Thermal simulation of opaque constructive systems (walls and roofs) from EPW data — 1D and 2D
Project description
EnerHabitat
EnerHabitat is a Python package for the thermal simulation of opaque
constructive systems (walls and roofs) driven by EPW weather data. It solves
the time-dependent heat conduction equation across multi-layer systems — in
1D for homogeneous layers (System) and in 2D for units that are
heterogeneous across their width, such as concrete hollow-block walls and
joist-and-block (vigueta y bovedilla) roofs (System2D) — and produces
indoor temperatures and air-conditioning energy demands for an average day
of a chosen month.
📖 Documentation
Full documentation lives at https://ener-habitat.github.io/EnerHabitat/:
- Usage — workflow, complete examples (1D/2D, free-running and air-conditioned), configuration and materials.
- Theory — 1D model · 2D model · Numerical method (equations, boundary conditions, convergence, validation).
- API reference.
Overview
EnerHabitat models the heat transfer through opaque constructive systems
without windows, ventilation, infiltration or internal heat gains. Each
layer is described by a material name and three properties: thermal
conductivity k (W/(m·K)), density rho (kg/m³) and specific heat c
(J/(kg·K)) — supplied by a user materials.ini file (no defaults are bundled).
Given an EPW file and a constructive system, EnerHabitat computes the outdoor
(Ta), sun–air (Tsa), indoor (Ti) and neutrality (Tn) temperatures,
the solar irradiances (Ig GHI, Ib DNI, Id DHI and the plane-of-array
Is) and the energy demands over the average day of the selected month.
Theoretical background (summary)
EnerHabitat solves the time-dependent heat conduction through the constructive system — in 1D across multilayer systems and in 2D over the cross-section of non-homogeneous units — with flux continuity at the layer joints. The full derivations (equations, boundary conditions, cavity physics, assumptions and numerical method) are in the theory pages.
At the outdoor surface the boundary condition uses the sun–air temperature, which lumps convection, absorbed solar radiation and the long-wave sky exchange:
$$ T_{sa} = T_a + \frac{a, I_s}{h_o} - RF, $$
with a the solar absorptance, $I_s$ the irradiance on the tilted surface
(computed with pvlib) and $RF$ decreasing linearly from 3.9 °C at tilt = 0
(roof) to 0 at tilt = 90 (wall).
At the indoor surface the system exchanges heat with the indoor air,
and two solution modes exist:
- Free-running —
solve(): the indoor air is a lumped thermal mass whose temperatureTievolves freely; the daily energy delivered to it is reported asenergy_transfer. - Air-conditioned —
solveAC():Tiis held at the neutrality temperature of the adaptive comfort model of Humphreys & Nicol, $T_n = 0.54,\overline{T_a} + 13.5$ °C, and the requiredcooling_energyandheating_energyare reported. (The average-day data also includes the comfort-zone half-widthDeltaTn, after Morillón, for comfort analyses.)
For 2D systems, System2D solves the same problem on the unit's
cross-section, adding the cavity physics: radiation between the cavity walls
(solved as a radiosity enclosure) and temperature-dependent Nusselt convection
with a lumped cavity-air node.
The equations are discretised with implicit finite control volumes and solved with the TDMA; the average day is iterated until the solution is periodic. Full derivations, boundary conditions, convergence criteria and the validation record are in the theory pages.
Installation
pip install enerhabitat
With uv:
uv add enerhabitat
EnerHabitat requires Python ≥ 3.10. The section inspector plots are an
optional extra: pip install enerhabitat[viz].
Quickstart
EnerHabitat ships no materials: create a materials.ini in your working
directory (or point eh.config.file to one) before running anything. A
minimal file for this example:
[Adobe]
k = 0.58 # W/(m·K)
rho = 1500 # kg/m³
c = 1480 # J/(kg·K)
import enerhabitat as eh
# 1) Materials file (required — no defaults are bundled)
eh.config.file = "./materials.ini"
# 2) Location from an EPW file
loc = eh.Location("./epw/example.epw")
# 3) Define the constructive system
wall = eh.System(location=loc)
wall.azimuth = 90 # east-facing
wall.absortance = 0.3
wall.layers = [("Adobe", 0.20)] # outside → inside
# 4) Average day and solar inputs
loc.meanDay(month=5, year=2025)
wall.Tsa()
# 5) Solve (free-running); Tsa() and solve() share the same time grid,
# so results concatenate directly.
ti = wall.solve()
print(wall.energy_transfer) # J/(m²·day)
For a wall with air conditioning, call wall.solveAC() and read
wall.cooling_energy / wall.heating_energy.
2D systems
System2D is used like System (see the
API page for the
differences); its layers list contains
exactly one 2D element — a HollowBlock (walls, tilt = 90) or a Slab
(joist-and-block roofs, tilt = 0). The materials named below (Concreto,
Mortero, Yeso) must also be defined in your materials.ini (see the
full example set):
block = eh.HollowBlock(
material = "Concreto",
emissivity = 0.9,
geometry = {"web": 0.02, "block_width": 0.16,
"cover_top": 0.02, "cavity": 0.08, "cover_bottom": 0.02},
)
wall = eh.System2D(eh.Location("./epw/example.epw"))
wall.tilt = 90
wall.azimuth = 90
wall.absortance = 0.6
wall.layers = [("Mortero", 0.02), block, ("Yeso", 0.01)]
wall.location.meanDay(month=5, year=2025)
wall.Tsa()
ti = wall.solve()
⏱ A 2D solve at the default mesh (80×160) takes ~10–20 minutes (the 1D ones take seconds). For a quick smoke test, reduce the mesh first — e.g.
eh.config2d.nx, eh.config2d.ny = 24, 60— and checkwall.converged.
All the examples — the full 1D/2D × free-running/AC matrix, the joist-and-block roof, and the to-scale section inspector — are in the Usage page.
API at a glance
| Object | Purpose | Key methods / attributes |
|---|---|---|
Location |
Reads an EPW file, builds the average day | meanDay(month, year) |
System |
1D multilayer wall/roof | layers, Tsa(), solve(), solveAC(), energy_transfer, cooling_energy, heating_energy, days, converged |
System2D |
2D heterogeneous wall/roof | mirror of System (see the API page for the differences), plus preview(), section_report(), solve_dataframe, Tfield |
HollowBlock / Slab |
The 2D element inside System2D.layers |
material(s), fill_type (Fill.AIR/Fill.SOLID), geometry |
config |
Global parameters | file, La, Nx, ho, hi, dt (fixed) |
config2d |
2D mesh & convergence | nx, ny, tol_inner, tol_day, max_days, max_inner |
Defaults for ho (13) and hi (8.1 W/(m²·K)) are the NOM-008/020-ENER values
(hi is the vertical-surface value, applied to all orientations);
dt is fixed at 10 s (see
why).
Full reference:
API page.
Dependencies
Direct dependencies: numba and
pvlib (numpy, pandas and pytz come
with them). Optional: matplotlib via enerhabitat[viz].
How to cite
If you use EnerHabitat in academic work, please cite the reference paper:
Barrios, G., Casas, J.M., Huelsz, G., Rojas, J. (2016). Ener-Habitat: An online numerical tool to evaluate the thermal performance of homogeneous and non-homogeneous envelope walls/roofs. Solar Energy 131, 296–304. https://doi.org/10.1016/j.solener.2015.12.017
@article{Barrios2016,
author = {Barrios, G. and Casas, J.M. and Huelsz, G. and Rojas, J.},
title = {Ener-Habitat: An online numerical tool to evaluate the thermal
performance of homogeneous and non-homogeneous envelope walls/roofs},
journal = {Solar Energy},
volume = {131},
pages = {296--304},
year = {2016},
doi = {10.1016/j.solener.2015.12.017}
}
The repository also ships a CITATION.cff
(GitHub's Cite this repository button) covering the software itself.
Authors of the package
Developed at the Instituto de Energías Renovables, UNAM.
- Guillermo Barrios del Valle — gbv@ier.unam.mx
- Fernando Rodríguez Calderón — ferrodriguez2509@gmail.com
Source code: https://github.com/Ener-Habitat/EnerHabitat · Issues: https://github.com/Ener-Habitat/EnerHabitat/issues
License
Released under the MIT License.
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