Thermal Performance Simulation Using DesignBuilder Software
Educational Building- Thermal Optimization & Passive Design
The Faculty of Basic Sciences building at Razi University is located in a mountainous region with a cold climate. The architectural form, optimal orientation, and performance-based design approach provided a solid foundation for integrating energy-focused interventions.
The project aimed to reduce energy consumption, enhance thermal comfort, and improve environmental sustainability. Within the framework of economic and construction constraints, a set of cost-effective yet impactful solutions were designed and implemented within the existing structure.
A set of clear sustainability and energy-efficiency targets guided the project’s design and engineering decisions.
These objectives shaped the selection of materials, systems, and passive strategies throughout the process:
Comprehensive energy simulations were carried out using DesignBuilder, a powerful software platform built on the EnergyPlus engine. It enabled accurate thermodynamic modeling of the building’s performance throughout the year, under real climatic conditions.
Key applications of DesignBuilder in this project included:
DesignBuilder proved to be a crucial tool for predicting and validating the effectiveness of proposed design strategies before implementation, supporting a data-driven and scientific design process.
The design approach for this project was shaped around enhancing thermal performance and reducing the building’s energy consumption. The proposed interventions included the use of high thermal resistance materials, the installation of low-emissivity double-glazed windows, the integration of fixed shading devices on the south-facing façade, and the incorporation of a heat recovery system within the HVAC.
These measures were evaluated through multiple simulation scenarios and phases to quantitatively assess their effects on heating and cooling loads, gas and electricity usage, occupant thermal comfort, and the reduction of greenhouse gas emissions.
The simulation outcomes enabled informed, data-driven decision-making and the selection of the most cost-effective practical solutions. The results clearly showed that even straightforward interventions can yield meaningful improvements in a building’s energy performance.
In this phase, the building was analyzed in its original, unoptimized condition to establish a baseline for comparison.
Two key upgrades were implemented: 3 cm polystyrene insulation was added to interior walls, and double-glazed Low-E windows were installed.
Fixed horizontal shading devices were installed on the southern façade to reduce solar heat gain.
A heat recovery system was integrated into the mechanical ventilation setup. By reclaiming heat from exhaust air, the system preheats incoming fresh air, increasing overall efficiency.
This project serves as a successful example of integrating digital energy modeling, optimized materials, and simple passive design strategies to achieve sustainable outcomes. Despite a limited budget, the proposed measures led to substantial improvements in the building’s thermal performance.
Key Achievements:
This initiative offers a practical and replicable model for retrofitting existing educational buildings in cold climates across Iran.
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