996 resultados para biomechanics


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The propagation characteristics of a visco-elastic fluid in a distensible tube tube are studied. The linear visco-elastic nature of the fluid is described by a complex coefficient of viscosity η*. The equation of motion of the vessel wall takes into account the pulsatile nature of the wall. Results are presented for wave propagation velocity, the resistance and the reactance of the fluid and the wall impedance. It is seen that the visco-elastic influence is significant for high values of the frequency of oscillation in various arterial vessels.

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Peristaltic transport of two fluids occupying the peripheral layer and the core in an elliptic tube is, investigated in elliptic cylindrical co-ordinate system, under long wavelength and low Reynolds number approximations. The effect of peripheral-layer viscosity on the flow rate and the frictional force for a slightly elliptic tube is discussed. The limiting results for the one-fluid model are obtained for different eccentricities of the undisturbed tube cross sections with the same area. As a result of non-uniformity of the peristaltic wave, two different amplitude ratios are defined and the time-averaged flux and mechanical efficiency are studied for different eccentricities. It is observed that the time-averaged flux is not affected significantly by the pressure drop when the eccentricity is large. For the peristaltic waves with same area variation, the pumping seems to improve with the eccentricity.

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Arterial walls have a regular and lamellar organization of elastin present as concentric fenestrated networks in the media. In contrast, elastin networks are longitudinally oriented in layers adjacent to the media. In a previous model exploring the biomechanics of arterial elastin, we had proposed a microstructurally motivated strain energy function modeled using orthotropic material symmetry. Using mechanical experiments, we showed that the neo-Hookean term had a dominant contribution to the overall form of the strain energy function. In contrast, invariants corresponding to the two fiber families had smaller contributions. To extend these investigations, we use biaxial force-controlled experiments to quantify regional variations in the anisotropy and nonlinearity of elastin isolated from bovine aortic tissues proximal and distal to the heart. Results from this study show that tissue nonlinearity significantly increases distal to the heart as compared to proximally located regions (). Distally located samples also have a trend for increased anisotropy (), with the circumferential direction stiffer than the longitudinal, as compared to an isotropic and relatively linear response for proximally located elastin samples. These results are consistent with the underlying tissue histology from proximally located samples that had higher optical density (), fiber thickness (), and trend for lower tortuosity () in elastin fibers as compared to the thinner and highly undulating elastin fibers isolated from distally located samples. Our studies suggest that it is important to consider elastin fiber orientations in investigations that use microstructure-based models to describe the contributions of elastin and collagen to arterial mechanics.

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Measuring forces applied by multi-cellular organisms is valuable in investigating biomechanics of their locomotion. Several technologies have been developed to measure such forces, for example, strain gauges, micro-machined sensors, and calibrated cantilevers. We introduce an innovative combination of techniques as a high throughput screening tool to assess forces applied by multiple genetic model organisms. First, we fabricated colored Polydimethylsiloxane (PDMS) micropillars where the color enhances contrast making it easier to detect and track pillar displacement driven by the organism. Second, we developed a semiautomated graphical user interface to analyze the images for pillar displacement, thus reducing the analysis time for each animal to minutes. The addition of color reduced the Young's modulus of PDMS. Therefore, the dye-PDMS composite was characterized using Yeoh's hyperelastic model and the pillars were calibrated using a silicon based force sensor. We used our device to measure forces exerted by wild type and mutant Caenorhabditis elegans moving on an agarose surface. Wild type C. elegans exert an average force of similar to 1 mu N on an individual pillar and a total average force of similar to 7.68 mu N. We show that the middle of C. elegans exerts more force than its extremities. We find that C. elegans mutants with defective body wall muscles apply significantly lower force on individual pillars, while mutants defective in sensing externally applied mechanical forces still apply the same average force per pillar compared to wild type animals. Average forces applied per pillar are independent of the length, diameter, or cuticle stiffness of the animal. We also used the device to measure, for the first time, forces applied by Drosophila melanogaster larvae. Peristaltic waves occurred at 0.4Hz applying an average force of similar to 1.58 mu N on a single pillar. Our colored microfluidic device along with its displacement tracking software allows us to measure forces applied by multiple model organisms that crawl or slither to travel through their environment. (C) 2015 AIP Publishing LLC.

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Imitating a real tooth and the periodontal supporting tissues, we have established a 2D finite element model and carried out a numerical analysis based on the inhomogeneous and anisotropic (IA) stress-strain relation and strength model of dentin proposed in the preceding Parts I and II, and the conventional homogeneous and isotropic (III) model, respectively. Quite a few cases of loadings for a non-defected and a defected tooth are considered. The numerical results show that the stress level predicted by the IA model is remarkably higher than that by the III model, revealing that the effect of the dentin tubules should be taken into a serious consideration from the viewpoint of biomechanics.

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<正> 三、运动关节力学 运动关节(diarthrodial joint)的功能在于使动物能灵巧地运动肢体。译成力学术语就是:传递载荷,吸收冲击、振动,承受相当高的应力,且运动时摩擦系数很小。L.L.Malcom曾精细地测量过牛肱关节的摩擦系数,在正应力1—20kg/cm~2的范围内,动摩擦系数为0.0025—0.0040,而最好的工程材料的摩擦系数为0.01—0.05,整整差一个量级。

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"第四届世界生物力学大会"(4~(th)World Congress on Biomechanics)于2002年8月3~11日在加拿大卡尔加里(Calgary,Canada)召开.会议主办单位为卡尔加里大学,参会人数约1 600人.参加会议的主要国家包括:美、英、德、日、加、意、法、中国和中国香港等50余国家和地区.会议交流的论文篇数约为1680篇(含口头报告及墙展).中国中科院力学所、中日友好医院、四川大学、重庆大学等6位学者参加了本次会议.所发表的工作分别涉及细胞与分子生物力学、假肢生物力学、白细胞力学-生物学耦合、血流动力学等方面,其研究工作在整体上符合当前本领域的发展方向,有的工作具有国际竞争性,会议的反响是肯定的.作者在"分子与细胞生物力学"(Molecular and Cellular Biomechanics)分会上做了口头报告和墙报展讲.

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《固体力学进展及应用:庆贺李敏华院士90华诞文集》收录了近代固体力学基础理论及其应用领域的重要科技成果和最新进展。作者是在同体力学领域工作多年的资深研究员,他们来自各行各业,有丰富的科研与丁作经验。他们提供的论文在相当程度上反映当前同体力学的发展现状与成就,并能看出发展趋势,对未来研究的课题选择有参考价值。《固体力学进展及应用:庆贺李敏华院士90华诞文集》还收集了李敏华院士的珍贵照片和纪念李敏华院士90华诞的庆贺和回忆文章,具有重要的史料价值。

目录

学术论文
星际超高速公路网
塑性波、动态屈服准则和动态塑性本构关系
LURR's twenty years and its perspective
铜晶体循环形变的晶体学取向特征
损伤、界面与材料强韧化
散斑方法用于疲劳问题研究
微薄梁三点弯曲尺度效应的理论分析
三峡坝区电力设施及水工建筑物在工程爆破引发振动激励下的动力安全评估
基尼系数的估算方法
颗粒增强复合材料的残余热应力分析和增韧效应
先进复合材料及其在航空航天中应用
我国船舶水弹性力学研究的部分进展
车桥耦合系统随机振动的虚拟激励分析
SHPB系统高温实验自动组装技术
Research on performance indices ofvibration isolation system
Dynamic testing of materials with the rotating disk indirect bar-bar tensile impact apparatus
先进复合材料层合板壳的自由振动分析
任意线法
阿基米德原型桥的动力响应
Criteria for the delamination of thermal barrier coatings:with application to thermal gradients
复合材料飞轮储能系统发展现状
The component assembling model and elasto-plastic-damage deformation of materials
Acceleration sensitivity analysis offrequency stability for micro-cavity oscillators
Prediction of muscle forces in human musculoskeletal systemapplication of classic mechanics methods in biomechanics
复合材料设计的原理与应用
A criterion for the avoidance of edge cracking in layered systems
基于滑移构元的多晶金属弹塑性本构模型
浅谈中国古建中斗拱的力学问题
A universal relationship between indentation hardness and flow stress
滑移构元模型和塑性屈服面的演化
加卸载响应比(LURR)与损伤变量(D)关系的研究
永乐大钟一悬挂结构动态响应分析
基于格构模型的混凝土动静态拉伸破坏试验数值模拟
边坡稳定性分析极限平衡法的简化条件
构元组集弹性损伤模型对准脆性材料损伤至断裂各向异性特征的分析
庆贺与回忆
庆贺与回忆
李先生引领我走上力学人生
李敏华先生的爱国情结
向李敏华先生学习
师恩难忘——恭贺李敏华先生九十大寿
跟随李敏华先生工作的日子

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Strong mechanical forces can, obviously, disrupt cell-cell and cell-matrix adhesions, e.g., cyclic uniaxial stretch induces instability of cell adhesion, which then causes the reorientation of cells away from the stretching direction. However, recent experiments also demonstrated the existence of force dependent adhesion growth (rather than dissociation). To provide a quantitative explanation for the two seemingly contradictory phenomena, a microscopic model that includes both integrin-integrin interaction and integrin-ligand interaction is developed at molecular level by treating the focal adhesion as an adhesion cluster. The integrin clustering dynamics and integrin-ligand binding dynamics are then simulated within one unified theoretical frame with Monte Carlo simulation. We find that the focal adhesion will grow when the traction force is higher than a relative small threshold value, and the growth is dominated by the reduction of local chemical potential energy by the traction force. In contrast, the focal adhesion will rupture when the traction force exceeds a second threshold value, and the rupture is dominated by the breaking of integrin-ligand bonds. Consistent with the experiments, these results suggest a force map for various responses of cell adhesion to different scales of mechanical force. PMID: 20542514

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摘要细胞-分子生物力学作为生物力学的重要分支,近三十年来在力学-生物学、力学-化学耦合等方面取得了重大进展,已成为生物力学乃至生物医学工程领域最活跃的领域,并对生物学、医学乃至农业产生了重要影响.本文介绍了细胞-分子生物力学研究领域的基本概念、科学问题和研究方法 ,并讨论了尚待解决的问题.