NIST Building#

NIST Building

1. Project Description#

The current study numerically reproduces the experiment Test1 from the Phase 2 report of National Institute of Standards and Technology (NIST) Aerodynamic Database [1] with AeroSim’s CFD solver.

A low-rise building with \(B \times W \times H\) dimensions:

NIST Building geometry

is positioned in a wind tunnel setup with 437 pressure probes distributed over its surface:

NIST Building coordinates

The wind directions chosen to be simulated were:

NIST Building cases#

Wind direction

0 \(^\circ\)

30 \(^\circ\)

60 \(^\circ\)

90 \(^\circ\)

2. Simulation Setup#

The Synthetic Eddy Method (SEM) boundary condition is applied at the inlet of the computational domain. Solid fins are distributed across the floor to ensure the desired velocity and turbulence profiles during flow development length. A Neumann boundary condition is applied at the remaining boundaries.

The building is positioned \(100H\) from inlet, and 6 grid refinement levels (\(lvl\,0\) to \(lvl\,5\)) were adopted:

NIST Building grid

A 1:2 refinement ratio is estabilished between levels, and the simulation parameters at grid \(lvl\,5\) were:

NIST Building - Parameters#

\(\boldsymbol{\Delta x/B}\) (spatial resolution)

2.05e-02

\(\boldsymbol{\Delta t/CTS}\) (temporal resolution)

1.26e-03

exports/\(\boldsymbol{CTS}\) (pressure acquisition frequency)

1.00e+01

\(\boldsymbol{T/CTS}\) (statistical sample size)

3.70e+03

\(\boldsymbol{Re_{B}=U_{H}B/\nu}\)

2.25e+04

The equivalent parameters in full scale are:

NIST Building - Full Scale#

\(\boldsymbol{\Delta x[m]}\)

0.12

\(\boldsymbol{\Delta t[ms]}\)

0.20

\(\boldsymbol{f[Hz]}\)

61.60

\(\boldsymbol{T[s]}\)

600.00

The computational resources required were:

NIST Building - Resources#

Device

NVIDIA A10G

NVIDIA RTX A5500

NVIDIA A10G

NVIDIA RTX A5500

Wind direction

0 \(^\circ\)

30 \(^\circ\)

60 \(^\circ\)

90 \(^\circ\)

Node count (million)

88.04

89.12

89.08

88.04

Allocated memory (Gb)

11.68

11.84

11.83

11.68

Ellapsed time (h)

64.43

51.49

66.56

49.40

3. Inflow#

An empty domain simulation is performed to measure the incident velocity and turbulence profiles. A probe line is placed at the position where the building will be located. The average velocities used for calculating the pressure coefficient and convective time scale are taken from this simulation.

Wind Profiles#

NIST Building

Wind Spectra#

The power spectral density of the velocity components at height \(H\) are compared with experimental data available in [1].

NIST Building

4. Results: Local Statistics#

The pressure coefficient is calculated using the velocity at the building height \(H\) and the reference pressure measured from a position far above the building. The same statistical processing for the pressure coefficient \(C_{p}\) peaks at each probe position is performed for both experimental and numerical data:

  • A sample of size (\(T / CTS\)) is evaluated over moving averages of the original signals, with window size of 3s.

  • The processed data is subdivided in 10 intervals, from which the minimum and maximum values will be taken for each.

  • Those min/max values are fitted to a Gumbel distribution.

  • The shape parameters from Gubel distribution are then rescaled to 3600s.

Scatter on Points Statistics#

The deviation between numerical and experimental data is quantified using the mean absolute error (MAE) and the normalized mean absolute error (NMAE):

\[\mathrm{MAE} = \frac{1}{N_{\mathrm{probes}}}\sum_{i=1}^{N_{\mathrm{probes}}}|q^{\left(i\right)}_{\mathrm{EXP}}-q^{\left(i\right)}_{\mathrm{NUM}}|\]
\[\mathrm{NMAE} = \frac{1}{N_{\mathrm{probes}}}\sum_{i=1}^{N_{\mathrm{probes}}}\frac{|q^{\left(i\right)}_{\mathrm{EXP}}-q^{\left(i\right)}_{\mathrm{NUM}}|}{\left[q^{\left(\mathrm{max}\right)}_{\mathrm{EXP}}-q^{\left(\mathrm{min}\right)}_{\mathrm{EXP}}\right]}\times 100\]
NIST Building
NIST Building
NIST Building
NIST Building

Mean and Peak Pressures#

NIST Building
NIST Building
NIST Building
NIST Building

RMS Pressures#

NIST Building
NIST Building
NIST Building
NIST Building

Skewness and Kurtosis#

NIST Building
NIST Building
NIST Building
NIST Building

Pressure Spectrum#

NIST Building
NIST Building
NIST Building
NIST Building

Execution notes#

TPU Building Straight - Execution notes#

Execution Date (YYYY-MM-DD)

2024-10-25

Solver Version

1.6.0a2

Changelog#

  • 30 Oct 2024: Added scattering plots