Publications

Detailed Information

Boiling Heat Transfer Characteristics of Water Jet Impingement on Hot Steel Surface : Experiment and Analysis : 고온 표면에서 충돌 수분류에 의한 비등 열전달 : 실험 및 해석

DC Field Value Language
dc.contributor.advisor김찬중-
dc.contributor.author이상건-
dc.date.accessioned2017-10-27T16:33:26Z-
dc.date.available2017-10-27T16:33:26Z-
dc.date.issued2017-08-
dc.identifier.other000000146172-
dc.identifier.urihttps://hdl.handle.net/10371/136712-
dc.description학위논문 (박사)-- 서울대학교 대학원 공과대학 기계항공공학부, 2017. 8. 김찬중.-
dc.description.abstractBoiling heat transfer of subcooled water impingement on highly superheated platee is inverstigated by means of heat transfer analysis and high-definition flow visualization. The stainless-steel plate initially heated up to 900ºC by an induction heating method is cooled by water of 15ºC. The surface temperature and heat flux are estimated by solving 2-D inverse heat conduction problem. The temporal visualization during quench subcooled-jet impingement boiling is synchronized with the heat transfer measurement in the corresponding surface temperature and heat flux. Spread of the subcooled jet over the horizontal plate shows a quasi-steady regime where the wetting front spreads linearly with time. The time for onset of the quasi-steady regime can be explained by a quasi-steady time. The front separates the single-phase/collapsed-bubble region from the outside region which is dry if not for the impinging droplets ejected from the front. As the front expands, the surface experiences sequence of single-phase, collapsed-bubble, wetting front evaporation, ejected-droplet evaporation cooling. The fraction of water ejected from the front increases linearly with time (reaches over 10%) and is predicted.
After that, enhancement resulting from interaction of two adjacent jets impinging on largely superheated stainless-steel plate is investigated. Subcooled water jets with varying jet separation distance (up to 30 nozzle diameter) show that following an elapsed time of isolated-jet behavior, the spreading liquid wetting fronts merge and in the merged region the heat transfer coefficient increases substantially. This enhancement is presented as the two-jet cooling efficiency and we show this efficiency initially increases with the increase in separation distance, reaching a peak and then vanishes for large separation.
Finally, the comparative study of 4-type of quenching methods on hot steel block is experimentally performed with heat transfer analysis and microscopic examination. For the comparison, water/oil immersion, forced immersion and multiple jet quenching are selectively adopted. Two material types of steel such as stainless steel (SUS310S) and alloy steel (SNCM439) are used to compare boiling heat transfer characteristics and microscopic examination, separately. The surface temperature and heat flux are determined by solving inverse heat conduction and followed boiling phenomena are visualized by high-speed imaging. Furthermore, microscopic examination was performed with SEM to verify the metallographic structures after each quenching method, and the mechanical properties are also examined. All 4-type methods showed qualitative agreement in the variation of martensitic fraction depending on each cooling rate. As the surface is cooled more rapidly, the higher volume fraction of martensite are formed and shows enhanced mechanical properties.
-
dc.description.tableofcontents1. Introduction 1
1.1 Overview 1
1.1.1 Overview of Liquid Jet Impingement 1
1.1.2 Boiling Mechanism of Jet Impingement Boiling 4
1.2 Objectives of Present Study 8
2. Experimental Apparatus and Arrangements 16
2.1 Flow System of Single/Two Jet Impingement 16
2.2 Experimental Apparatus for 4-types of Quenching Method 20
2.3 Experimental Conditions of Present Study 26
3. Estimate Thermal Boundary Condition and Microscopic Analysis 28
3.1 Inverse Heat Conduction Problem (IHCP) 28
3.1.1 Overview of IHCP 28
3.1.2 Algorithm/Calculation of IHCP 32
3.1.3 Evaluation of Heat Transfer Coefficient 35
3.2 Microscopic Analysis of Quenched Surface 37
4. Experimental Results and Discussion 39
4.1 Quasi-steady Front in Single Subcooled-jet Impingement Boiling 39
4.1.1 Flow Visualization and Cooling Regions 39
4.1.2 Quasi-steady Regime 46
4.1.3 Wetting Front Propagation 50
4.1.4 Fraction of Liquid Ejected at Propagating Front 53
4.2 Effect of Two Interacting Jets on Boiling Heat Transfer 56
4.2.1 Flow Visualization and Cooling Regions 56
4.2.2 Boiling Heat Transfer Analysis of Two Interacting Jets 60
4.2.3 Enhancement of Two Interacting Jet 70
4.3 Comparison of 4-type of Quenching Method 74
4.3.1 Comparison of Heat Transfer Analysis of 4-type of Quenching Methods 74
4.3.2 Comparison of Microstructure Analysis of 4-type of Quenching Methods 88
5. Concluding Remarks 92
References 95
Abstract in Korean 103
-
dc.formatapplication/pdf-
dc.format.extent9171377 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjecttwo interacting jets-
dc.subjectmultiple jet quenching-
dc.subjectboiling heat transfer-
dc.subjectinverse heat conduction-
dc.subjectmicroscopic examination-
dc.subjectwater jet impingement-
dc.subject.ddc621-
dc.titleBoiling Heat Transfer Characteristics of Water Jet Impingement on Hot Steel Surface : Experiment and Analysis-
dc.title.alternative고온 표면에서 충돌 수분류에 의한 비등 열전달 : 실험 및 해석-
dc.typeThesis-
dc.contributor.AlternativeAuthorSang Gun Lee-
dc.description.degreeDoctor-
dc.contributor.affiliation공과대학 기계항공공학부-
dc.date.awarded2017-08-
Appears in Collections:
Files in This Item:

Altmetrics

Item View & Download Count

  • mendeley

Items in S-Space are protected by copyright, with all rights reserved, unless otherwise indicated.

Share