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查看斯高帕斯 (Scopus) 概要
蔡 文達
Professor Emeritus
材料科學及工程學系
電話
866 6 2757575 ext 62927
電子郵件
wttsai
mail.ncku.edu
tw
網站
http://www.mse.ncku.edu.tw/index.php?option=module&lang=cht&task=pageinfo&id=145&index=7
h-index
7619
引文
49
h-指數
按照存儲在普爾(Pure)的出版物數量及斯高帕斯(Scopus)引文計算。
1982 …
2022
每年研究成果
概覽
指紋
網路
專案
(59)
研究成果
(229)
類似的個人檔案
(6)
監製作品
(24)
指紋
查看啟用 Wen-Ta 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。
排序方式
重量
按字母排序
Material Science
Corrosion
100%
Ionic Liquid
95%
Oxide Compound
83%
Stainless Steel
79%
Surface (Surface Science)
75%
Duplex Stainless Steel
69%
Carbon Dioxide
65%
Aluminum
64%
Electrodeposition
62%
Magnesium Alloy
61%
Film
55%
Manganese Oxide
54%
Heat Treatment
52%
Stress Corrosion Cracking
46%
Carbon Nanotube
45%
Dielectric Spectroscopy
42%
Corrosion Resistance
40%
Density
39%
Aluminum Oxide
38%
Pitting Corrosion
37%
Scanning Electron Microscopy
37%
Carbon Steel
37%
Manganese
36%
Capacitance
31%
Fatigue Crack Growth
30%
X-Ray Photoelectron Spectroscopy
30%
Supercapacitors
29%
Corrosion Fatigue
29%
Nanoparticle
29%
Chemical Mechanical Planarization
28%
Austenite
25%
Anodizing
24%
Magnesium Alloys
23%
Crystal Structure
23%
X-Ray Diffraction
22%
Surface Morphology
21%
Grain Boundary
20%
Alloying
20%
Passive Film
20%
Sodium
19%
Composite Material
18%
Anodic Film
17%
Electronic Circuit
17%
Strain Rate
16%
Stainless Steel 304L
15%
Morphology
14%
Oxide Film
14%
Nanocrystalline
14%
Titanium
14%
Carburization
14%
Engineering
Stainless Steel
52%
Experimental Result
43%
Hydrogen Storage
29%
Duplex Stainless Steel
28%
Cracking Behavior
27%
Corrosion Behavior
27%
Corrosion Resistance
24%
Acid Solution
24%
Material Characteristic
22%
Pitting (Corrosion)
22%
Strain Rate
21%
Stress Corrosion Cracking
21%
Polarization Curve
20%
Carbon Nanotube
20%
Crystal Structure
18%
Surface Morphology
17%
Nanoparticle
17%
Ray Diffraction
16%
Chemical Mechanical Polishing
16%
Weld
16%
Thiosulfate Solution
16%
Corrosion Fatigue
16%
Capacitive
16%
Austenite
15%
Laser Surface
15%
Carbon Steel
14%
Fatigue Crack Growth
14%
Passivation
13%
Aluminum Oxide
13%
Dehydrogenation
12%
Potentiodynamic Polarisation Test
12%
Oxidation Rate
12%
Crack Growth Rate
11%
Stainless Steel 304L
11%
Hydrochloric Acid
11%
Ray Photoelectron Spectroscopy
11%
Heat Treatment
11%
Silicon Content
11%
Multi-Walled Carbon Nanotube
10%
Supercritical Carbon Dioxide
10%
Microhardness
10%
Aqueous Solution
10%
Storage Capacity
9%
Cyclic Stability
9%
Substantial Increase
9%
Crack Growth Behavior
8%
Scanning Electron Microscope
8%
Hydride Formation
8%
Oxide Film
8%
Electroless Plating
8%
Keyphrases
Ionic Liquid
25%
Cracking Behavior
21%
Magnesium Alloy
20%
Alloy 182
20%
Electrochemical Performance
18%
Corrosion Resistance
18%
AZ91D Magnesium Alloy
17%
Electrodeposition
17%
Environmentally Assisted Cracking
16%
Stress Corrosion Cracking
14%
Aluminum Chloride
14%
Electrochemical Impedance Spectroscopy
13%
Electrodeposit
13%
Sulfuric Acid Solution
13%
Metal Dusting
12%
Supercritical CO2 Fluid
12%
Thiosulfate Solution
12%
Duplex Stainless Steel
12%
Aluminium Electrodeposition
12%
Fe-Cr
11%
Electrolyte
11%
1-Butyl-3-methylimidazolium Chloride
10%
Stainless Steel
10%
Corrosion Behavior
10%
Mg Alloy
9%
Hydrogen Storage Performance
9%
NaCl Solution
9%
Pitting Corrosion
9%
2205 Duplex Stainless Steel
9%
Chemical Composition
9%
Specific Capacitance
8%
Nanostructured Carbon
8%
Heat Treatment Effect
8%
Mn Oxides
8%
Sulfuric Acid
8%
Nanocrystalline Ni
8%
Cobalt Oxide Electrode
8%
Anodic Film
8%
Hydride Formation
8%
Morphological Aspects
8%
LiAlH4
8%
Alloy 600
8%
Hydrogen Storage Capability
8%
Laser Therapy
8%
High-entropy Alloy
8%
Weld Metal
8%
Carbon Steel
8%
Manganese Oxide
8%
Fatigue Crack Growth Rate
8%
Nanostructures
8%