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Building Physics

Energy consumption in buildings, and its associated carbon emissions, continues to be a major concern, both in terms of environmental impact, and building operational costs. We promote a ‘fabric first’ approach to energy efficiency, focusing on passive design measures to reduce energy demands. This must be followed by design of efficient building services.
Renewable energy technology in buildings plays an important part in our nation’s energy mix, with the potential to offer significant savings in energy use, and carbon emissions. We have significant experience in the selection, design and implementation of such systems including Solar PV, Solar Thermal, heat pumps and biomass.
Our energy services include:
- Energy audits for existing buildings
- Energy strategy reports
- Renewable energy feasibility studies
- CHP feasibility studies
- Energy Performance Certificates (EPCs)
- Display Energy Certificates (DECs)
The environmental conditions within a building have a significant bearing on occupant wellbeing. Control of internal temperatures, and air quality, are key to achieving an environment that avoids cold draughts in winter and overheating in summer.
Buildings with poor thermal comfort are also likely to consume more energy, since space heating input may need to be increased in winter, and mechanical cooling may be required in summer.
We use dynamic thermal modelling to simulate the behaviour of buildings, enabling the performance of a proposed design, or existing building, to be analysed in depth. The movement of people, heat and air in a building can be modelled, and resulting outputs- temperatures, air quality and energy use- can be assessed against performance criteria.
Some of our activities include:
- Natural ventilation analysis
- Overheating risk analysis using CIBSE TM52
- London Plan Overheating Analysis
- Thermal comfort analysis
- Advanced plant modelling
- Solar shading analysis
We provide consultancy services to meet the requirements of building regulations and planning authorities including:
- Part L2A CO2 calculations (also known as SBEM or BRUKL document)
- SAP Calculations for dwellings, from early design stage to post-construction
- Energy Performance Certificates (EPCs)
- Display Energy Certificates (DECs)
- Energy Statements for Planning
- GLA London Plan Energy & Overheating Statements
Daylight is vital for occupant well-being and energy efficiency, as well as enriching the architectural and aesthetic quality of a building.
Climate-Based Daylight Modelling (CBDM) goes beyond simplistic approaches of the past, to consider the usefulness of daylight, not just quantity. Rooms with high levels of glazing may be beautifully lit during overcast conditions, but during sunny weather could be uncomfortably bright. In contrast to this, deep plan rooms may be able to achieve a good average daylight level, but poor distribution of daylight means this is not a useful indicator, and in reality, artificial lighting would be in frequent use.
We provide guidance on how to achieve good daylight design, including building form, façade and glazing optimisation. We carry out daylight analysis for buildings using CBDM software to establish performance against key criteria of Daylight Autonomy (DA) and Useful Daylight Illuminance (UDI).
Ruskin School of Art is an example of a building where we optimised the glazing design for daylight and overheating
Building physics helps optimise a building's design to minimise energy consumption, focusing on factors like insulation, ventilation, and lighting. By properly managing heat loss, heat gain, and energy use, buildings can be made more energy-efficient, reducing reliance on heating and cooling systems. This translates to lower energy bills for building owners and occupants and less demand on energy resources.
By designing buildings that make efficient use of energy and natural resources, building physics play a key role in reducing a building’s environmental footprint. This involves using renewable energy sources, like solar heating and natural ventilation, and optimising the building envelope to reduce heating and cooling demands. As a result, buildings contribute less to greenhouse gas emissions and promote environmental sustainability. Although implementing building physics principles during design might involve higher upfront costs, it leads to significant long-term savings.
- What is building physics, and why is it important?
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- Building physics is the study of how physical factors such as heat, air, light, and sound interact within a building. It's important because it ensures buildings are energy-efficient, comfortable, sustainable, and resilient, enhancing both occupant well-being and long-term cost savings.
- How does building physics impact energy efficiency?
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- Building physics optimises the performance of a building (walls, roof, windows) and systems (heating, cooling, ventilation) to minimise energy consumption, reduce heat loss or gain, and maximise natural light and ventilation, ultimately lowering energy bills and reducing environmental impact.
- Can building physics help with environmental sustainability?
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- Yes, building physics promotes sustainability by using energy-efficient designs, reducing waste and emissions, and optimising the use of renewable resources like solar energy and natural ventilation. This leads to a smaller carbon footprint and compliance with green building standards.
- How does building physics affect occupant comfort and health?
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- Building physics helps maintain optimal thermal comfort, air quality, and acoustics within a building. It ensures proper ventilation, temperature regulation, and noise control, contributing to a healthier and more comfortable environment for occupants.
WELL Building Standards
According to EPA (U.S Environmental Protection Agency) we spend approximately 90% of our time indoors
