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    <subfield code="a">Khan,Tanveer Ahmed</subfield>
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    <subfield code="a">Synthesis of carbon material via pyrolysis and hydrothermal carbonization of rubberwood and its effect on thermal and mechanical properties of medium density fiberboard/</subfield>
    <subfield code="c">Tanveer Ahmed Khan</subfield>
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    <subfield code="a">The medium density fiber boards (MDF) provide an alternative to structural  materials from furniture to flooring to crown molding. It is made from a slurry  containing wood fibers and a thermoset resin usually urea formaldehyde (UF) bonded  under heat and pressure. An MDF board should have high dimensional stability and  high mechanical strength under adverse atmospheric conditions of temperature and  humidity; these requirements strongly depend on the board processing conditions.  Wood fibers have low thermal conductivity thereby imposing severe inhomogeneity  during the curing process and leads to low internal bonding, poor modulus of rupture  and low dimensional stability. The thermal conductivity of the wood fiber could be  increased by nano/micro structured fillers. It is hypothesized that carbon materials, such  as carbon black, carbon nanotubes, carbon fibers would offer high thermal conductivity  considering the carbon&#x2013;carbon bonding between wood fibers and carbon materials. In  this work, the carbon material was synthesized by pyrolysis and hydrothermal  carbonization (HTC) of rubber wood fibers and characterized by CHNOS analyzer, Xray  diffraction (XRD), Brunauer, Emmett and Teller (BET) and scanning electron  microscope (SEM). The carbon material and yield percentage obtained from pyrolysis  method (operated at 500 &#xB0;C for 4 hours) was 76.22 and 22 respectively. In addition, the  carbon material and yield percentage of HTC method (operated at 260 &#xB0;C for 7 hours  and 35 times water) was 68.10 and 59.7 respectively. The prepared carbon materials  were used as fillers in urea-formaldehyde adhesive in different weight concentration up  to 5%. The dispersion of carbon materials into UF resin matrix were evaluated using  Thermo gravimetric Analysis (TGA), Differential Scanning Calorimetry (DSC), Fourier  Transform Infrared (FTIR), X-ray diffraction (XRD) and solution rheology. The  uniform dispersion of the carbon material in the resin undertaken by mechanical stirring  is confirmed on curing. The result from the curing reaction showed an increasing trend  with the addition of carbon material concentration. The X-ray-based measurement of  CrI indicates that carbon material increased the crystallinity of UF resin, whereas the  maximum value was observed at CF-1 for both pyrolysis and HTC method i.e., 86.6%  and 87.3 %. The MDF was prepared by mixing of rubber wood fibers and UF/carbon  material, resin at different weight percentages, i.e. 1, 2.5, 3.5 and 5. The mixing of  carbon materials enhanced the heat transfer during the hot pressing of MDF. The core  temperature reached 100 &#xB0;C in 72 seconds on the board made using carbon material  synthesized by pyrolysis, whereas, it reached in 74 seconds in the case of carbon  material synthesized by HTC. These values are on the lower side compared to the  control board made without carbon material i.e., 84 seconds. The internal bonding (IB)  strength and the modulus of rupture (MOR) estimated for the MDF is observed to have  a maximum of 1 wt. % concentration of carbon material prepared by both pyrolysis and  HTC method. The IB and MOR values of boards made by 1 wt. % of carbon material  synthesized by pyrolysis and HTC are 0.71 MPa, 0.72 MPa and 37.63 MPa, 37.72 MPa,  respectively which are significantly higher than the boards made without carbon  material i.e, IB and MOR values are 0.56 MPa and 32.31 MPa respectively. The HTC  method was optimized in order to obtain the best synthesis conditions. The best  operating conditions such as temperature, time and water were investigated using  response surface methodology. The carbon content % was taken a response and  maximum carbon content % was observed at temperature 260 &#xB0;C, water 35 times and  time 7 hours.</subfield>
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