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  <controlfield tag="005">20260520000926.0</controlfield>
  <controlfield tag="008">260224s2011    xxu                      </controlfield>
  <datafield tag="245" ind1="0" ind2="0">
    <subfield code="a">Flow-field deflection within a cold small-scale model for a down-fired 300 MWe utility boiler at asymmetric staged-air distribution</subfield>
  </datafield>
  <datafield tag="260" ind1=" " ind2=" ">
    <subfield code="a"></subfield>
    <subfield code="b"></subfield>
    <subfield code="c">ene./feb. 2011</subfield>
  </datafield>
  <datafield tag="270" ind1=" " ind2=" ">
    <subfield code="a">01/04/2011 ; 01/04/2011</subfield>
  </datafield>
  <datafield tag="300" ind1=" " ind2=" ">
    <subfield code="a">11 p. ; 86-96</subfield>
  </datafield>
  <datafield tag="520" ind1=" " ind2=" ">
    <subfield code="a">Transcripci&#xF3;n del resumen del autor. Deflected flow fields and large combustion differences between zones near front and rear walls have been found in Mitsui Babcock Energy Limited (MBEL) down-fired pulverized-coal boilers under a symmetric air distribution. To eliminate or mitigate the flow-field deflection and achieve relatively symmetric combustion in these boilers, the distribution of the staged air between the front and rear walls was adjusted to construct an asymmetric staged-air distribution. Cold airflow experiments over a wide range of asymmetric staged-air distributions [viz., differences in the ratio of staged-air mass flux between the front and rear walls (Rd) of -50, -25, 0, 13, 25, and 50%] were conducted within a small-scale furnace of a MBEL down-fired pulverized-coal 300 MWe utility boiler. At settings of Rd = -50, -25, 0, and 13%, there was a deflected flow field in the lower furnace, and this airflow was directed upward later near the front wall than near the rear wall. With Rd increasing from -50 to 13%, the flow-field deflection weakened. For settings of Rd = 25 and 50%, there was another flow-field deflection, with the downward airflow reversing direction earlier near the front wall than near the rear wall. With an increase in Rd from 25 to 50%, the flow-field deflection became more pronounced. To establish a flow field along with an appropriate airflow reach for more economical operation, an optimal setting of Rd = 13% was found for the staged-air distribution between the front and rear walls.</subfield>
  </datafield>
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    <subfield code="a">1</subfield>
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    <subfield code="t">Energy &amp; fuels</subfield>
    <subfield code="g">25</subfield>
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    <subfield code="c">ARTICULO</subfield>
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  <datafield tag="100" ind1="1" ind2=" ">
    <subfield code="a">Li, Zhengqi</subfield>
    <subfield code="9">38132</subfield>
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    <subfield code="a">Kuang, Min</subfield>
    <subfield code="9">44995</subfield>
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  <datafield tag="100" ind1="1" ind2=" ">
    <subfield code="a">Yang, Pengfei</subfield>
    <subfield code="9">44996</subfield>
  </datafield>
  <datafield tag="999" ind1=" " ind2=" ">
    <subfield code="c">174374</subfield>
    <subfield code="d">174374</subfield>
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    <subfield code="0">0</subfield>
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    <subfield code="7">0</subfield>
    <subfield code="9">242193</subfield>
    <subfield code="a">BAAB</subfield>
    <subfield code="b">BAAB</subfield>
    <subfield code="d">2026-03-05</subfield>
    <subfield code="j">200052391</subfield>
    <subfield code="l">0</subfield>
    <subfield code="p">200052391</subfield>
    <subfield code="r">2026-03-05 16:11:48</subfield>
    <subfield code="w">2026-03-05</subfield>
    <subfield code="y">ARTICULO</subfield>
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