Almost Any Wood Can Be Good Firewood

FIREWOOD SPECIES GUIDE

Most untreated wood species can make useful firewood. Dryness, density, log size, storage and appliance operation usually matter more than folklore about a species being “good” or “bad”.

The practical rule: use clean, untreated wood; split and store it properly; measure moisture inside a freshly split log; and follow the appliance maker’s fuel instructions.

Woodland and young trees on the Live With Nature land in Mid Wales

THE MYTH

“Pine is no good.” “Rowan is useless.” “Only hardwood is proper firewood.”

A real mixed outdoor stack of split firewood in LWN documentary context.
Real mixed-stack context. The written guide remains the source for species behaviour and claims.

These statements usually mix together several different questions: whether wood will burn, how much heat fits into a given volume, how quickly it releases that heat, how readily it seasons, and how it behaves in a particular stove or open fire.

Not all wood-like material belongs in a fire. Do not burn painted, pressure-treated, preserved, glued, laminated or contaminated timber. Avoid wet fuel and follow local smoke-control and appliance rules.

WHAT SPECIES REALLY CHANGES

Heat per kilogram

At the same moisture content, different clean wood species are more alike by weight than folklore suggests. Moisture has a much larger effect on usable heat.

Heat per log or stacked volume

Dense woods normally put more dry wood—and therefore more potential heat—into the same-sized log or stack.

Burn behaviour

Species and log form affect ignition, flame speed, coal formation, sparks and how often the appliance needs refuelling.

Seasoning and storage

Starting moisture, split size, bark, airflow, rain protection and local weather can matter as much as the tree name.

VISUAL GUIDE

Two comparisons that explain most firewood arguments

Real split firewood stored outdoors with airflow around the stack.
Storage context only: dryness still depends on time, airflow, split size, weather and internal-face moisture testing.
Illustrative heat per stacked volume
Relative guide only: denser dry species generally pack more wood into the same stack.
Moisture versus useful heat
Illustrative trend: more of the fire’s energy is spent evaporating water as moisture rises.

The charts explain direction and relative behaviour; they are not laboratory certificates for a particular batch. Forest Research identifies moisture content as a critical woodfuel parameter and gives air-dry stacked logs at about 20% moisture a typical net calorific value of roughly 4.1 kWh/kg.

SPECIES IN PRACTICE

Firewood species: photographs, behaviour and approximate heat by stacked volume

Most clean, untreated species can make useful firewood when properly dried. The practical differences are density, ignition, flame speed, coal formation, seasoning behaviour and how much dry wood fits into a measured stack.

How to read the energy bands: estimates are for approximately one carefully stacked cubic metre of logs at about 20% moisture. They show fuel energy before stove losses. Moisture, log size, bark, gaps and stacking method can move a real batch outside the stated band.

Split Ash firewood reference photograph.

Ash

Steady heatSplits readilyDense hardwood

Popular because it handles well and gives a steady fire when dry. The old claim that Ash should be burned green is poor modern advice: dry Ash is cleaner and more efficient.

≈ 1,650–1,900 kWh per stacked m³≈ 5.6–6.5 million BTU per stacked m³

Oak firewood loaded in a trailer.

Oak

Long burnStrong coal bedNeeds time

Dense wood capable of long, steady output. Large pieces may need patient splitting and seasoning before the centre reaches a suitable moisture level.

≈ 1,700–2,000 kWh per stacked m³≈ 5.8–6.8 million BTU per stacked m³

Beech logs with pale cut ends and smooth grey bark.

Beech

Dense hardwoodSteady outputGood coals

A dense, dependable fuel when thoroughly dry. It generally gives sustained heat and a useful coal bed, but thick rounds still require adequate seasoning.

≈ 1,700–2,000 kWh per stacked m³≈ 5.8–6.8 million BTU per stacked m³

Alder catkins on a tree in natural colour.

Alder

Lighter hardwoodResponsive heatMixed loads

A lighter hardwood that can season comparatively readily when split. Useful for shoulder-season fires, quicker heat and mixed loads.

≈ 1,450–1,650 kWh per stacked m³≈ 4.9–5.6 million BTU per stacked m³

Freshly cut Hazel poles in woodland.

Hazel

Coppice fuelQuick responseMixed stack

Traditional coppice material that is easy to process into smaller stove-sized pieces. Useful for lighting, responsive heat and mixed loads.

≈ 1,550–1,800 kWh per stacked m³≈ 5.3–6.1 million BTU per stacked m³

Freshly cut Willow poles on woodland ground.

Willow

Lower densitySplit earlyUseful fuel

Often criticised because wet rounds dry slowly. Once split and thoroughly seasoned it is useful fuel, although its lower density means shorter burns per log.

≈ 1,400–1,550 kWh per stacked m³≈ 4.8–5.3 million BTU per stacked m³

Rowan tree with natural red berry clusters.

Rowan

Medium-denseSteady flameLess traded

A useful medium-density hardwood with no sound basis for being dismissed. Season properly and judge the actual batch rather than folklore.

≈ 1,600–1,850 kWh per stacked m³≈ 5.5–6.3 million BTU per stacked m³

Cut Hawthorn logs showing bark and pale end grain.

Hawthorn

Very denseSustained heatHedgerow wood

Dense hedgerow wood capable of strong, sustained heat. Thorny, crooked pieces can be awkward to process, so gloves and careful sizing matter.

≈ 1,750–2,000 kWh per stacked m³≈ 6.0–6.8 million BTU per stacked m³

Stacked Leylandii or conifer firewood.

Leylandii / conifer

Quick ignitionFast heatEnclosed appliance

Dry conifer is legitimate fuel in a suitable appliance. It generally burns faster per log than denser hardwood and may spark more, so dryness and correct operation matter.

≈ 1,450–1,700 kWh per stacked m³≈ 4.9–5.8 million BTU per stacked m³

Large real outdoor stack of mixed split firewood.

Mixed stack

Variable densityPractical local supplyTest moisture

Mixed local firewood can combine quick-lighting pieces with denser, longer-burning logs. Its energy per stacked volume depends on the actual species mix and packing.

≈ 1,400–2,000 kWh per stacked m³≈ 4.8–6.8 million BTU per stacked m³

Other useful UK firewoods

These UK species are shown with provisional generated reference imagery. The written guide—not the image alone—remains the source for firewood behaviour and energy claims.

Cut Larch logs showing rough bark and warm-coloured heartwood.

Larch

A resinous softwood that can provide quick, lively heat. Use dry fuel in a suitable enclosed appliance.

≈ 1,500–1,750 kWh/m³≈ 5.1–6.0 million BTU/m³
Freshly cut Scots pine logs in a UK woodland setting.

Scots pine

Useful for kindling, quick warm-up and daytime fires. Dryness matters more than resin folklore.

≈ 1,450–1,700 kWh/m³≈ 4.9–5.8 million BTU/m³
Spruce rounds and split firewood in a UK plantation setting.

Spruce

A practical lower-density softwood for kindling, quick heat and mixed loads.

≈ 1,400–1,650 kWh/m³≈ 4.8–5.6 million BTU/m³
Freshly cut Birch logs and split firewood in a UK woodland-edge setting.

Birch

Responsive general firewood that lights readily and works well in mixed loads.

≈ 1,550–1,800 kWh/m³≈ 5.3–6.1 million BTU/m³
Freshly cut Sycamore rounds and split logs from a UK hedgerow.

Sycamore

Useful general hardwood, often easy to process and well suited to mixed household stacks.

≈ 1,550–1,800 kWh/m³≈ 5.3–6.1 million BTU/m³
Field Maple logs and split firewood from a UK hedgerow.

Field Maple

A useful medium-density UK hardwood, often arising from hedgerow work, pruning or small woodland management.

≈ 1,600–1,850 kWh/m³≈ 5.5–6.3 million BTU/m³
Cut Blackthorn poles and split firewood from UK hedgerow management.

Blackthorn

Very dense and potentially hot-burning once dry. Thorny material needs careful handling.

≈ 1,750–2,000 kWh/m³≈ 6.0–6.8 million BTU/m³
Apple wood logs and split firewood in a UK orchard.

Apple

Dense fruitwood with steady heat. Orchard removals and pruning can produce excellent fuel.

≈ 1,700–1,950 kWh/m³≈ 5.8–6.7 million BTU/m³
Cherry logs and split firewood in a UK orchard or garden setting.

Cherry

A useful fruitwood for general or mixed loads. Aroma does not replace moisture testing.

≈ 1,650–1,900 kWh/m³≈ 5.6–6.5 million BTU/m³
Pear and plum pruning wood prepared as firewood in a UK orchard.

Pear and plum

Dense orchard woods that usually enter the household stack in irregular mixed batches.

≈ 1,700–1,950 kWh/m³≈ 5.8–6.7 million BTU/m³
Elm logs showing fibrous interlocking grain after splitting.

Elm

Useful firewood that can be difficult to split because of interlocking grain.

≈ 1,600–1,850 kWh/m³≈ 5.5–6.3 million BTU/m³
Sweet Chestnut coppice logs and split firewood.

Sweet chestnut

Can give useful heat but may spit or spark, especially on open fires.

≈ 1,550–1,800 kWh/m³≈ 5.3–6.1 million BTU/m³
Horse Chestnut logs from UK park or estate tree work.

Horse chestnut

A lighter hardwood that can contribute usefully to mixed loads when clean and dry.

≈ 1,450–1,650 kWh/m³≈ 4.9–5.6 million BTU/m³
Poplar rounds and split logs from UK field-edge management.

Poplar

Low-density and quick-burning. Split promptly and expect to use more stacked volume.

≈ 1,400–1,550 kWh/m³≈ 4.8–5.3 million BTU/m³
Common Lime logs prepared from UK avenue or estate tree work.

Lime

A lighter hardwood commonly encountered through avenue, park and garden tree work.

≈ 1,450–1,700 kWh/m³≈ 4.9–5.8 million BTU/m³

Evidence basis: Forest Research gives air-dry stacked logs at about 20% moisture a broad energy density of approximately 1,400–2,000 kWh per stacked cubic metre. The narrower species bands above are editorial estimates within that published range, informed mainly by relative dry-wood density. They are not laboratory results, guarantees or measurements of a supplied batch.

ASH DIEBACK AND CURRENT AVAILABILITY

Why more Ash is entering local supply chains

Young trees and field-edge planting at Live With Nature.
Land-management context only; disease diagnosis and felling decisions require appropriate evidence and guidance.
Close documentary detail of real split log ends in an outdoor stack.
Firewood texture and form are shown for context; this image is not independent proof that an individual log is Ash.
Mid Wales landscape and woodland context
Local woodland management sits within a wider landscape and biodiversity context.

Ash dieback is a destructive disease of ash caused by the fungus Hymenoscyphus fraxineus. It is expected to cause substantial loss, but management is not simply “fell every ash tree”. Welsh policy and Natural Resources Wales guidance emphasise monitoring, safety, proportionate intervention, biosecurity, biodiversity and retention of potentially tolerant or ecologically valuable trees where appropriate.

Where trees must be removed for safety, access or woodland management, using suitable timber can help avoid waste and offset some management costs. That temporary increase in available Ash can create locally attractive firewood opportunities—but provenance, permissions, safety and ecological judgement still matter.

Live With Nature’s current practical position: this limited Ash release is an opportunity to obtain measured local hardwood while availability is strong and store it ahead of winter. This is a commercial and storage recommendation, not a claim that diseased trees should be felled indiscriminately or that Ash is always nationally cheaper than oak or beech.

BUY NOW, BURN LATER

Why early storage can be more important than chasing a species name

A real long outdoor stack of split firewood held between timber supports.
Documentary stack context: keep the top protected, sides ventilated and confirm dryness from freshly split internal faces.
Action Why it matters
Buy before peak winter demand Gives more time to organise supply, delivery access and storage.
Stack off the ground Reduces ground moisture and improves airflow below the stack.
Cover the top, ventilate the sides Protects from repeated wetting without trapping moisture.
Split a sample before testing The fresh internal face gives a more meaningful moisture reading than the outer surface.
Mix species deliberately Quick-lighting wood can establish the fire; denser logs can then extend steady output.

WATCH AND VERIFY

Video and evidence pathway

GETTING READY FOR WINTER

A five-part practical series

1

Dryness matters more than folklore

How moisture changes useful heat, smoke and stove behaviour.

2

What species changes

Density, ignition, flame speed, coals and mixed loads.

3

Ash dieback and responsible use

Why Ash is entering supply chains and what responsible management means.

4

How much should you store?

Measured volume, appliance demand and winter planning.

5

Stack, ventilate and moisture-test

A repeatable household storage and checking routine.