties and microstructure of magnesium phosphate cement (MPC) mortar. Construction and Building Materials, 2018; 190: 466–
  7. Ali, N., Canpolat, O., Aygörmez, Y. and Al-Mashhadani, M.M. Evaluation of the 12–24 mm basalt fibers and boron waste on reinforced metakaolin-based geopolymer. Construction and Building Materials, 2020; 251: 118976p.
  8. Yonggui, W., Shuaipeng, L., Hughes, P. and Yuhui, F. Mechanical properties and microstructure of basalt fibre and nano-silica reinforced recycled concrete after exposure to elevated temperatures. Construction and Building Materials, 2020; 247: 118561p.
  9. Şahin, F., Uysal, M., Canpolat, O., Aygörmez, Y., Cosgun, T. and Dehghanpour, H. Effect of basalt fiber on metakaolin-based geopolymer mortars containing rilem, basalt and recycled waste concrete aggregates. Construction and Building Materials, 2021; 301: 124113p.
  10. Liu, K., Wang, S., Quan, X., Duan, W., Nan, Z., Wei, T., Xu, F. and Li, B. Study on the mechanical properties and microstructure of fiber reinforced metakaolin-based recycled aggregate concrete. Construction and Building Materials, 2021; 294: 123554p.
  11. J Sanjith, R Prabhakara, MS Sudarshan, Jayachandra. Investigations on Compression Behavior of Short Reinforced NSC Columns, Sustainability Trends and Challenges in Civil Engineering, 2022; 62:135–
  12. Shylaja N, Anusha P Gowda Strength and Durability of Concrete by Bacterial Power as Replacement International Journal of Future Generation Communication and Networking 13, No. 3, (2020), pp. 3013–3019.
  13. SK Tengli, AB Reddy. A Study on Hardened Properties of Concrete by Using Industrial Wastes as Replacement-SAMRIDDHI: A Journal of Physical Science, 2019;11:124-132p.
  14. Katkhuda H, Shatarat N. Improving the mechanical properties of recycled concrete aggregate using chopped basalt fibers and acid treatment, Construction and Building Materials. 2017 ;140:
    328–
  15. Yasser E. Ibrahim, Musa Adamu, Mohammad Louay Marouf, Mechanical Performance of Date-Palm-Fiber-Reinforced Concrete Containing Silica Fume, Buildings, 2022; 12:1642–
  16. Abbass, W, Khan, M.I, Mourad, S. Evaluation of mechanical properties of steel fiber reinforced concrete with different strengths of concrete, Build. Mater. 2018;168: 556–569p.
  17. Jamshaid, H. Mishra, R.K.; Raza, A. Hussain, U. Rahman, L. Nazari, S. Chandan, V. Muller, M. Choteborsky, R. Natural Cellulosic Fiber Reinforced Concrete: Influence of Fiber Type and Loading Percentage on Mechanical and Water Absorption Performance, Materials, 2022; 15:
    874–
  18. Kizilkanat, Ahmet B, Mechanical properties and fracture behavior of basalt and glass fiber reinforced concrete: An experimental study, Construction and Building Materials, 2015; 218–
  19. Iyer, Padmanabhan, Sara Y. Kenno, and Sreekanta Das, Mechanical Properties of fiber Reinforced Concrete Made with Basalt Filament Fibers, Journal of Materials in Civil Engineering, 2015;
    425–

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[if 424 not_equal=””]Special Issue[else]Published[/if 424] Open Access Original Research

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Journal of Polymer and Composites

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[if 344 not_equal=””]ISSN: 2321–2810[/if 344]

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Volume 11
[if 424 equals=”Regular Issue”]Issue[/if 424][if 424 equals=”Special Issue”]Special Issue[/if 424] [if 424 equals=”Conference”][/if 424] 10
Received September 7, 2023
Accepted November 30, 2023
Published

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