🧊 Thermal Conductivity Coefficient λ

Construction PN-EN 12667

In short

Determination of thermal conductivity coefficient λ of insulation and building materials by guarded hot plate (GHP) or heat flow meter (HFM) method. The test is performed according to PN-EN 12667:2002; Range λ (GHP): 0.01–0.5 W/(m·K). The procedure comprises 6 steps (about 1 days 2 h 55 min–1 days 12 h 55 min in total); it is used for: Certification of insulation products (EPS, wool, PIR, XPS), Declaration of Performance (DoP) — CE marking, Building thermal calculations (U-value of partitions).

At a glance

  • Standard: PN-EN 12667:2002
  • Category: Construction
  • Procedure steps: 6
  • Total time of stages: 1 days 2 h 55 min–1 days 12 h 55 min
  • Range λ (GHP): 0.01–0.5 W/(m·K)
  • Range λ (HFM): 0.02–0.5 W/(m·K)
  • Accuracy (GHP): ±2%

Overview

Thermal conductivity coefficient λ [W/(m·K)] is key thermal insulation parameter of building materials. Lower λ means better thermal insulation properties. Typical values: EPS foam 0.031–0.040, mineral wool 0.032–0.040, concrete 1.0–1.5, brick 0.6–0.8, wood 0.13–0.18.

Standard PN-EN 12667 describes two reference methods: - Guarded Hot Plate (GHP) — absolute method, most accurate - Heat Flow Meter (HFM) — comparative method, faster

Value λ is essential for building thermal calculations (MIiR Regulation 2015), insulation thickness selection, Declaration of Performance (DoP) of building materials, and building energy certification.

Method principle

GHP method (guarded hot plate): Material specimen of known thickness d is placed between hot plate (hot) and cooling plate (cold). Guard zone eliminates lateral heat losses. After reaching steady state, heating power Q, plate temperatures T₁ and T₂, and thickness d are measured.

λ = Q × d / (A × ΔT) [W/(m·K)]

where Q — heating power [W], d — thickness [m], A — heating area [m²], ΔT = T₁ - T₂ [K].

HFM method: analogous, but heat power measured by heat flux transducer calibrated on reference material.

Applications

Key parameters

ParameterValue
Range λ (GHP)0.01–0.5 W/(m·K)
Range λ (HFM)0.02–0.5 W/(m·K)
Accuracy (GHP)±2%
Accuracy (HFM)±3–5%
Specimen dimensions300×300 mm or ø300 mm
Specimen thickness20–100 mm (typical)

Standard

Standard number
PN-EN 12667:2002
Title (PL)
Właściwości cieplne materiałów i wyrobów budowlanych — Określanie oporu cieplnego metodami osłoniętej płyty grzejnej i przepływomierza cieplnego — Wyroby o dużym i średnim oporze cieplnym
Title (EN)
Thermal performance of building materials and products — Determination of thermal resistance by means of guarded hot plate and heat flow meter methods — Products of high and medium thermal resistance

Step-by-step procedure

  1. Specimen preparation

    Cut specimen to apparatus dimensions (e.g., 300×300 mm). Measure thickness (min. 5 points, average). Weigh (to calculate density). Condition at 23°C/50% RH min. 24 h.

    ⏱ Time: 24 h

  2. Apparatus configuration

    Set plate temperatures: T_hot = 35°C, T_cold = 15°C (average 25°C, ΔT = 20 K). Or per product standard requirements.

    ⏱ Time: 5 min

  3. Specimen placement

    Place specimen centrally between plates. Ensure full contact (no gaps). In GHP — check guard zone.

    ⏱ Time: 5 min

  4. Measurement

    Start measurement. Apparatus automatically reaches steady state (ΔT stability < 0.1 K for 30 min). Measurement time: 2–12 h (depends on material).

    ⏱ Time: 2–12 h

  5. Result reading

    Software calculates λ, R (thermal resistance), heat power. Perform min. 3 repetitions. Calculate average and standard deviation.

    ⏱ Time: 15 min

  6. Reporting

    Report λ with accuracy 0.001 W/(m·K). Specify measurement conditions (temperatures, specimen moisture, density). Determine declared value λD per PN-EN ISO 10456.

    ⏱ Time: 30 min

Required equipment and apparatus

EquipmentExampleIndicative price
GHP apparatusNetzsch GHP 456, Lambda-Messtechnik, LaserComp FOX200,000–500,000 PLN
HFM apparatusNetzsch HFM 446, LaserComp FOX 314/600, Hukseflux TRSYS100,000–300,000 PLN
Laboratory ovenFor specimen conditioning (70°C)5,000–15,000 PLN
Caliper / thickness gaugeFor specimen thickness measurement with accuracy 0.1 mm200–1,000 PLN
Analytical balanceFor specimen density determination5,000–15,000 PLN

Health and safety (OHS)

Frequently asked questions

Which standard describes this test?

The test is performed according to PN-EN 12667:2002 — “Thermal performance of building materials and products — Determination of thermal resistance by means of guarded hot plate and heat flow meter methods — Products of high and medium thermal resistance”.

How does this method work?

GHP method (guarded hot plate): Material specimen of known thickness d is placed between hot plate (hot) and cooling plate (cold). Guard zone eliminates lateral heat losses.

What is the measuring range and accuracy?

Range λ (GHP): 0.01–0.5 W/(m·K); Range λ (HFM): 0.02–0.5 W/(m·K); Accuracy (GHP): ±2%; Accuracy (HFM): ±3–5%.

How long does the test take?

The times given for the individual stages add up to approximately 1 days 2 h 55 min–1 days 12 h 55 min. The procedure comprises 6 steps.

What equipment is required?

GHP apparatus, HFM apparatus, Laboratory oven, Caliper / thickness gauge, Analytical balance. Indicative cost of the core instrument (GHP apparatus): 200,000–500,000 PLN.

Where is this test used?

Certification of insulation products (EPS, wool, PIR, XPS); Declaration of Performance (DoP) — CE marking; Building thermal calculations (U-value of partitions); Quality control of insulation material production; R&D of new thermal insulation materials; Assessment of natural material insulation (cellulose, hemp, sheep wool).

What safety precautions apply?

Hot plates — temperature up to 80°C, burn risk; Insulation materials — dust (mineral wool), FFP2 mask; Specimen cutting — caution with cutting tools.

Which laboratory can perform this test?

The test is performed by laboratories accredited to ISO/IEC 17025. On LabCoda you can find them by the standard number PN-EN 12667.

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