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Page 1: Wind speed profiles over Greater London, UKbl_met/actual/non_protect...Β Β· Wind speed profile models 3 β€’ Log law (Eurocode) 𝑧=π‘’βˆ— πœ… ln 𝑧 𝑧0 z 0 =0.8 m for an urban

Β© University of Reading 2008 www.reading.ac.uk 18 December 2012

Wind speed profiles over Greater London, UK Daniel Drew, Janet Barlow and SiΓ’n Lane

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Introduction

β€’ Vertical wind speed profiles are required to address a

number of wind engineering problems:

β€’ Dispersion of pollution

β€’ Designing tall buildings

β€’ Several theoretical and empirical models:

β€’ Power law

β€’ Log law

β€’ Deaves and Harris model

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Wind speed profile models

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β€’ Log law (Eurocode)

π‘ˆ 𝑧 =π‘’βˆ—

πœ…ln

𝑧

𝑧0 z0=0.8 m for an urban surface (Cook, 1985).

β€’ Deaves and Harris Model (UK, Australia)

π‘ˆ 𝑧 =π‘’βˆ—π‘˜

𝑙𝑛𝑧

𝑧0+ 5.75

𝑧

β„Žβˆ’ 1.88

𝑧

β„Ž

2

βˆ’ 1.33𝑧

β„Ž

3

+ 0.25𝑧

β„Ž

4

h, the height of the boundary layer is assumed to equal 3250 m.

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Introduction

β€’ Vertical wind speed profiles are required to address a

number of wind engineering problems:

β€’ Dispersion of pollution

β€’ Designing tall buildings

β€’ Several theoretical and empirical models:

β€’ Power law

β€’ Log law

β€’ Deaves and Harris model

β€’ Little validation of models, particularly in urban areas.

β€’ Assessed wind speed profile over Greater London.

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The surrounding surface is very heterogeneous (parks, urban, river)

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Gill instruments R3-50 ultrasonic anemometer

β€’Measures horizontal and vertical components of wind.

β€’Sampling frequency = 20 Hz

Instruments at BT Tower (190 m)

Observations analysed to estimate:

π‘ˆβˆ—2 = 𝑒′𝑀′2 + 𝑣′𝑀′2

𝐿 =βˆ’π‘’βˆ—

3𝑇

πœ…π‘” 𝑀′𝑇′

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Halo Photonics Streamline pulsed Doppler lidar

β€’Fully programmable scanner

β€’Doppler Beam Swinging Method

β€’Gate length = 30 m

β€’80 measurement gates

β€’Instrument location = 20 m above ground level

β€’Min. measurement height = 90 m above lidar (110 m above ground)

β€’Profile every 2 minutes

β€’21st May 2011 – 6th Jan 2012

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Doppler beam swinging method

β€’ Three-beam wind-profiling method

β€’ Derives wind speeds from one vertical and two tilted beams

β€’ 2 s of data taken consecutively in each direction (40,000 pulses)

β€’ Short scan time means flow will not change much over scan period.

β€’ Interval between scans = 120 s

β€’ See Pearson et al. (2009) for comparison with other methods in a rural setting.

ΞΈ = 15Β°

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Halo Photonics Streamline pulsed Doppler lidar

β€’Fully programmable scanner

β€’Doppler Beam Swinging Method

β€’Gate length = 30 m

β€’80 measurement gates

β€’Instrument location = 20 m above ground level

β€’Min. measurement height = 90 m above lidar (110 m above ground)

β€’Profile every 2 minutes

β€’21st May 2011 – 6th Jan 2012

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30th September 2011

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Mean wind speed profile

β€’ Derived from 5500 hours of observations

β€’ Compared with the 3 models

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Surface dependent

parameters (Cook, 1997)

z0=0.8 m

h=3250 m

Ξ±=0.32

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Stability

β€’ Data filtered by stability derived from BT tower observations.

13 UQ25 UQ50 UQ75

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High wind speeds

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LOW:

U<UQ25

MEDIUM:

UQ25<U<UQ50

HIGH:

UQ50<U<UQ75

VERY HIGH:

U>UQ75

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Terrain dependent parameters

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Roughness length, z0

β€’ Derived from log law using

u* observed at BT tower.

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β€’ Morphological values determined in Wood et al. (2010).

z0mean= 0.6 m

z0mean= 0.9 m

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Power law exponent, Ξ±

β€’ Derived from wind profile

observations.

β€’ Good agreement for

westerly winds.

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𝛼 =1

ln(𝑧1𝑧2)

0.5

𝑧0

Ξ±mean= 0.23

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Boundary layer height, h

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β„Ž =π‘ˆβˆ—

6𝑓

hmean= 1050 m

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Model comparison

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Conclusions

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Future Work

β€’ Presented wind speed profiles derived from lidar observations.

β€’ High wind speeds occur during neutral conditions. β€’ High wind speed profile shows reasonable fit with

model profiles (log law and Deaves and Harris).

β€’ Lack of Doppler lidar observations below 90 m restricts potential to assess wind loading models- potential for Sodar.

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Extra slides

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Page 22: Wind speed profiles over Greater London, UKbl_met/actual/non_protect...Β Β· Wind speed profile models 3 β€’ Log law (Eurocode) 𝑧=π‘’βˆ— πœ… ln 𝑧 𝑧0 z 0 =0.8 m for an urban

Doppler beam swinging method

β€’ Three-beam wind-profiling method

β€’ Derives wind speeds from one vertical and two tilted beams

β€’ 2 s of data taken consecutively in each direction (40,000 pulses)

β€’ Short scan time means flow will not change much over scan period.

β€’ Interval between scans = 120 s

β€’ See Pearson et al. (2009) for comparison with other methods in a rural setting.

ΞΈ = 15Β°

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No

. of d

ata

po

ints

Lid

ar w

ind

sp

eed

(m

s-1)

Wind speed (60 minute average)

β€’60 minute average used to include sufficient data from lidar.

β€’Some of RMSE can be explained by standard error (average SE = 0.4 ms-1).

β€’Some difference likely due to large separation between instruments.

Y=0.98x+0.56

RMSE=1.4

Weighted best fit


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