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""" |
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This script generates input files for ALPACA simulations of LIDE by varying key parameters using a Sobol sequence for sampling. |
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Change the parameters in the 'param_bounds' array to modify the ranges for high pressure, low pressure, laser width, and droplet radii. |
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First creates a set of .xml input files using "create_alpaca_input" function, then runs ALPACA on each generated input file using "run_alpaca" function. |
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For this change the number of simualtions and paths at the end of the script. |
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Keep the default.xml file in the same directory as this script as the code overwrites it to create new input files. |
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This problem setup is based on Weber number, We=(rho_g_2 * u_g_2^2 * D0 / sigma) and |
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Shock Mach number, Ma_s = u_s / c1 |
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By having these two at hand |
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1. we use Ma_s to calculate all the conditions on post-shock region |
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using normal shock relations; the results will be initial condition for air in post-shock part. |
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2. we use We to calculate corresponding sigma, surface tension coefficient. |
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""" |
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import os |
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import subprocess |
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import logging |
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import time |
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import math |
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import html |
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import re |
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from scipy.stats.qmc import Sobol, scale |
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from scipy.stats import qmc |
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import xmltodict |
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import numpy as np |
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import warnings |
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def run_alpaca( |
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xml_file, |
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output_dir: str = None, |
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mpiexec_path: str = None, |
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exec_file_path: str = None, |
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num_workers: int = 10, |
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): |
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""" |
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Runs ALPACA with different parameters in .xml file. |
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Args: |
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xml_file (str): Path to the input .xml file to be processed. |
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mpiexec_path (str): Path to the mpiexec executable. Find using command "which mpiexec" in terminal. |
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exec_file_path (str): Path to the ALPACA executable file. Default is "./build/ALPACA". |
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num_workers (int): Number of cpu workers for parallel processing. |
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output_dir (str): Directory where output files will be saved. |
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""" |
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logging.basicConfig( |
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filename=os.path.join(str(output_dir), 'data_generator.log'), |
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level=logging.INFO, |
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format='%(asctime)s [%(levelname)s] %(message)s' |
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) |
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command = [str(mpiexec_path), "-n", str(num_workers), str(exec_file_path), str(xml_file), str(output_dir)] |
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logging.info(f"Starting: {' '.join(command)}") |
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start_time = time.time() |
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result = subprocess.run(command, capture_output=True, text=True) |
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end_time = time.time() |
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elapsed = end_time - start_time |
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length = math.ceil(elapsed / 60) |
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if result.returncode == 0: |
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logging.info(f"Completed {xml_file} successfully in {length:.2f} minutes; [{elapsed:.2f} seconds.]") |
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logging.debug(f"Output:\n{result.stdout}") |
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else: |
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logging.error(f"ALPACA failed on {xml_file} with return code {result.returncode}") |
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logging.error(f"stderr:\n{result.stderr}") |
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def round_sig(x, sig=4): |
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return float(f"{x:.{sig}g}") |
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def create_alpaca_input( |
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count: int, |
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base_path: str , |
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output_path: str |
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): |
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""" |
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Generates a set of ALPACA input files with varying parameters for high pressure, low pressure, laser width, and the two radii of the droplet. |
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Args: |
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count (int): Number of samples to generate. |
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base_path (str): Path to the base .xml file that will be modified. |
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output_path (str): Directory where the generated .xml files will be saved. Create the directory if it does not exist. |
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""" |
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warnings.warn(f"[WARNING] Make sure the default base_input file {base_path} exists and untouched !!!.") |
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D0 = 2*1e-3 |
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rho_drop = 1000 |
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rho_gas_1 = 1.20 |
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gamma = 1.4 |
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p_gas_1 = 101325 |
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p_drop = p_gas_1 |
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Temp_1 = 300 |
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c_1 = np.sqrt(gamma * 287 * Temp_1) |
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param_bounds = np.array([ |
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[3.5, 5], |
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[500, 4e4], |
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]) |
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n_samples = count |
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n_dims = param_bounds.shape[0] |
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sampler = qmc.Sobol(d=n_dims, scramble=True, seed=50) |
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samples_unit = sampler.random(n=n_samples) |
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params = qmc.scale(samples_unit, param_bounds[:, 0], param_bounds[:, 1]) |
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params = np.vectorize(round_sig)(params, sig=4) |
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Ma_2 = [] |
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for i in range(n_samples): |
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with open(base_path) as f: |
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data = xmltodict.parse(f.read()) |
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u_s = params[i, 0] * c_1 |
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u_1_rel = - u_s |
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u_gas_1 = u_1_rel + u_s |
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Temp_2 = Temp_1 * ( 1 + (2*gamma*(params[i, 0]*params[i, 0]-1)) / (gamma+1) ) * ( (2+(gamma-1)*params[i, 0]*params[i, 0]) / ((gamma+1)*params[i, 0]*params[i, 0]) ) |
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c_2 = np.sqrt(gamma * 287 * Temp_2) |
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Ma_2_rel = np.sqrt( (1+((gamma-1)/2)*params[i, 0]*params[i, 0]) / (gamma*params[i, 0]*params[i, 0]-((gamma-1)/2)) ) |
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u_2_rel = Ma_2_rel * c_2 |
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u_gas_2 = u_s - u_2_rel |
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rho_gas_2 = rho_gas_1 * ((gamma+1)*params[i, 0]*params[i, 0]) / (2+(gamma-1)*params[i, 0]*params[i, 0]) |
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p_gas_2 = p_gas_1 * (1 + (2*gamma*(params[i, 0]*params[i, 0]-1))/(gamma+1)) |
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Ma_2.append(u_gas_2 / c_2) |
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sigma = rho_gas_2 * u_gas_2*u_gas_2 * D0 / params[i, 1] |
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data["configuration"]["domain"]["boundaryConditions"]["material"]["valuesSouth"]["density"] = rho_gas_2 |
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data["configuration"]["domain"]["boundaryConditions"]["material"]["valuesSouth"]["pressure"] = p_gas_2 |
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data["configuration"]["domain"]["boundaryConditions"]["material"]["valuesSouth"]["velocityY"] = u_gas_2 |
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air_0 = data["configuration"]["domain"]["initialConditions"]["material1"] |
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air_1 = air_0.replace("density :=1.61;", f"density := {rho_gas_2};") |
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air_2 = air_1.replace("pressure :=153338.5;", f"pressure := {p_gas_2};") |
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air_3 = air_2.replace("velocityY :=106.07;", f"velocityY := {u_gas_2};") |
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data["configuration"]["domain"]["initialConditions"]["material1"] = air_3 |
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data["configuration"]["materialPairings"]["material1_2"]["surfaceTensionCoefficient"] = sigma |
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with open(output_path+ f"/Mas{"{:.4f}".format(params[i, 0])}_We{"{:.4f}".format(params[i, 1])}_Maf{"{:.4f}".format(Ma_2[i])}.xml", 'w') as f: |
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f.write(xmltodict.unparse(data, pretty=True)) |
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Ma_2 = np.array(Ma_2).reshape(-1, 1) |
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params = np.hstack((params, Ma_2)) |
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count = 2 |
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inputs_output_path = "." |
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data_output_path = "." |
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create_alpaca_input(count=count, |
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base_path="./default.xml", |
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output_path=inputs_output_path) |
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inputs = [] |
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for file in os.listdir(inputs_output_path): |
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if file.endswith(".xml"): |
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inputs.append(os.path.join(".", file)) |
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run_alpaca(xml_file=os.path.join(str(inputs_output_path), str(inputs[-1])), |
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output_dir=str(data_output_path), |
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mpiexec_path="mpiexec", |
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exec_file_path="./build/ALPACA", |
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num_workers=10) |
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