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7篇 您的检索式:作者名="Genlin Tian"
    题名 作者 年代 出处 被引量
1Copper-Catalyzed Allylic Oxidation of Cyclohexene with Molecular Oxygen显示文摘Xu Zhang Rong Yi Tian Chen Shichun Ni Genlin Wang Lei Yu 2013化学发展前沿(中英文版)2013,3,2:2
2Mode I interlami- nar fracture property of moso bamboo ( Phyllostachys pubescens ) 显示文摘Shao Zhuoping Fang Changhua Tian Genlin 2009Wood science and technology2009,43,56:1
3Mechanical characterization of single bamboo fibers with nanoindentation and microtensile technique 显示文摘Yan Yu Genlin Tian Hankun Wang 2011Holzforschung2011,65,1:1
4Colloid chemistry in petroleum industry in China 显示文摘Tian Genlin Lei Qiaohui Liu Weidong 2000J Dispersion Sci Tech2000,21,4:1
5Visualizing Complex Anatomical Structure in Bamboo Nodes Based on X-ray Microtomography显示文摘In recent years,bamboo has been widely used in a broad range of applications,a thorough understanding of the structural characteristics of bamboo nodes is essential for better processing and manufacturing of biomimetic materials.This study investigated the complex anatomical structure for the nodes of two bamboo species,Indocalamus latifolius(Keng)McClure and Shibataea chinensis Nakai,using a high-resolution X-ray microtomography(μCT).The results show that the vascular bundle system in the nodal region of I.latifolius and S.chinensis is a net-like structure composed of horizontal and axial vascular bundles.Furthermore,the fiber sheath surrounding metaxylem vessels tended to be shorter in the tangential direction.This structure of bamboo nodes facilitates the tangential and axial transport of moisture and nutrients.The anatomical structure of I.latifolius and S.chinensis nodes has obvious differences,especially in the arrangement of vascular bundles.Vascular bundle frequency was significantly higher in S.chinensis nodes than in I.latifolius nodes.These findings indicate thatμCT is a nondestructive three-dimensional imaging method that can used to examine the anatomical structure of bamboo nodes.Elin Xiang Shumin Yang Chunjie Cao Xinge Liu Guanyun Peng Lili Shang Genlin Tian Qianli Ma Jianfeng Ma 2021Journal of Renewable Materials2021,9,9:0
6Review of Preparation and Properties of Microfibrillated Cellulose Originated from Plants显示文摘Microfibrilled cellulose(MFC) is a new kind of nanoscale cellulose functional materials, having broad application prospects in many fields like food,medicine,cosmetic,paint,paper and pulp engineering,composite materials,et al.The research on MFC has been extensively conducted for the past 30 years in some developed countries,and even some relevant products have appeared in the market.On the contrast,similar studies in China were rather limited.This paper firstly introduced the properties and application of MFC briefly,and then gave more detailed description on the preparation technology of MFC and its important performance indexes. Several suggestions on the future study on MFC were also proposed.Jiang Zehui Wang Hankun Yu Yan Tian Genlin Wang Hao 2012Chinese Forestry Science and Technology2012,11,3:0
7Study of the Climbing Behavior of the Flagella of Calamus Simplicifolius Based on Micro-CT and Nanoindentation显示文摘Rattan is a typical tropical climbing plant that uses flagella to climb supports to grow.A comprehensive understanding of the anatomic structure and micromechanics of rattan flagella might inspire more research on biomimetic climbing materials.Here,the structure and micromechanical properties of flagella in calamus simplicifolius were examined by Micro-Computed Tomography(Micro-CT)and nanoindentation techniques,respectively.The results showed that the rachis of the flagella mainly comprised vascular bundles surrounded by basic tissues,which had a gradient density decreasing from outsides to insides.The prickles are derived from the epidermis or the epidermis and cortical tissue of the flagellum,which do not possess vascular tissue.The entire tip of the prickle was composed almost of fibrous cells.The indentation modulus of elasticity of the prickle was 17.03 GPa,which was 17.93%higher in comparison with the rachis.The hardness of the prickle was 539.27 MPa and was slightly higher than that of the rachis.The results indicated that the discrepancy of micromechanical strengths in different parts of flagella reflects on their unique roles in the process of climbing.Fukuan Dai Ziwei Wang Tuhua Zhong Hankun Wang Genlin Tian 2022Journal of Bionic Engineering2022,19,6:0
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