轻点灬大ji巴太粗太长了h-轻点灬大ji巴太粗太长了啊h-轻点灬大ji巴太粗太长了爽文-轻点灬大ji巴太大太深了-japan高清视频乱xxxxx-jiuma和我啪啪

新聞動態(tài)
NEWS
Location:Chinese Academy of Sciences > NEWS  > News in field Carbon Nanotubes

Stochastic CNT waviness shows nanocomposites can become stiffer

Come: Chinese Academy of Sciences    Date: 2016-03-07 14:59:32


Orders-of-magnitude effective elastic modulus reductions in aligned carbon nanotubes (CNTs) and their architectures originate from their local curvature, commonly known as waviness. Pre-established theoretical frameworks are unable to adequately describe the three-dimensional morphology of CNTs, which leads to large over-predictions of their elastic response. Reporting in Nanotechnology, researchers at the Massachusetts Institute of Technology use a newly developed simulation framework capable of modeling > 105 CNTs with stochastic three-dimensional morphologies to quantify the impact of CNT waviness on the deformation modes that govern the stiffness of their polymer matrix nanocomposites.

While early reports of the high elastic modulus and low density of carbon nanotubes (CNTs) encourages their use in large-scale commercial composite structures, CNT composites manufactured on the centimetre to metre length-scales behave very differently from what early theoretical models originally predicted. This difference in behaviour is caused by CNT structural and morphological non-idealities, which are inevitable results of their synthesis process via highly scalable chemical vapour deposition techniques, but were not considered in the original theoretical studies. More recent work indicates that the local curvature of the CNTs, which is normally quantified using a non-dimensional waviness ratio that assumes a simple sinusoidal or helical functional form of the waviness, is a major factor contributing to the order of magnitude stiffness over-predictions of early models. However, due to the oversimplified descriptions of the CNT morphology used by these previous studies, little is known about the mechanics of wavy CNTs with realistic stochastic 3D morphology undergoing deformation, and how the complicated CNT morphology will evolve as a function of CNT packing proximity to lead to the observed stiffness enhancements in aligned CNT polymer matrix nanocomposites (A-PNCs).
 
CNTs with realistic morphology
CNTs with stochastic 3D morphologies are assembled as arrays of nodes in xyz space. The CNT waviness is applied using node displacements in the x and y directions via Gaussian distributions (see Figure 1), and is quantified by their tortuosity, a stochastic parameter that is evaluated using the arc length of each CNT. This CNT arc length is matched to the experimentally evaluated CNT waviness ratio, an analytical parameter, using the arc length of a sine wave. Arrays comprised of > 105 stochastic wavy CNTs are assembled in a layer-by-layer fashion, where each layer is comprised of the square root of the total number of CNTs in the simulation. This technique could enable CNT structures to be studied at true scale, where a CNT simulation comprised of > 106 stochastic wavy CNTs could have an area of 0.1 mm x 0.1 mm.
                    
 Using their intrinsic longitudinal (Y) and shear (G) moduli, the effective stiffness of the CNTs that reinforce the A-PNCs is evaluated (see Figure 2(a)). As Figure 2(a) illustrates, the effective reinforcement modulus of CNTs is diminished as their waviness increases, but this effect is not as pronounced when the ratio of Y/G is small. Using the effective stiffness of the CNTs, the elastic response of the A-PNCs in the longitudinal direction is also quantified and compared to experimental results and previous predictions by a finite element method assuming a constant waviness ratio (see Figure 2 (b)). Figure 2(b) shows that by more accurately describing the waviness of the CNTs and their evolution with the CNT volume fraction, which is controlled using Λ, the current method is able to explain the observed enhancements in the A-PNC modulus as a function of the CNT volume fraction. This implies that using representative descriptions of the CNT morphology, more accurate material property turning and prediction may become possible.
                     
More information about this research can be found in the journal Nanotechnology 27 035701.

< Previous Carbon nanotube template produces sub...New Technique Facilitates Isolation a... Next >

?
Tel:+86-28-85241016,+86-28-85236765    Fax:+86-28-85215069,+86-28-85223978    E-mail:carbon@cioc.ac.cn,times@cioc.ac.cn,nano@cioc.ac.cn
QQ:800069832    Technical Support ac57.com
Copyright © Chengdu Organic Chemicals Co. Ltd., Chinese Academy of Sciences 2003-2025. manage 蜀ICP備05020035號-3
主站蜘蛛池模板: 一级片+国产 | 日本视频网站在线www色 | 在线观看丝袜国产 | 中文字幕免费播放 | 波多野结衣视频在线免费观看 | 91在线欧美精品观看 | 亚洲网站在线观看 | 日韩中文字幕在线视频 | 久久精品国产99国产精偷 | 五月天婷婷缴情五月免费观看 | 一区二区高清视频在线观看 | 男女情趣视频免费播放 | 亚洲色图综合图区 | 日韩欧美视频一区二区三区 | 亚洲国产天堂久久综合9999 | 日韩在线观看视频免费 | 国产一级片观看 | 免费看色片 | 最近中文字幕免费版在线 | 亚洲欧美成aⅴ人在线观看 亚洲欧美成人 | 在线免费成人 | 欧美高清videosex极品 | 国产成人精品高清在线 | 日韩精品一区二区三区中文3d | 天天干2018 | 国产成人综合在线 | 新午夜影院| 色综合色狠狠天天综合色hd | 国产成人精品高清不卡在线 | 日本一本一道久久香蕉免费 | 久久精品国产91久久麻豆自制 | 怡红院五月天 | 老头边吃奶边做边爱 | 精品精品国产欧美在线观看 | 伊人网免费视频 | 国产成人18黄禁网站免费观看 | 朝鲜free嫩白的18sex性 | 久久久久国产一级毛片高清板 | 天天操天天操天天干 | 日本免费新一区二区三区 | 女女同性一区二区三区四区 |