Towler Brett W, Rupp Cory J, Cunningham Al B, Stoodley Paul
Department of Civil Engineering, Montana State University, Bozeman 59717, USA.
Biofouling. 2003 Oct;19(5):279-85. doi: 10.1080/0892701031000152470.
The mechanical properties of mixed culture biofilms were determined by creep analysis using an AR1000 rotating disk rheometer. The biofilms were grown directly on the rheometer disks which were rotated in a chemostat for 12 d. The resulting biofilms were heterogeneous and ranged from 35 microns to 50 microns in thickness. The creep curves were all viscoelastic in nature. The close agreement between stress and strain ratio of a sample tested at 0.1 and 0.5 Pa suggested that the biofilms were tested in the linear viscoelastic range and supported the use of linear viscoelastic theory in the development of a constitutive law. The experimental data was fit to a 4-element Burger spring and dashpot model. The shear modulus (G) ranged from 0.2 to 24 Pa and the viscous coefficient (eta) from 10 to 3000 Pa. These values were in the same range as those previously estimated from fluid shear deformation of biofilms in flow cells. A viscoelastic biofilm model will help to predict shear related biofilm phenomena such as elevated pressure drop, detachment, and the flow of biofilms over solid surfaces.
使用AR1000旋转圆盘流变仪通过蠕变分析来测定混合培养生物膜的力学性能。生物膜直接生长在流变仪圆盘上,圆盘在恒化器中旋转12天。所得生物膜是异质的,厚度在35微米至50微米之间。蠕变曲线本质上都是粘弹性的。在0.1和0.5帕测试的样品的应力与应变比之间的密切一致性表明生物膜是在线性粘弹性范围内进行测试的,并支持在本构定律的发展中使用线性粘弹性理论。实验数据拟合到一个四元件伯格弹簧和阻尼器模型。剪切模量(G)范围为0.2至24帕,粘性系数(η)范围为10至3000帕。这些值与先前从流动池中生物膜的流体剪切变形估计的值处于相同范围内。粘弹性生物膜模型将有助于预测与剪切相关的生物膜现象,如压力降升高、脱落以及生物膜在固体表面上的流动。