Ice Build-Up in Freezers: Causes, Consequences, and Prevention

Ice formation on evaporator coils and floor surfaces is one of the most costly and persistent problems in cold storage operations — yet it’s almost entirely preventable with the right dehumidification strategy. This guide covers the moisture ingress cycle, the real cost of unmanaged frost, and how purpose-built dehumidification prevents it.

Why Ice Forms in Cold Storage Facilities

Every time a dock door opens in a cold store, a volume of warm, humid ambient air rushes into the refrigerated space. As this air cools to the chamber temperature, its ability to hold water vapour drops dramatically — and the excess moisture is deposited on every surface inside the facility. Over time, this accumulates on evaporator coils, structural racking, and floor surfaces as frost and ice.

The rate of moisture ingress depends on several factors: the temperature differential between ambient and storage conditions, the frequency and duration of door openings, and the ambient humidity at the time. In hot, humid Australian summers — particularly in coastal regions — the ingress rate can be two to three times higher than in cooler months.

A single large dock door opening in a 35°C, 80% RH Sydney summer day can introduce up to 2–3 litres of water vapour into the cold store — before any product movement has occurred.

The Operational Consequences

Ice build-up creates a cascade of problems that compound over time. Most facility operators are managing individual symptoms without addressing the underlying moisture cause:

  • Evaporator coil icing: Frost on evaporator coils acts as an insulating layer, reducing heat transfer efficiency. Every millimetre of frost can raise the required refrigerant temperature by 3–5°C, significantly increasing energy consumption and compressor wear.
  • Increased defrost cycles: To clear frost from coils, refrigeration systems run electric or hot-gas defrost cycles — during which the facility temperature rises, creating additional product risk.
  • Floor and racking ice: Ice on warehouse floors creates a serious slip and forklift hazard, while icing on racking can compromise structural integrity over time.
  • Product moisture exposure: Produce, nuts, grains, and pharmaceuticals exposed to moisture fluctuations are susceptible to mould, spoilage, and compliance failures.

The Dehumidification Solution

The correct approach to ice prevention is moisture removal before it enters the cold store — not after. A purpose-built desiccant dehumidifier positioned at or near the dock door area removes moisture from incoming ambient air, reducing the dew point of the air entering the refrigerated space and eliminating the condensation and frost cycle at source.

Unlike refrigerant dehumidifiers, desiccant units perform effectively at low temperatures — making them the preferred choice for cold store dock areas where ambient conditions are themselves often cold. They can be integrated into the facility’s building management system for automated operation, activating when dock doors open and ramping down during quieter periods.

Managing Ice Build-Up?

Talk to our team about the right dehumidification strategy for your facility.

What to Expect from a Well-Designed System

A correctly specified and installed desiccant dehumidification system in a cold storage facility will typically deliver a 60–80% reduction in evaporator defrost frequency, eliminate floor and racking ice formation in treated zones, and reduce overall refrigeration energy consumption by 15–25%.

The return on investment depends on the scale of the facility, the frequency of dock operations, and the ambient climate — but for most cold stores operating in coastal NSW, the payback period on a dehumidification system is typically 2–4 years.

  • 92% Relative humidity at deck level (pre-installation)
  • 4x Chloramine concentration exceeding safe levels
  • $240k Estimated corrosion damage to steelwork if unaddressed

Strata Building Ventilation: Upgrades, Repairs, and What You Need to Know

Older strata buildings across Sydney are running ventilation systems that were designed for different occupancy patterns and airtightness standards. Modern retrofits and cladding upgrades have made many of these buildings significantly more airtight — which means the original ventilation rates are no longer adequate.

The Airtightness Problem

Ventilation rates in older buildings relied on natural air infiltration through gaps in the building envelope. As buildings are upgraded for energy efficiency, those gaps are sealed — but the mechanical ventilation capacity is rarely upgraded at the same time.

Common Issues

Poor indoor air quality, condensation on windows and walls, and musty odours are the most common symptoms. In worst-case scenarios, inadequate ventilation contributes to mould growth that can cause structural damage and health issues for residents.

Upgrade Options

Heat recovery ventilation (HRV) systems are the preferred solution for strata upgrades. They introduce fresh air while recovering 70–85% of the heat energy from exhaust air — significantly reducing the heating penalty of ventilation in cooler climates.

Chloramine Management in Indoor Pool Facilities

Chloramines — the chemical compounds formed when chlorine reacts with organic matter in pool water — are the primary air quality challenge in indoor aquatic environments. They cause the characteristic “pool smell,” eye and skin irritation, and in high concentrations, respiratory problems.

Where Chloramines Come From

Bathers introduce nitrogen-containing compounds (sweat, urine, personal care products) into pool water. These react with chlorine to form mono-, di-, and trichloramines. Trichloramine is the most volatile and is primarily responsible for air quality issues.

The Ventilation Solution

Because trichloramine is heavier than air, it accumulates in the layer just above the water surface — at breathing height for swimmers. Effective ventilation systems supply fresh air at the pool deck level and exhaust air from above the water, creating a sweeping pattern that continuously removes chloramine-laden air.

Design Considerations

Air change rates of 6–10 ACH are typical for competitive facilities. Dehumidification must run in parallel to prevent condensation on structural elements. Heat recovery is essential given the high exhaust rates — without it, pool halls are extremely expensive to heat.