首页> 外文期刊>Transactions of the ASABE >Biomechanical properties of Miscanthus stems.
【24h】

Biomechanical properties of Miscanthus stems.

机译:芒草茎的生物力学特性。

获取原文
获取原文并翻译 | 示例
           

摘要

Miscanthus x giganteus is emerging as one of the most promising crops suitable for biomass production, as it requires low inputs and produces high yields. Miscanthus harvesting using forage and hay equipment presents a challenge because of the thickness and hardness of miscanthus stems. Biomechanical properties of the miscanthus stems were investigated for use in designing better harvesting and size reduction equipment. Material testing equipment was used to study cutting force, shearing strength, tensile strength, and bending strength. The cutting force was determined at the first internode, whereas other properties were determined at internodes one through seven. The shear strength of miscanthus stems at the first or second internode was about double that at internodes three through seven. Tensile strength of the cortex in the cross-sectional direction was about 0.4% of tensile strength in the longitudinal direction. Shearing strength of the cortex was 7.0 and 65.0 MPa and tensile strength was 288.1 and 1.1 MPa in the longitudinal and cross-sectional directions, respectively. The modulus of elasticity of miscanthus stems increased from 4,600 to 11,300 MPa as the internode number increased from first to seventh. The maximum cutting force to cut miscanthus stems was 83.0 N mm-1 for a flat blade and 54.6 N mm-1 for a serrated blade. The specific cutting energy was 87.5 mJ mm-2 for the flat blade and 66.1 mJ mm-2 for the serrated blade. Analysis revealed that the serrated blade employed less energy-demanding modes of failure than the flat blade, resulting in lower cutting energy and reduced cutting force. The results of this study may be useful in designing harvesting and size reduction equipment employing optimum failure modes to minimize the energy or to achieve desired quality of cut.
机译:芒草(Miscanthus x giganteus)正成为最有前途的适合生物质生产的作物之一,因为它需要的投入少且产量高。由于芒can茎的粗细和硬度,使用草料和干草设备收获芒scan提出了挑战。研究了猕猴桃茎的生物力学特性,以用于设计更好的收割和缩小尺寸的设备。使用材料测试设备来研究切削力,剪切强度,拉伸强度和弯曲强度。切削力是在第一个节点间确定的,而其他属性是在节点1至7之间确定的。在第一个或第二个节间,猕猴桃茎的抗剪强度约为节间三至七处的抗剪强度的两倍。皮质在横截面方向上的拉伸强度约为纵向拉伸强度的0.4%。在纵向和横截方向上,皮质的剪切强度分别为7.0和65.0 MPa,抗张强度为288.1和1.1 MPa。随着节间数从第一增加到第七,猕猴桃茎的弹性模量从4,600 MPa增加到11,300 MPa。扁平刀片的最大剪切力为割裂猕猴茎,最大锯齿为83.0 N mm -1 ,锯齿形刀片的最大剪切力为54.6 N mm -1 。扁平刀片的比切割能量为87.5 mJ mm -2 ,而锯齿刀片的比切割能量为66.1 mJ mm -2 。分析表明,锯齿形刀片比平刀片具有更少的能量消耗故障模式,从而降低了切割能量并减小了切割力。这项研究的结果可能对设计采用最佳故障模式以最大程度地减少能量或达到期望的切割质量的收割和小型化设备有用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号