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Development of 3D CFD models and observation system design for wind environment assessment over a clear-cut in mountainous region : 산악지역 내 개벌지 풍환경 평가를 위한 3차원 CFD 모델 개발과 관측시스템 설계

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dc.contributor.advisor이인복-
dc.contributor.author하태환-
dc.date.accessioned2018-05-28T16:36:11Z-
dc.date.available2018-05-28T16:36:11Z-
dc.date.issued2018-02-
dc.identifier.other000000150897-
dc.identifier.urihttps://hdl.handle.net/10371/140809-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 농업생명과학대학 생태조경·지역시스템공학부, 2018. 2. 이인복.-
dc.description.abstractInstallation of meteorological observation system in mountain region is important to aid effective monitoring of mountainous meteorology, predictions of mountain disasters such as fires and landslides, and the dispersion of pollutants or airborne viruses. International organizations, which include the World Meteorological Organization (WMO) and the Canadian Forest Sservice (CFS) recommend that weather observation system in mountain area should be located in clear-cut area where forest cover has been cleared or felled, and the distance from the system to any obstacle should be more than 10 times greater than maximum height of any nearby trees. In addition, the height of an anemometer to monitor wind environment in mountain region should be at least 10 m higher than the tallest trees, when the construction of clear-cut was limited. In addition, there is a method to install the meteorological observation system on the flat land in the Republic of Korea, but there are no installation standards of a mountain meteorological observation system.
In case of the installation methods of international standards, excessively wide clear-cuts are difficult to find and tall observation masts cost more and may not be as safe as 10 m mast. Therefore, research to determine an appropriate installation methods for the meteorological observation system in mountain region in the Republic of Korea should be conducted. Because of limitations of a field experiment such as difficulty to acquire results due to unstable and unpredictable environmental conditions, high time- and labor costs, and a great deal of capital for a variety of experimental conditions, many researchers have used computational fluid dynamics (CFD).
In this thesis, as a first step, comprehensive literature reviews on Meso-scale numerical weather prediction modelling, Micro-scale numerical weather prediction modelling and Air resistance of trees were intimately conducted to build the foundation and to suggest the appropriateness of the study
In Chapter 3, a 3D micro-scale CFD model was developed in order to simulate the wind environment in mountain region using ANSYS, one of the generally used commercial CFD software, and proposed methods to apply the air resistance of trees to the CFD model. Proposed methods of applying air resistance of trees using commercial CFD software were a method of designing canopy regions of trees that is distributed in mountain terrain while designing the CFD model and a method of using a UDF (user defined function) in a computation process of the CFD model without dividing canopy regions of trees. Because the method of dividing the canopy regions of the trees was distorted about the boundary of forest regions in process of designing the CFD model, it was determined that it is appropriate to apply the air resistance coefficient of the trees to meshes where the canopy regions are located using the UDF.
In Chapter 4, a 3D micro-scale open-source CFD model was also developed in order to simulate the wind environment in mountain region using OpenFOAM, one of the generally used open-source CFD software, and proposed a method to apply the air resistance of trees to the open-source CFD model. First of all, a 3D mountain topography model was designed without dividing domains for the forest regions distributed in the target area. The air resistance coefficients of the trees were applied to each group of meshes corresponding to the forest region of the designed open-source CFD model using developed code. The CFD simulation models developed in Chapter 3 and 4 were validated using the wind environment data monitored in the field and the reliability of the CFD models were secured.
In Chapter 5, appropriate installation methods of meteorological observation system in mountain region according to the type of trees, the air-resistance of trees, the tree height, the size of the clear-cut, etc. were proposed based on analysis of wind environment in the clear-cut. In addition, conversion factors for estimating the reference wind speed which is not influenced by the surrounding trees, was derived in order to compensate the cases of not satisfying the appropriate height of the meteorological observation system and the size of the clear-cut in mountain region.
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dc.description.tableofcontentsChapter 1. Introduction 1
1.1. Study Background 1
1.2. Objective of thesis 4
Chapter 2. Literature review 6
2.1. Numerical weather prediction 6
2.1.1. Meso-scale numerical weather prediction modelling 7
2.1.2. Micro-scale numerical weather prediction modelling 14
2.2. Air resistance of trees 20
Chapter 3. Development of a micro-scale CFD model to predict wind environment on mountain terrain using a commercial CFD package 28
3.1. Introduction 28
3.2. Materials and methods 28
3.2.1. The study area 28
3.2.2. Computational fluid dynamics (CFD) 30
3.2.3. Porosity of the trees 32
3.2.4. Modelling procedure 36
3.2.4.1. Topographical modelling 36
3.2.4.2. Tree porosity modelling 38
3.2.4.2.1. Porosity modelling using separated geometry volume based on forest type classification 39
3.2.4.2.2. Porosity modelling using a UDF code based on a digitized forest type classification 41
3.2.4.3. Methodology for validation of the CFD model 43
3.3. Results and discussions 45
3.3.1. Wind environment analysis of the study area 45
3.3.2. Validation of the CFD simulation model 47
3.3.2.1. Horizontal wind verification 47
3.3.2.2. Vertical wind verification 50
3.4. Conclusions 53
Chapter 4. Development of a micro-scale CFD model to predict wind environment in mountain terrain using an open-source CFD package 54
4.1. Introduction 54
4.2. Materials and methods 55
4.2.1. The study area 55
4.2.2. Experimental trees for evaluating porosity coefficient 56
4.2.3. Open-source CFD 57
4.2.4. Experimental procedure 60
4.2.4.1. Evaluating the inertial resistance coefficient of trees 61
4.2.4.2. Design of 3D open-source CFD model 64
4.2.4.3. Methodology for validation of the open-source CFD model 68
4.3. Results and discussions 71
4.3.1. Inertial resistance coefficient of experimental trees 71
4.3.2. Validation of the open-source CFD model 74
4.4. Conclusions 78
Chapter 5. Recommendation of installation method for meteorological observation system in mountain region based on open-source CFD simulations 79
5.1. Introduction 79
5.2. Materials and methods 79
5.2.1. Design of open-source CFD model for suggesting the appropriate installation method 79
5.2.2. CFD simulation cases for evaluating the appropriate installation method 81
5.3. Results and discussions 83
5.3.1. Wind environment in clear-cut according to type of tree 86
5.3.2. Wind environment in clear-cut according to the inertial resistance coefficient of the canopy 90
5.3.3. Proper height for wind environment monitoring 98
5.3.4. Conversion factor for the reference wind speed 105
5.4. Conclusions 123
Chapter 6. Summary and concluding remarks 124
6.1. Summary 124
6.2. Concluding remarks 127
References 129
Appendix I. UDF code for porosity modelling of FLUENT 137
Appendix II. OpenFOAM codes 141
A. System 141
A.1. blockMeshDict 141
A.2. controlDict 144
A.3. decomposeParDict 145
A.4. fvSchemes 146
A.5. fvSolution 148
A.6. meshQualityDict 150
A.7. sampleDict 152
A.8. snappyHexMeshDict 153
A.9. surfaceFeatureExtractDict 162
A.10. topoSetDict 164
B. constant 166
B.1. porosityProperties 166
B.2. transportProperties 169
B.3. turbulenceProperties 170
C. boundary conditions and initial conditions 171
C.1. ABLConditions 171
C.2. initialConditions 171
C.3. epsilon 172
C.4. k 174
C.5. nut 176
C.6. p 178
C.7. U 180
국문초록 182
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dc.formatapplication/pdf-
dc.format.extent6237550 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectOpen-source CFD-
dc.subjectTree porosity-
dc.subjectWind environment-
dc.subjectClear-cut-
dc.subjectMountainous region-
dc.subjectObservation system design-
dc.subject.ddc712-
dc.titleDevelopment of 3D CFD models and observation system design for wind environment assessment over a clear-cut in mountainous region-
dc.title.alternative산악지역 내 개벌지 풍환경 평가를 위한 3차원 CFD 모델 개발과 관측시스템 설계-
dc.typeThesis-
dc.contributor.AlternativeAuthorTaehwan Ha-
dc.description.degreeDoctor-
dc.contributor.affiliation농업생명과학대학 생태조경·지역시스템공학부-
dc.date.awarded2018-02-
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