G AND N FORTUNE logo G AND N FORTUNELIMITED · SINCE 1996

Heating Is a Production Decision, Not a Winter Expense

Growers in warm climates build cooling capacity first and treat heating as an accessory. Then a cold snap arrives, root-zone temperature drops out of range, nutrient uptake stalls, and the harvest window moves by two weeks — which costs more than the heating system would have.

This guide covers how to size heat load for a hydroponic greenhouse, how to compare heating options on total cost rather than equipment price, why root-zone temperature deserves its own line in the budget, and what to specify before you request quotes.

Step 1: Calculate the Heat Load Before Choosing Equipment

The basic steady-state load is:

Q = U × A × ΔT + infiltration losses + ground losses

Where U is the overall heat transfer coefficient of the covering, A is the exposed surface area, and ΔT is the difference between your target night temperature and the design outside temperature. Your design temperature is a business decision: heating to −10 °C costs far more than heating to −2 °C, and the difference belongs in the feasibility model, not in an engineer’s assumptions.

Typical U-values by covering

CoveringU-value (W/m²·K)Comment
Single polyethylene film6.0–6.8Cheapest structure, highest heat loss
Double inflated poly film3.8–4.2The default economics in most commercial projects
Twin-wall polycarbonate3.0–3.5Better insulation, longer life, higher CAPEX
Single glass5.5–6.0Light transmission and durability, poor insulation
Double glass2.8–3.2Premium projects, high CAPEX
Single film + thermal screen≈2.5–3.0The cheapest way to halve the night load on an existing house

Covering choice is covered in more depth in our covering materials comparison. Note that the covering decision and the heating decision should be made together — a thermal screen often removes more load per dollar than a bigger boiler.

Worked example. A 1,000 m² double-poly house (U ≈ 4.0, surface area ≈ 1,350 m²) holding 15 °C against a −5 °C design night (ΔT = 20 K): 4.0 × 1,350 × 20 ≈ 108 kW, before infiltration. With a well-sealed house and a closed thermal screen, the effective requirement typically falls to 55–70 kW. Without the screen, you buy and fuel a 108 kW system for the coldest night of the year.

Step 2: Cut the Load Before You Size the Heater

In order of return on investment:

Get the dehumidification side right as well: heating a leaky, humid house wastes energy condensing water you then have to remove. Ventilation strategy is covered in the ventilation design guide.

Step 3: Compare Heating Options on Delivered Heat Cost

OptionCAPEXRunning cost profileBest fitConstraints
Hot-water boiler (gas / LPG / diesel / biomass)Medium–highFollows fuel price; stable and well understoodMost medium and large commercial projects; the reference optionBoiler room, flue, fuel storage, emissions permitting
Forced-air unit heatersLowModerateSmall houses, mild climates, backup dutyUneven temperature distribution, dry spots near outlets
Air-source heat pumpMedium–highLow where electricity is cheap; COP 2.5–4 in mild coldMild winters, sites with good power supply or solarCapacity and COP fall as outside temperature drops
Water-source / ground-source heat pumpHighLowest and most stableSites with water or land for the loop; long-horizon projectsCivil works, hydrogeology, higher up-front cost
Electric resistance / infraredLowHighest per kWhZonal topping, propagation rooms, backupOnly viable where power is very cheap or duty is short
Waste heat / CHPProject-specificVery low where a source existsIndustrial co-location, greenhouse clustersDepends entirely on a suitable neighbouring source

Compare on cost per delivered kWh of useful heat, including boiler or COP efficiency, maintenance, and expected fuel price over ten years — not on equipment price. Fuel price assumptions belong in the same model as the rest of your farm energy budget.

Root-Zone Temperature: The Number Growers Forget to Budget For

Air temperature is what most heating specs address. Root-zone temperature is what controls nutrient uptake and disease pressure — and cold solution is where winter crops quietly fail.

CropTarget root-zone temperatureConsequence of running cold
Lettuce & leafy greens18–22 °CSlow growth, tipburn risk from uptake imbalance
Tomato, cucumber, pepper20–24 °CReduced uptake, delayed fruiting, higher Pythium pressure
Strawberry15–18 °CPoor root function, flower and fruit development issues
Herbs18–22 °CStalled growth, extended crop cycle

Practical measures:

Cold solution and low dissolved oxygen are also the classic entry point for root rot: the plant’s defence slows while the pathogen does not.

Distribution and Control

Even heat beats more heat. A system that holds ±2 °C across the house outperforms one with a 6 °C gradient running a higher setpoint.

Planning for the Coldest Night: Power, Frost and Failure

Heating without resilience is a single-point failure on the whole crop.

Cold-season disease pressure rises with reduced venting — pair the heating plan with the IPM programme, particularly for botrytis and mildew in a sealed, humid house.

Energy Budget: What to Expect

Lit ebb and flow tables producing greens through the winter inside an insulated hydroponic house

Annual heating energy varies enormously by climate and structure, but the ranges below are useful for feasibility work:

ClimateAnnual heating demandComment
Warm / subtropical0–40 kWh/m²·yearOften only propagation and frost protection
Temperate80–150 kWh/m²·yearSeasonal heating, screen does most of the work
Cold continental200–350 kWh/m²·yearHeating becomes a first-order operating cost
Cold with high-value crop350–500 kWh/m²·yearRequires waste heat, CHP or a very strong crop margin

Model heating together with cooling: the same envelope decisions drive both, and a house optimised only for summer often has an expensive winter.

What to Send With Your Heating RFQ

These inputs sit inside the wider project list in 12 inputs a supplier needs — missing climate data is the most common reason heating quotes are not comparable.

Five Heating Mistakes

FAQ

How much heating capacity does a 1,000 m² hydroponic greenhouse need?

Calculate it: U × surface area × ΔT, plus infiltration. A double-poly house holding 15 °C against −5 °C lands near 108 kW unscreened, and roughly 55–70 kW with a closed thermal screen and good sealing.

Is a heat pump viable for a commercial hydroponic greenhouse?

In mild and temperate climates, yes — COPs of 2.5–4 make it competitive with fossil fuels on running cost. Capacity falls as outside temperature drops, so most cold-climate projects keep a boiler or electric backup for design nights.

Do I need to heat the nutrient solution separately?

If the reservoir drops below the crop’s root-zone target in winter, yes. Insulation and a buffer tank are the first steps; a plate heat exchanger or dedicated heat pump gives you real control.

What is the cheapest way to cut winter heating cost?

A thermal screen. It typically removes 30–50% of night heat demand for a fraction of the cost of additional generating capacity, and it pays back faster than almost any other energy measure.

Should the heating design temperature be the coldest recorded temperature?

Not necessarily. Designing to an extreme means large capital spent for a handful of hours. Most projects design to a practical minimum and accept a managed temperature drop, with frost protection rather than full production temperature, on the coldest nights.

Sizing Heating for a New or Existing House?

Send your location, greenhouse dimensions, covering, crop and target temperatures through the quote form. Our engineers will return a heat load calculation, a screen-versus-capacity comparison and a heating specification matched to your system type and local fuel prices.

Leave a Reply

Your email address will not be published. Required fields are marked *