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    <subfield code="a">Syahrul Ramadhan Ahmad Kamal Ariffin,</subfield>
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    <subfield code="a">Optimization of process parameters for spiral making process /</subfield>
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    <subfield code="a">The quality of paper produced by paper machine is very much depends on permeability  of dryer fabrics. For that reason, surface profile of the dryer fabrics should be consistent.  To  achieve  this  consistency,  the  spiral  used  to  produce  the  dryer  fabrics  must  follow  stringent  specifications  in  terms  of  nominal  size  and  tolerance.  However,  with  six independent process variables, the formation of spiral size during spiral making process is not  as  easy  task  as expected and may lead to inconsistency.  This research  focus  on  investigating and understanding the spiral making process in a more systematic method. The objectives of this research are to evaluate interactions between  dependent  process  variables and independent process variable as well as interactions among independent  variables,  to determine the most dominant parameters that affect the formation of spiral  making process and to optimize and validate process parameters setting for accurate and  precise process control.  To accomplish these objectives, Analysis of Variance (ANOVA)  and Regression Analysis (RA) are conducted using Minitab19 statistical software. The  experimental design strategy  is  conducted systematically based on Box-Behnken method.  Six  independent  variables  or  process  parameters  are  identified  in  the  spiral  making  process.  One variable is fixed throughout the whole experiment, the variable is speed,  and the speed value is set at 1600 rpm. This  is to comply to the maximum production  output. The  independent variables  that  are  manipulated for this experiment are  tension,  temperature 1, temperature 2, gap 1 and gap 2. Each independent variable  has  three levels.  Based on these information, 46 experimental runs have been configured by Box-Behnken  method for data collection of independent variables effects on dependent variables. The  dependent variables or responses are spiral width dimension and spiral height dimension.  The machine and material used for data collection is Leo  horizontal winding machine and  man-made polyester, respectively.  Initial and final analysis of variance and regression  analysis  were  performed.  The  initial  analysis  was  performed  to  identify  insignificant  variations for elimination prior to final analysis.  Final analysis then was performed to  obtain better regression model. Based on the analysis of variance and regression analysis,  it was found that the strong linear relationship exists between independent variables and  dependent variables.  Four process parameters; tension, temperature 2, gap 1 and gap 2,  were found to affect spiral width dimension. Gap 2 was found to be the only process  parameter to affect spiral height dimension. From the analysis, it was also found the most  dominant parameter contributes to spiral width dimension is tension. The contribution is  56.71%.  As  for  spiral  height  dimension,  the  most  dominant  parameter  is  gap  2  with  91.62%. By using the improved regression model acquired by the final analysis, process  optimization  was  performed.  The  optimized  parameters  for  good  dimensional  size  of  spiral are 32.78% for tension, 114&#xB0;C for temperature 1, 118&#xB0;C for temperature 2, 4.25  mm for gap 1 and 4.1086 mm for gap 2. This result is validated experimentally. The data  were  re-collected  and  re-analyzed.  This  confirmation  test  leads  to  improvement  of  process  capability  indices  Cpk  and  Cpm  of  spiral  width  dimension  and  spiral  height  dimension.  For  spiral  width  dimension,  the  Cpk  and  Cpm  values  are  2.23  and  1.91  respectively. For spiral height dimension, Cpk  and Cpm  values are 3.87 and 3.02.  These  values show the optimized process parameters capable to produce spiral dimension close  to the specification requirement</subfield>
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