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      Potential of replacing clay soil by rice husk ash (RHA) in enhancing the properties of compressed earth blocks (CEBs)

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          Study on properties of rice husk ash and its use as cement replacement material

          This paper investigates the properties of rice husk ash (RHA) produced by using a ferro-cement furnace. The effect of grinding on the particle size and the surface area was first investigated, then the XRD analysis was conducted to verify the presence of amorphous silica in the ash. Furthermore, the effect of RHA average particle size and percentage on concrete workability, fresh density, superplasticizer (SP) content and the compressive strength were also investigated. Although grinding RHA would reduce its average particle size (APS), it was not the main factor controlling the surface area and it is thus resulted from RHA's multilayered, angular and microporous surface. Incorporation of RHA in concrete increased water demand. RHA concrete gave excellent improvement in strength for 10% replacement (30.8% increment compared to the control mix), and up to 20% of cement could be valuably replaced with RHA without adversely affecting the strength. Increasing RHA fineness enhanced the strength of blended concrete compared to coarser RHA and control OPC mixtures.
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            Reduction in environmental problems using rice-husk ash in concrete

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              Study on concrete with rice husk ash

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Environment, Development and Sustainability
                Environ Dev Sustain
                Springer Science and Business Media LLC
                1387-585X
                1573-2975
                March 2021
                April 21 2020
                March 2021
                : 23
                : 3
                : 3474-3486
                Article
                10.1007/s10668-020-00727-9
                37852a3b-ad7c-451e-9edf-47f32199aae4
                © 2021

                https://www.springer.com/tdm

                https://www.springer.com/tdm

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