한국해양대학교

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熱電子 活性化型 Ion Plating法에 의해 製作한 나노 粒狀組織을 가지는 마그네슘 및 耐蝕特性

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dc.contributor.author 尹龍燮著 -
dc.date.accessioned 2017-02-22T06:43:46Z -
dc.date.available 2017-02-22T06:43:46Z -
dc.date.issued 2003 -
dc.date.submitted 56797-10-27 -
dc.identifier.uri http://kmou.dcollection.net/jsp/common/DcLoOrgPer.jsp?sItemId=000002173950 ko_KR
dc.identifier.uri http://repository.kmou.ac.kr/handle/2014.oak/9729 -
dc.description.abstract Magnesium is the lightest metal among all structural metals(35% lighter than aluminium) and has a good strength-to-weight ratio, vibration resistance and EMR shield, etc.. Moreover, it is plentiful element, consisting 2.7% of earths crust and 0.13% of major source in ocean. Accordingly, it forms the basis for commercial alloys that have found to be used in a wide variety of application such as automobile, aircraft components, note book computer case, cellular phone case etc.. However, magnesium has not been applied as much as aluminum because of its insufficient corrosion resistance in neutral and acid environment. Therefore, in general, magnesium is used for coating techniques by wet process such as chromate surface treatment, and anodizing etc.. But these coating techniques entail durable and environmental problems. Moreover, it raises recycling problems which are related to the mixing of impurities. In general, light metals, particularly magnesium, are difficult to plate using conventional coating techniques such as chemical or electro-chemical processes. This is due to the presence of the easy formation of oxide layer. In order to limit oxidization during coating, vacuum deposition techniques can be used as an alternative to conventional techniques operating in wet or in air conditions. It is well known that coated films, particularly those deposited from plasma-assisted vacuum coating technique, are usually quite different from the respective bulk material as to their structures and properties. For this reason, the use of plasma-assisted techniques, e.g., physical vapor deposition such as ion-plating method, has spreaded into various types of industrial applications. However, few studies have been reported dealing with magnesium metal and using the new techniques. In this work, magnesium thin films were prepared on magnesium alloy(AZ91D and AZ31) substrate by environmental friendly coating technique of thermo-electron activated ion-plating method. The influence of gas pressure and substrate bias voltages on the crystal orientation and morphology of the films was determined by using X-ray diffraction and field emission scanning electron microscopy(FE-SEM), respectively. And the effect of crystal orientation and morphology of the magnesium thin films on corrosion behavior was estimated by measuring electro-chemical anodic polarization curves in deaerated 3% NaCl solution. Besides, hardness of these films were measured by knoop micro-hardness tester. From the experimental results, all the deposited magnesium films showed obviously good corrosion resistance to compare with 99.99% Mg-ingot for evaporation metal and AZ91D for substrate. And magnesium film of morphology changed from columnar to granular structure with an increase of gas pressure. And the diffraction peaks of magnesium film became less sharp and broadened with the increase of gas pressure. The morphology of the films depended not only on gas pressure but also on bias voltage, i.e., the effect of increasing bias voltage was similar to that of decreasing gas pressure. The influences of gas pressures and bias voltages can be explained by applying the effects of adsorption and occlusion and argon gas. Finally, it was shown that the properties of magnesium films can be improved greatly by controlling the crystal orientation and morphology with effective use of the plasma ion plating technique. -
dc.description.tableofcontents 목차 Abstract 제1장 서론 = 1 제2장 기본 이론 = 6 2.1 표면 = 6 2.1.1 금속의 표면 = 6 2.2 여러 가지 표면반응 = 10 2.2.1 분자의 흡착 = 10 2.2.2 산화와 환원 = 14 2.2.3 금속의 부식 = 21 2.3 여러 가지 표면개질 방법 = 30 2.3.1 플라즈마 = 30 2.3.2 플라즈마를 이용한 표면처리 = 35 2.4 박막 = 54 2.4.1 박막의 정의 = 54 2.4.2 박막의 특징 = 55 2.4.3 박막의 형성 = 56 제3장 실험방법 = 68 3.1 실험장치 = 68 3.2 시편준비 = 71 3.3 Mg 박막의 제작 = 72 3.4 Mg 박막의 특성 분석 및 평가 = 73 3.4.1 Mg 박막의 Morphology 관찰 = 73 3.4.2 Mg 박막의 결정구조 분석 = 75 3.4.3 Mg 박막의 내식 특성 평가 = 77 3.4.4 Mg 박막의 경도 특성평가 = 79 제4장 실험결과 및 고찰 = 80 4.1 Ar 가스압의 변화에 의해 제작한 Mg 박막의 Morphology 및 결정배향성 = 81 4.1.1 Mg 박막의 표면 및 단면의 Morphology 관찰 = 81 4.1.2 Mg 박막의 결정배향성 분석 = 90 4.1.3 Ar 가스의 흡착 및 흡장에 의한 Mg 박막의 형성관계 고찰 = 99 4.2 Mg 박막의 특성 평가 = 105 4.2.1 Mg 박막의 내식특성 = 105 4.2.2 Mg 박막의 경도특성 = 122 제5장 결론 = 125 참고문헌 = 127 -
dc.publisher 한국해양대학교 대학원 -
dc.title 熱電子 活性化型 Ion Plating法에 의해 製作한 나노 粒狀組織을 가지는 마그네슘 및 耐蝕特性 -
dc.title.alternative Formation Mechanism of Mg Thin Films of Nano Granular Structure Prepared by Thermo-electron Activated Ion Plating Method and Their Corrosion Resistance -
dc.type Thesis -
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