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  <titleInfo>
    <title>Effect of chemically pretreated paper mill sludge ash on the properties of geopolymer mortar</title>
  </titleInfo>
  <name type="personal">
    <namePart>Nabilah Mamat</namePart>
    <role>
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  <genre authority="marc">theses</genre>
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    <dateIssued encoding="marc">2021</dateIssued>
    <issuance>monographic</issuance>
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  <language>
    <languageTerm authority="iso639-2b" type="code">eng</languageTerm>
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  <physicalDescription>
    <extent>xiii, 90 pages : illustrations (some color) ; 30 cm. + 1 CD ROM</extent>
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  <abstract>Geopolymer  has  been  well  known  as  a  sustainable  alternative  binder  to  ordinary  Portland cement (OPC) because of it properties such as high compressive strength, good  chemical and thermal resistance and low toxic composition. In geopolymer, utilization  of fly ash as the main aluminosilicate source has been widely used due to high amount  of silica (SiO2) and alumina (Al2O3). However, abundant of industrial waste are being  released from various industries has become difficulties in their disposal and will affect  to  the  environment.  Therefore,  it  is  possible  to  use  different  types  of  wastes  such  as  paper mill sludge ash (PMSA) mixed with fly ash as raw materials. This combination  would help to provide better or comparable strength and durability properties and also  help  in  reducing  the  percentages  of waste by product.  However, this  waste cannot be  used  alone  in  the  geopolymer  because  of  insufficient  amount  of  SiO2 and  Al2O3 and  high amount of Ca. The present of high amount of Ca in geopolmyer contributed to the  rapid setting time and low workability. Therefore, this study was proposed to treat the  paper  mill  sludge  ash  and  investigate  the  effect  of  pretreated  PMSA  in  geopolymer  mortar  at  various  curing  temperature  (30°C  and  90°C).  PMSA  has  been  treated  with  hydrochloric acid (HCl) at various molarities which is 0.5 M, 1.0 M and 1.5 M. A series  of test were conducted to determine the properties of geopolymer containing pretreated  PMSA at various percentages of 5%, 10% and 15% by weight of fly ash. Flowability  and  setting  time  test  were  conducted  to  determine  the  rheological  properties  while  compressive strength, porosity and degree of reaction tests were conducted to determine  the mechanical properties. Meanwhile, XRF and XRD were tested on raw materials of  fly ash, PMSA and pretreated PMSA to ascertain the oxide composition and crystalline  material.  Inductively  coupled  plasma  mass  spectrometry  (ICPMS)  was  tested  on  solution of pretreatment PMSA to determine the heavy metal concentration. Meanwhile,  Fourier  Transform  Infrared  Spectroscopy  (FTIR)  testing  was  conducted  to  identify  chemical bonds. Based on the experimental results, by treated PMSA in acid washing  using  HCl  has  significantly  enhanced  the  oxide  percentages  such  as  SiO2  (8.23%  to 44.00%)  and  Al2O3 (4.36%  to  19.60%)  and  reduce  the  amount  of  CaO  (52.61%  to  22.00%). High amount of SiO2and Al2O3 have a major role to play in the geopolymer  backbone formation (Si–O–Al and Si–O–Si bonds). Meanwhile, addition percentages of  CaO in aluminosilicate source have produced the secondary product which is CSH gel  in geopolymer matrix as Ca–O bond is more susceptible to break the bonds than Al–O  and  Si–O.  Each  oxide  composition  is  also  functioning  in  the  production  of  final  structure by controlling the geopolymer gel and crystal growth hence contribute to the  structural  development.  The  optimum  percentages  inclusion  of  pretreated  PMSA  in  geopolymer was 5% with 1.5 M of HCl. This combination has significantly prolonged  the  setting  time, high workability, higher in compressive strength, reduce the porosity  and  produce  denser  microstructure.  Exposure  to  90  °C  of  curing  temperature  has  accelerated the  geopolymerization process and enhances  the formation of geopolymer  gel  in  geopolymer  framework.   Conclusively,  the  use  of  pretreated  PMSA  in  geopolymer  would  reduce  quantity  of  wastes  thrown  at  landfill  and  promote  the  development  of  construction  materials  contributing  towards  cleaner  environment  for  healthier community.</abstract>
  <targetAudience authority="marctarget">specialized</targetAudience>
  <note type="statement of responsibility">Nabilah Mamat</note>
  <note>Faculty of Civil Engineering Technology</note>
  <note>Thesis (Master of Science) -- Universiti Malaysia Pahang – 2021</note>
  <note>Includes bibliographical references</note>
  <subject authority="lcsh">
    <name type="corporate">
      <namePart>Faculty of Civil Engineering Technology</namePart>
    </name>
    <topic>Dissertations</topic>
  </subject>
  <subject authority="lcsh">
    <topic>Universities and colleges</topic>
    <topic>Dissertations</topic>
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  <subject authority="lcsh">
    <topic>Theses</topic>
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  <identifier type="isbn">THE0009185(Local)</identifier>
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    <recordCreationDate encoding="marc">220324</recordCreationDate>
    <recordChangeDate encoding="iso8601">20251125110003.0</recordChangeDate>
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      <languageTerm authority="iso639-2b" type="code">eng</languageTerm>
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