Hong Kong Airport Wind Shear Now-Casting System Development and Evaluation
Abstract
:1. Introduction
2. Methods
2.1. Case-Study Description
2.2. System Structure
2.3. Flow-Field Modelling
2.4. Model Inputs and Configuration
2.5. Derivation of Wind-Shear Metrics from Flow-Field Modelling Outputs
2.6. Now-Cast Skill Analysis
3. Results
3.1. Pilot Wind-Shear Report Summary
3.2. Meteorological-Data Summary
3.3. Flow-Field and Wind-Shear Metric Calculations
3.4. Now-Casting Skill Analyses
3.5. Further Sensitivity Testing
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Item | Paper | ||
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Reference | [16] | [18] | [17] |
Title | Modelling of Wind Shear Downwind of Mountain Ridges at Hong Kong International Airport | Optimised Use of Real-Time Vertical-Profile Wind Data and Fast Modelling for Prediction of Airflow over Complex Terrain | Modelling Adverse Meteorological Conditions for Aircraft Arising from Airflow over Complex Terrain |
Number of wind-shear cases studied | 1 | 1 | 4 (+ 4 non-wind-shear cases for comparison) |
Meteorological measurements used to as input to FLOWSTAR |
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Meteorological measurements used to evaluate FLOWSTAR output |
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Model-sensitivity analyses |
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Metric Desciption | Mathematical Notation | Justification |
---|---|---|
Max. value of acceleration | The product of the headwind and headwind gradient amplifies the impact of sharp changes in headwind. | |
Min. value of acceleration | ||
Max. magnitude of both acceleration metrics | Test sensitivity with regard to minimum and maximum values | |
Headwind at the max. value of acceleration | Following previous work where the severity factor was proportional to the cube of the headwind | |
Headwind at the min. value of acceleration | ||
Max. magnitude of both headwind metrics | Test sensitivity with regard to minimum and maximum values |
Event Observed | |||
Yes | No | ||
Event Modelled | Yes | a | b |
No | c | d |
Count of Modelled Wind-Shear Cases (Total Number of Reports) | Along-Runway Modelling Extent from Southwest to Northeast | |||||
---|---|---|---|---|---|---|
Approaches | Departures | |||||
Runway | North | South | South | −6000 to 0 | 0 to 6000 | −6000 to 6000 |
07LA | 88 t/96 m * (96) | ✓ | ✗ | ✓ | ||
07RA | 27 (29) | ✓ | ✗ | ✓ | ||
07RD | 15 (15) | ✗ | ✓ | ✓ | ||
25RA | 12 (12) | ✗ | ✓ | ✓ |
Parameter | Units | Minimum | Average | Maximum | |
---|---|---|---|---|---|
Wind | Maximum speed in the inversion layer | m/s | 0.2 | 7.1 | 25.1 |
Typical speed in the inversion layer | m/s | 0.0 | 4.0 | 20.6 | |
Direction at max speed | degrees | 0 | 82 | 360 | |
Direction at typical speed | degrees | 0 | 111 | 360 | |
Surface-sensible heat flux | W/m2 | −44 | 7 | 140 | |
Boundary-layer height | m | 200 | 211 | 550 | |
Inversion-layer temperature jump | K | 0.0 | 2.9 | 17.8 | |
Buoyancy frequency (above the inversion layer) | 1/s | 0.005 | 0.015 | 0.020 |
Vertical | Horizontal | ||||
---|---|---|---|---|---|
Metric | Runway | Typical | Max | Typical | Max |
Magnitude of headwind at maximum acceleration | 07LA | 6.0 (0.16) | 6.5 (0.12) | 6.0 (0.17) | 5.5 (0.10) |
07RA | 7.5 (0.28) | 8.5 (0.25) | 7.0 (0.28) | 6.5 (0.19) | |
07RD | 6.5 (0.28) | 6.0 (0.21) | 5.0 (0.22) | 5.0 (0.18) | |
Magnitude of headwind at minimum acceleration | 07LA | 6.0 (0.17) | 6.0 (0.10) | 6.0 (0.15) | 5.0 (0.12) |
07RA | 7.0 (0.24) | 7.0 (0.17) | 7.0 (0.15) | 5.0 (0.11) | |
07RD | 5.5 (0.24) | 6.0 (0.20) | 6.5 (0.27) | 6.0 (0.23) | |
Maximum magnitude of both headwind metrics | 07LA | 6.5 (0.19) | 6.5 (0.13) | 6.5 (0.17) | 5.5 (0.12) |
07RA | 8.5 (0.26) | 8.5 (0.24) | 7.0 (0.25) | 7.5 (0.20) | |
07RD | 6.5 (0.26) | 6.0 (0.23) | 6.5 (0.27) | 6.0 (0.23) |
Metric Performance | |||
---|---|---|---|
Runway Extent | Headwind at Max. Acceleration | Headwind at Min. Acceleration | Max. of Magnitudes of Headwind |
Half | 0.275 | 0.148 | 0.246 |
Full | 0.260 | 0.145 | 0.236 |
Metric Performance | |||
---|---|---|---|
Extended Time Window (mins) | Headwind at Max. Acceleration | Headwind at Min. Acceleration | Max. of Magnitudes of Headwind |
20 | 0.343 | 0.170 | 0.309 |
40 | 0.275 | 0.148 | 0.246 |
60 | 0.214 | 0.120 | 0.206 |
80 | 0.188 | 0.113 | 0.194 |
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Share and Cite
Stocker, J.; Johnson, K.; Jackson, R.; Smith, S.; Connolly, D.; Carruthers, D.; Chan, P.-W. Hong Kong Airport Wind Shear Now-Casting System Development and Evaluation. Atmosphere 2022, 13, 2094. https://doi.org/10.3390/atmos13122094
Stocker J, Johnson K, Jackson R, Smith S, Connolly D, Carruthers D, Chan P-W. Hong Kong Airport Wind Shear Now-Casting System Development and Evaluation. Atmosphere. 2022; 13(12):2094. https://doi.org/10.3390/atmos13122094
Chicago/Turabian StyleStocker, Jenny, Kate Johnson, Rose Jackson, Stephen Smith, Daniel Connolly, David Carruthers, and Pak-Wai Chan. 2022. "Hong Kong Airport Wind Shear Now-Casting System Development and Evaluation" Atmosphere 13, no. 12: 2094. https://doi.org/10.3390/atmos13122094
APA StyleStocker, J., Johnson, K., Jackson, R., Smith, S., Connolly, D., Carruthers, D., & Chan, P.-W. (2022). Hong Kong Airport Wind Shear Now-Casting System Development and Evaluation. Atmosphere, 13(12), 2094. https://doi.org/10.3390/atmos13122094