Thermalconcept
Thermal mass, resistance, and lag
One-line orientation
Thermal mass stores heat and releases it slowly, moderating indoor temperature swings and shifting peak loads — it is distinct from insulation (thermal resistance), which simply slows heat flow without storing it.
Key points
- Thermal mass: the ability of a material to absorb and store heat energy. Dense, high- specific-heat materials (concrete, masonry, brick, rammed earth, water) have high thermal mass. Light materials (wood framing, glass, light steel) have low mass.
- Moderating effect: a high-mass building absorbs heat during the hot part of the day and releases it slowly, reducing the amplitude of indoor temperature swings and shifting peak cooling or heating loads to off-peak periods.
- Thermal lag: the time delay between when peak temperature occurs on the exterior face of an assembly and when that temperature peak arrives at the interior face. A thick concrete wall may have a lag of several hours, meaning the exterior noon peak arrives indoors at, say, 6 PM.
- Thermal resistance (R-value): governs the rate at which heat flows through a material; insulation slows heat flow without significantly storing it. High R ≠ high mass — they are different mechanisms.
- Climate suitability: thermal mass is most beneficial in climates with large diurnal (day–night) temperature swings — common in hot-dry or high-desert climates — where cool nights can purge stored heat. In humid climates with warm nights, mass may trap heat and become a liability if not paired with night ventilation.
- Design implication: surface color and exposure matter — dark, exposed mass absorbs and re-radiates more than light-colored or insulation-covered mass. Trombe walls and earthen construction exploit thermal mass deliberately.
Thermal mass works as a day–night cycle
SECTION + CURVEStore heat in exposed mass by day; purge it with cool air at night; the indoor peak becomes lower and later.
View diagram Hide diagram 2 panels
2 panels side by side — swipe to compare
- hatched slab + blue surface = exposed mass
- blue = high-mass strategy and delayed outcome
Mass stores heat; insulation resists heat flow. High thermal mass is not the same as high R-value.
Confusions / comparison
| Thermal mass | Thermal resistance (R-value) | |
|---|---|---|
| Property | Ability to absorb and store heat | Ability to slow the rate of heat flow |
| Primary metric | Specific heat capacity × density × volume | R-value (h·ft²·°F/BTU) |
| Effect on temperature | Reduces swing amplitude; shifts peak (lag) | Reduces heat flux rate, not storage |
| Typical materials | Concrete, masonry, brick, water, earth | Fiberglass batt, rigid foam, mineral wool |
| Benefit climate | Hot-dry with large diurnal swings; passive solar | All climates — always reduces conductive loss |
| Interplay | Mass on interior side of insulation = best passive thermal storage; mass outside insulation = less interior benefit | Insulation outside mass = mass stays at interior temperature |
| Material | Thermal mass | Thermal resistance | Notes |
|---|---|---|---|
| Concrete (8” wall) | High | Low | Dense, absorbs and stores heat well |
| Brick / CMU | High | Low | Classic masonry mass |
| Fiberglass batt | Very low | High | Insulates, does not store |
| Rigid foam (XPS) | Very low | High | Insulates, does not store |
| Wood framing | Low-moderate | Low-moderate | Neither a strong insulator nor strong mass |
| Water wall / drum | Very high | Very low | Maximum thermal storage per volume |
Related
→ Thermal: Heat-transfer modes (conduction is the mechanism through which mass absorbs and releases heat) · Building loads & degree days (mass reduces peak load, shifting degree-day impact over time) · Construction: Enclosure (mass-on-interior-side-of-insulation vs mass-on-exterior-side placement strategy) · Site: passive solar design (Trombe walls, earthen construction, siting for diurnal swing exploitation).
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