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查看斯高帕斯 (Scopus) 概要
蔡 佳霖
教授
機械工程學系
https://orcid.org/0000-0002-9500-5618
電話
03-5731608
電子郵件
jialin
nycu.edu
tw
網站
http://nanocomposite.nctu.edu.tw/
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h5-index
2105
引文
23
h-指數
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308
引文
9
h-指數
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33
引文
4
h-指數
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2000
2024
每年研究成果
概覽
指紋
網路
計畫
(19)
研究成果
(86)
活動
(2)
指紋
查看啟用 Jia-Lin Tsai 的研究主題。這些主題標籤來自此人的作品。共同形成了獨特的指紋。
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Keyphrases
Mechanical Properties
35%
Epoxy Nanocomposites
32%
Graphene
26%
Organoclay
26%
Epoxy Glass
24%
Fiber Composites
24%
Mechanical Behavior
23%
Strain Rate
23%
Silica Nanoparticles (SiNPs)
22%
Molecular Dynamics Simulation
21%
Graphene-epoxy Nanocomposite
18%
Fracture Toughness
17%
Epoxy
17%
Functionalized Graphene
16%
Damped Response
16%
Strain Rate Effect
16%
Glass-epoxy Composite
15%
Composite Laminates
15%
Polymeric Composites
15%
Rubber Particles
15%
Multi-walled Carbon Nanotubes (MWCNTs)
15%
Load Transfer Efficiency
14%
Graphite
13%
Aligned Graphene
13%
Graphene Properties
13%
Epoxy Matrix
12%
Nonbonded
12%
Polyimide Nanocomposites
12%
Crack Extension
12%
Tensile Strength
11%
Model Prediction
11%
Failure Mechanism
10%
Rate-dependent Behavior
10%
Carbon Nanotubes
10%
Young's Modulus
10%
In-plane Shear Strength
10%
Multiscale Simulation
10%
Fracture Behavior
10%
Compressive Strength
9%
Graphite-epoxy Composite
9%
Micromechanical Modeling
9%
Split Hopkinson Pressure Bar
9%
Functional Groups
9%
Graphene Composites
9%
Graphene Sheets
9%
Micromechanical Approach
9%
Particulate Nanocomposite
9%
Thermal Properties
9%
Viscoplastic Model
8%
Polyimide
8%
Engineering
Nanocomposite
87%
Organoclay
26%
Strain Rate
24%
Epoxy Glass
23%
Composite Fiber
21%
Epoxy Composite
21%
Mechanical Property
20%
Compressive Strength
19%
Compression Strength
19%
Graphene
19%
Computer Simulation
15%
Carbon Nanotube
15%
Polymeric Composite
15%
Strain Rate Effect
15%
Load Transfer
13%
Fracture Strength
13%
Experimental Result
13%
Shear Strength
13%
In-Plane Shear
12%
High Strain Rate
11%
Ultimate Tensile Strength
10%
Split Hopkinson Pressure Bar
10%
Dependent Behavior
10%
Single-Walled Carbon Nanotube
10%
Model Prediction
10%
Multiscale
9%
Crack Extension
9%
Silica Nanoparticle
9%
Graphene Sheet
9%
Sandwich Structures
9%
Tensile Test
8%
Failure Mechanism
8%
Finite Element Analysis
8%
Damping Capacity
8%
Fracture Behavior
8%
Nanoparticle
7%
Micromechanical Model
7%
Energy Dissipation
7%
Constitutive Model
6%
Debonding
6%
Mechanical Response
6%
Fracture Parameter
6%
Continuum Mechanics
6%
Atomistic Simulation
6%
Double Lap Joint
6%
Fiber Array
6%
Failure Stress
5%
Single Edge
5%
Composite Specimen
5%
Crack Tip
5%
Material Science
Nanocomposite
100%
Composite Material
68%
Graphene
67%
Fracture Toughness
23%
Mechanical Property
20%
Silica Nanoparticle
19%
Ultimate Tensile Strength
18%
Polyimide
17%
Compressive Strength
16%
Glass Fiber
15%
Carbon Nanotube
15%
Composite Laminate
13%
Finite Element Method
12%
Fracture Behavior
9%
Silicon Dioxide
9%
Shear Strength
9%
Thermal Conductivity
9%
Multi-Scale Simulation
9%
Nanoparticle
8%
Epoxy
8%
Debonding
8%
Young's Modulus
7%
Fracture Toughness Testing
7%
Platelet
7%
Crack Tip
6%
Scanning Electron Microscopy
6%
Strain Rate
6%
Continuum Mechanics
6%
Fiber Array
6%
Vibration Damping
6%
Strain Rate Effect
6%
Reinforced Composite
6%
Elastic Property
6%
Fracture Mechanics
5%
Film
5%
Local Buckling
5%