Window Condensation in Australian Homes: Causes, Prevention and Frame Solutions

MC

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2026-08-27

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8 min read

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Window condensation is one of the most common building performance complaints in Australian homes. Water droplets forming on the inside of window glass and frames during cold mornings, damp sills, mould growth around window reveals, and musty odours in bedrooms are all symptoms of the same underlying physics — indoor moisture condensing on surfaces that have dropped below the dew point temperature.

While condensation is often dismissed as a minor annoyance, it has serious implications for indoor air quality, building durability, and occupant health. Persistent condensation leads to mould growth, which can trigger asthma and respiratory conditions. It damages paint, timber reveals, and flooring. And it signals that a home’s thermal envelope is underperforming — allowing interior surfaces to cool to temperatures where condensation becomes inevitable.

This guide explains the science of window condensation, why it occurs in Australian homes, how frame material and glazing specification affect condensation risk, and what builders and homeowners can do to prevent it.

1. The Science of Condensation

Condensation occurs when warm, moisture-laden air contacts a surface whose temperature has dropped below the dew point — the temperature at which water vapour in the air condenses into liquid water.

How the Dew Point Works

The dew point is not a fixed temperature. It depends on the relationship between air temperature and relative humidity:

Indoor Air Temperature Relative Humidity Dew Point Temperature
20°C 30% 2°C
20°C 50% 9°C
20°C 60% 12°C
20°C 70% 14°C
22°C 60% 14°C
22°C 70% 16°C

As relative humidity increases, the dew point rises — meaning condensation forms at higher surface temperatures. At 50% relative humidity and 20°C indoor temperature, a window surface needs to cool to only 9°C for condensation to form. At 70% humidity, the threshold rises to 14°C — a temperature that standard (non-thermally-broken) aluminium frames routinely reach during cold Australian winter nights.

Why Windows Are the Condensation Point

Windows are almost always the coldest interior surface in a home because glass and standard aluminium frames conduct heat far more readily than insulated walls. While a wall with R2.5 insulation might have an interior surface temperature of 19°C when the outside temperature is 5°C, a single-glazed window in the same wall could have an interior surface temperature of 8°C — well below the dew point at typical indoor humidity levels.

2. Sources of Indoor Moisture in Australian Homes

Understanding where indoor moisture comes from is the first step in managing condensation. The biggest contributors in most Australian homes include:

Daily Moisture Production

Activity Moisture Added
Cooking (without rangehood) 1.5–3.0 litres per meal
Showering (10 minutes, no fan) 1.0–1.5 litres per shower
Drying clothes indoors 2.0–5.0 litres per load
Unflued gas heater 0.5–1.0 litres per hour of use
Occupant breathing (family of 4) 1.0–2.0 litres per day
Indoor plants 0.3–0.8 litres per plant per day

A family of four conducting normal daily activities can introduce 5 to 15 litres of moisture into the air each day. Without adequate ventilation, this moisture accumulates until indoor relative humidity exceeds 60% — the threshold at which condensation on standard window frames becomes routine.

The Unflued Gas Heater Problem

Unflued gas heaters are a particularly significant moisture source in southern Australian homes. These heaters burn natural gas or LPG, producing water vapour as a direct combustion byproduct. An unflued gas heater running for 4 hours can add 2 to 4 litres of moisture to the indoor air — enough to push relative humidity well past the condensation threshold, even in a well-ventilated home.

3. Why Frame Material Determines Condensation Risk

Standard (Non-Thermally-Broken) Aluminium Frames

Standard aluminium conducts heat at approximately 200 W/m·K. During cold weather, the interior surface of a standard aluminium frame can drop to 6–10°C below the indoor air temperature — routinely below the dew point. This is why condensation on aluminium window frames is most visible on the frame itself, not just the glass.

The cold frame also creates a convective downdraft: warm room air cools as it contacts the cold frame, becomes denser, and drops along the window. This creates a localised cold zone that makes rooms feel draughty and cold near windows, driving occupants to increase heating — which in turn increases the temperature differential and can worsen condensation.

Thermally Broken Aluminium Frames

Thermal break technology inserts a polyamide insulating barrier between the inner and outer aluminium sections. This barrier prevents the cold outer section from dragging down the temperature of the inner face. In well-specified thermally broken systems, interior frame surface temperatures stay 5–8°C warmer than non-thermally-broken frames under the same conditions.

For most Australian climates, this 5–8°C improvement is sufficient to keep the interior frame surface above the dew point under normal living conditions, eliminating routine condensation and the mould risk that follows it.

MC Windows & Doors’ MC100 Tilt and Turn Window features a five-chamber polyamide thermal break profile that maintains interior frame temperatures well above typical dew points, even in cool-temperate winter conditions. Combined with Low-E double glazing and argon fill, the system keeps both frame and glass surfaces above condensation thresholds.

uPVC Frames

uPVC is inherently a poor conductor (approximately 0.16–0.20 W/m·K) and multi-chamber profiles trap insulating air pockets. uPVC frames maintain interior surface temperatures close to room temperature, providing excellent condensation resistance without requiring a thermal break component.

Timber Frames

Timber is also a natural insulator (approximately 0.12–0.17 W/m·K). Timber frames offer good condensation resistance, though they require ongoing maintenance (painting, sealing) to prevent moisture absorption into the frame itself.

4. Glazing Specifications for Condensation Control

Single Glazing

Single-glazed windows offer virtually no insulation. The interior glass surface temperature closely tracks the outdoor temperature, making condensation inevitable whenever indoor humidity exceeds approximately 30%. In most Australian homes with normal occupancy, single-glazed windows will show condensation on cold mornings throughout winter.

Double Glazing

Double glazing introduces an insulating air or argon-filled cavity between two glass panes. The interior pane stays significantly warmer than with single glazing, reducing (but not eliminating) condensation risk. Standard double glazing without Low-E coatings achieves interior pane temperatures approximately 7–10°C warmer than single glazing.

Low-E Coatings

Low-E (low-emissivity) coatings are microscopically thin metallic layers applied to the glass surface. These coatings reflect radiant heat back into the room, keeping the inner pane warmer. Warmer glass means the surface stays above the dew point for longer, directly reducing condensation.

Low-E coated double glazing can achieve U-factors 30–50% lower than standard uncoated double glazing, meaning significantly less heat escapes through the glass and the interior surface remains warmer.

Argon Gas Fill

Argon gas, denser than air, is filled between the panes of sealed insulating glass units. Argon slows convective heat transfer within the cavity, contributing to a warmer interior pane surface. Combined with Low-E coatings, argon-filled units represent the current standard for condensation-resistant glazing in the Australian market.

Triple Glazing

Triple glazing adds a third pane and a second insulating cavity. For most Australian conditions, well-specified double glazing with Low-E and argon delivers excellent condensation performance without the added weight and cost of a third pane. Triple glazing is worth considering only in consistently cold climates — alpine regions or Tasmanian highlands.

5. Australian Climate Zones and Condensation Risk

Condensation is not exclusively a cold-climate problem. The NCC divides Australia into eight climate zones, and condensation risk varies significantly:

Cool Temperate (Zones 6, 7, 8 — Tasmania, ACT, Alpine NSW/Victoria)

  • Primary risk: Cold frames in winter (May to September)
  • Typical scenario: Indoor heating raises air temperature and moisture production; cold outdoor temperatures pull frame temperatures below dew point
  • Solution priority: Low U-value windows (thermally broken + double Low-E), humidity management, passive ventilation

Coastal Humid (Zones 1, 2 — Northern Queensland, Northern NT)

  • Primary risk: Warm humid outdoor air against cooled glass (November to March)
  • Typical scenario: Air-conditioned interiors create cool glass surfaces; humid outdoor air infiltrates through gaps and condenses on the exterior-facing cooled glass
  • Solution priority: Low SHGC glazing, good air sealing, dehumidification

Mixed Climate (Zones 4, 5 — Sydney, Adelaide, Melbourne)

  • Primary risk: Both winter and summer condensation
  • Winter: Same mechanism as cool temperate zones
  • Summer: Air-conditioned interiors can cause condensation when outdoor humidity is high
  • Solution priority: Thermally broken frames, Low-E double glazing, balanced ventilation

Hot Dry (Zone 3 — Inland WA, SA, NT)

  • Primary risk: Less common, but possible in air-conditioned spaces during summer
  • Solution priority: Standard double glazing usually sufficient; focus on air sealing

6. Prevention Strategies: A Prioritised Approach

Immediate (No Cost)

  • Open trickle vents or windows briefly each morning to flush humid air
  • Run extract fans during and after cooking, showering, and clothes drying
  • Avoid drying clothes indoors without ventilation
  • Keep interior doors open to allow air circulation

Low Cost (Under $100)

  • Purchase a hygrometer and monitor indoor humidity (target: 40–55%)
  • Replace unflued gas heaters with flued or electric alternatives
  • Ensure existing extract fans are ducted to outside (not into the roof cavity)
  • Add weatherstripping around window reveals if installation gaps exist

Moderate Investment ($200–$1,000)

  • Install trickle vents if current frames lack them
  • Upgrade bathroom and kitchen extract fans to continuous dMEV (decentralised mechanical extract ventilation) units
  • Add insulation around frame reveals to eliminate thermal bridges at the wall-frame junction

Significant Upgrade ($1,000+)

  • Replace non-thermally-broken aluminium frames with modern thermally broken systems
  • Upgrade sealed units to Low-E coated, argon-filled double glazing
  • Consider MVHR (mechanical ventilation with heat recovery) for whole-house ventilation in major renovations or new builds

7. Health Impacts of Window Condensation

Persistent condensation creates the conditions for mould growth — typically within 24–48 hours of a surface remaining wet. Mould spores are ubiquitous in indoor air, and they germinate on surfaces where moisture and organic material (dust, paint, wallpaper paste) are present.

Health Risks

  • Asthma: Mould exposure is a recognised trigger for asthma attacks, particularly in children
  • Respiratory irritation: Mould spores cause coughing, wheezing, throat irritation, and nasal congestion
  • Allergic reactions: Some mould species produce allergens that cause skin rashes, eye irritation, and sinus inflammation
  • Long-term exposure: Prolonged exposure to certain mould species (particularly Stachybotrys chartarum) has been associated with chronic respiratory conditions

The Australian National Health and Medical Research Council (NHMRC) recommends indoor humidity be maintained between 30% and 60% to minimise mould risk. Condensation on windows is a visible indicator that indoor humidity has exceeded this range.

8. Installation Quality: The Hidden Factor

Even the best window system will underperform if installed poorly. Gaps around the frame reveal, inadequate flashing, and thermal bridges at the wall-frame junction create localised cold zones where condensation concentrates — often mistaken for a window fault when it is actually an installation issue.

Key Installation Requirements

  • Continuous insulation: Insulation should wrap around the window frame to eliminate thermal bridges at the reveal
  • Cavity closers: In cavity brick construction, cavity closers prevent cold air from circulating behind the window frame
  • Proper sealing: Expanding foam or compressible tape should seal the gap between the frame and the structural opening, with no voids
  • Flashing: Head flashing, sill flashing, and jamb flashing must be installed to AS 4654.2 requirements to prevent water ingress

MC Windows & Doors provides detailed installation manuals and remote technical support for all products, ensuring that installers achieve the thermal performance that the window system was designed to deliver.

Frequently Asked Questions

1. Why do my aluminium windows have condensation but my neighbour’s uPVC windows do not?

Standard (non-thermally-broken) aluminium frames conduct heat rapidly, causing the interior frame surface to cool below the dew point. uPVC frames are naturally insulating and maintain interior surface temperatures closer to room temperature. Thermally broken aluminium frames solve this problem by inserting a polyamide insulating barrier between inner and outer aluminium sections, achieving performance comparable to or better than uPVC.

2. Is condensation on the outside of my windows a problem?

External condensation (on the outer glass surface) occurs when the glass surface temperature drops below the outdoor dew point — typically on clear, cold nights. This is actually a sign that your windows are performing well (insulating the interior from the cold exterior). External condensation evaporates as the morning sun warms the glass and is not a building defect.

3. Can condensation between the panes of double glazing be fixed?

No. Condensation between the panes (inside the sealed insulating glass unit) means the edge seal has failed and moisture has penetrated the cavity. The sealed unit must be replaced. This is a glazing unit failure, not a condensation issue related to the thermal break or frame. Quality sealed units from MC Windows & Doors carry 10-year warranties and use dual-seal technology (butyl + polysulfide) for 25+ year seal life.

4. Will upgrading to thermally broken windows eliminate condensation entirely?

Thermally broken windows significantly reduce condensation by keeping interior frame and glass surfaces above the dew point. However, if indoor humidity remains very high (above 65%), condensation can still occur on even the best windows. The most effective approach combines thermally broken windows with humidity management — extract fans, trickle vents, and avoiding unflued gas heaters.

5. What humidity level should I maintain to prevent window condensation?

The Australian NHMRC recommends indoor humidity between 30% and 60%. To prevent condensation on standard aluminium frames, aim for 40–50%. With thermally broken double-glazed windows, humidity can safely sit at 50–55% without condensation in most Australian climates. Use a hygrometer to monitor humidity levels, particularly in bedrooms overnight.

6. Does the NCC address condensation?

NCC 2022 introduced new provisions for condensation management in Volume One (Part F6) and Volume Two (Part 10.6). These provisions require consideration of water vapour management, including the use of pliable building membrane vapour permeability ratings and ventilation strategies. The provisions represent the first time the NCC has explicitly addressed condensation as a building performance issue.

Conclusion

Window condensation is not an inevitable consequence of Australian winters — it is a symptom of a thermal envelope that is underperforming. By understanding the physics of dew point, managing indoor moisture sources, and specifying thermally broken window frames with Low-E double glazing, builders and homeowners can eliminate routine condensation and the health risks it creates.

For homes experiencing persistent condensation, upgrading to thermally broken aluminium systems such as the MC100 range from MC Windows & Doors — which combines five-chamber polyamide thermal breaks with Low-E argon-filled glazing and triple-seal EPDM weather seals — addresses the root cause by keeping interior frame and glass surfaces above the dew point. Contact Annly@mcwindow.com.au or +61 490 141 931 for condensation assessment and window upgrade specifications.

References

  • Australian Building Codes Board. (2022). National Construction Code 2022 — Condensation Management Provisions (Part F6 / Part 10.6).
  • Standards Australia. (2014). AS 2047:2014 — Windows and external glazed doors in buildings.
  • Standards Australia. (2012). AS/NZS 4666:2012 — Insulating glass units.
  • Australian National Health and Medical Research Council (NHMRC). Indoor Air Quality Guidelines.
  • Australian Glass and Window Association (AGWA). Window Installation Best Practice Guide.
  • MC Windows & Doors. Thermal Break Product Range and Specifications. Available at: mcwindow.com.au

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