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Optimizing pneumatic conveying of biomass materials.

机译:优化生物质材料的气动输送。

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摘要

Biomass is a readily available but underutilized energy resource. One of the main challenges is the inability of biomass feed stocks like corn stover or wood chips to flow freely without intermittent jamming. This research integrated an automated pneumatic conveying system to efficiently transport biomass into a biomass reactor. Material was held in a storage container until an end effector attached to a 3-axis controller engaged the material to flow through pneumatic vacuum in the carrier fluid of air. The material was disengaged from the carrier fluid through centripetal forces induced by a cyclone separator. As the air was pulled out of the cyclone, the biomass drops out the bottom due to gravitational forces and fell into a secondary storage hopper. The second storage container was for testing purposes only, where the actual apparatus would use a vertically oriented lock hopper to feed material into the biomass reactor. In the experimental test apparatus, sensors measured the storage hopper weight (mass-flow rate), pressure drop from the blower, and input power consumption of the motor. Parameters that were adjusted during testing include pipe diameter, material type, and motor speed. Testing indicated that decreasing the motor speed below its maximum still allows for conveyance of the material without blockage forming in the piping. The data shows that the power consumption of the system can be reduced based on the size and weight of the material introduced to the conveying pipe. Also, conveying certain materials proved to be problematic with particular duct diameters. Ultimately, an optimal duct diameter that can perform efficiently for a broad range of materials was chosen for the given system. Through these improvements, the energy return on investment will be improved for biomass feed stocks, which is taking a step in the right direction to secure the nation's energy independence.
机译:生物质是一种容易获得但未被充分利用的能源。主要挑战之一是诸如玉米秸秆或木片的生物质原料无法自由流动而不会出现间歇性堵塞。这项研究集成了自动气动输送系统,可将生物质有效地输送到生物质反应器中。将物料保持在存储容器中,直到连接到3轴控制器的末端执行器接合物料,使物料流过空气中的气动真空。通过旋风分离器产生的向心力使材料与载液分离。随着空气从旋风分离器中抽出,生物质由于重力而从底部掉出并掉入二级储料斗。第二个存储容器仅用于测试目的,其中实际设备将使用垂直定向的锁定料斗将物料进料到生物质反应器中。在实验测试设备中,传感器测量了储料斗的重量(质量流量),来自鼓风机的压降以及电动机的输入功率消耗。在测试过程中调整的参数包括管道直径,材料类型和电动机速度。测试表明,将电动机速度降低到最大速度以下仍可进行物料运输,而不会在管道中形成堵塞。数据表明,可以根据引入输送管道的物料的尺寸和重量来减少系统的功耗。同样,运输某些材料被证明对于特定的管道直径是有问题的。最终,为给定系统选择了可以对多种材料有效执行的最佳风管直径。通过这些改进,将改善生物质原料的能源投资回报率,这朝着确保国家能源独立的正确方向迈出了一步。

著录项

  • 作者单位

    Northern Illinois University.;

  • 授予单位 Northern Illinois University.;
  • 学科 Engineering Mechanical.;Energy.
  • 学位 M.S.
  • 年度 2011
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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