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GB/T 10801.2 XPS300 · other

GB/T 10801.2 XPS300-HFC

Properties of the HFC condition, compared with the other GB/T 10801.2 XPS300 grades.

Use only for legacy products or special export specifications chasing the lowest initial conductivity of 0.027 W/m·K; the high-GWP blowing agents are being phased out domestically.

Standard cost $$

What is GB/T 10801.2 XPS300-HFC?

GB/T 10801.2 XPS300-HFC is GB/T 10801.2 XPS300 in the HFC condition — use only for legacy products or special export specifications chasing the lowest initial conductivity of 0.027 W/m·K; the high-GWP blowing agents are being phased out domestically. GB/T 10801.2 XPS300-HFC has a tensile strength of 0.5 MPa (0.0725 ksi), weaker than 89% of polymer grades. The elastic modulus is 0.01 GPa (0.002 Msi). GB/T 10801.2 XPS300-HFC has a density of 0.04 g/cm³ (0.0013 lb/in³), lighter than 92% of polymer grades. Its glass-transition temperature is 100°C (212 °F). B1 is the default condition FabDigit quotes; HFC is available on request or by drawing note.

Advantages

  • Easy to machine — 95/100, better than 100% of polymer grades
  • Lightweight — 0.04 g/cm³ (0.0013 lb/in³), better than 92% of polymer grades

Limitations

  • High embodied carbon — 20 kg CO₂/kg, worse than 100% of polymer grades
  • Poor heat conductor — 0.03 W/m·K (0.0156 BTU/hr·ft·°F), worse than 99% of polymer grades
  • Degrades in UV without stabilisers — 15/100, worse than 95% of polymer grades
  • Low stiffness — 0.01 GPa (0.002 Msi), worse than 79% of polymer grades
  • Difficult to weld — 20/100, worse than 78% of polymer grades

GB/T 10801.2 XPS300-HFC properties

Typical room-temperature values for GB/T 10801.2 XPS300-HFC — 2 properties are specific to this condition; the rest are grade-level values shared by every GB/T 10801.2 XPS300 grade. Each bar shows where the value sits among the polymer grades in FabDigit's library — further right is higher.

Physical4

GB/T 10801.2 XPS300-HFC has a density of 0.04 g/cm³ (0.0013 lb/in³), lighter than 92% of polymer grades. Its glass-transition temperature is 100°C (212 °F).

Density0.04 g/cm³0 lb/in³
Glass Transition (Tg)100°C212 °F
Water Absorption (24 h)0.2%
Water Absorption (Saturation)1%

Mechanical8

GB/T 10801.2 XPS300-HFC has a tensile strength of 0.5 MPa (0.0725 ksi), weaker than 89% of polymer grades. The elastic modulus is 0.01 GPa (0.002 Msi).

Elastic (Young's) Modulus0.01 GPa0 Msi
Shear Modulus0.01 GPa7.25×10⁻⁴ Msi
Poisson's Ratio0.3
Tensile Strength (Ultimate)0.5 MPa0.07 ksi
Compressive Strength0.33 MPa0.05 ksi
Compressive Modulus0.01 GPa0 Msi
Flexural Strength0.6 MPa0.09 ksi
Shear Strength0.25 MPa0.04 ksi

Thermal8

GB/T 10801.2 XPS300-HFC is rated for continuous service to 75°C (167 °F). It conducts heat at 0.03 W/m·K (0.0156 BTU/hr·ft·°F), worse than 99% of polymer grades. Thermal expansion is 70 µm/m·K (38.9 µin/in·°F).

Thermal Conductivity0.03 W/m·K0.02 BTU/hr·ft·°F
Specific Heat Capacity1,300 J/kg·K0.31 BTU/lb·°F
Thermal Expansion (CTE, 20–100 °C)70 µm/m·K38.9 µin/in·°F
Max Service Temperature (continuous)75°C167 °F
Min Service Temperature-50°C-58 °F
Flammability (UL 94)GB 8624 B1(B/C ) UL 94 HF-1
Limiting Oxygen Index27%
Max Service Temperature (short-term)85°C185 °F

Electrical4

GB/T 10801.2 XPS300-HFC has an electrical resistivity of 1×10¹⁴ Ω·m.

Electrical Resistivity1×10¹⁴ Ω·m3.94×10²¹ µΩ·in
Dielectric Constant (1 MHz)1.05
Dissipation Factor (1 MHz)3×10⁻⁴
Volume Resistivity1×10¹⁶ Ω·cm

Chemical & Environmental2

UV resistance is poor.

UV / Weathering ResistancePoor15/100
Chemical Resistance Summary

Sustainability4

Producing a kilogram of GB/T 10801.2 XPS300-HFC takes about 100 MJ of energy and emits 20 kg of CO₂ — less than 61% of polymer grades. Typical recycled content is 15%.

Embodied Energy (primary production)100 MJ/kg42,992 BTU/lb
Embodied Carbon (primary production)20 kg CO₂/kg
Embodied Water120 L/kg14.4 gal/lb
Typical Recycled Content15%

Manufacturability4

GB/T 10801.2 XPS300-HFC's machinability is excellent (95/100, better than 100% of polymer grades); weldability poor (20/100); formability poor (25/100).

MachinabilityExcellent95/100
WeldabilityPoor20/100
Formability (cold)Poor25/100
Processing Melt Temperature (typ.)200°C392 °F

Values are nominal handbook figures for design screening. Certified mill or lot data ships with every FabDigit order on request.

Other GB/T 10801.2 XPS300 grades and fills

GB/T 10801.2 XPS300 is also supplied in 6 other conditions. The full side-by-side table is on the GB/T 10801.2 XPS300 overview.

Working with GB/T 10801.2 XPS300-HFC

Is GB/T 10801.2 XPS300 easy to machine?

Hot wire, saw blade or utility knife all cut it at high speed, and grooving or routing needs no coolant. Excessive hot-wire temperature generates fumes, so ventilate the cutting area.

Can GB/T 10801.2 XPS300 be welded?

Not fusion weldable; seal board joints with polyurethane foam adhesive, water-based or solvent-free adhesive, or dedicated jointing tape. Do not use adhesives containing aromatic solvents.

Can GB/T 10801.2 XPS300 be formed, bent or molded?

Geometry is set on the extrusion foaming line, so finished board can only be cut and grooved. The rigid foam has a large minimum cold-bend radius and cracks readily when bent, so produce contoured parts by CNC cutting.

What surface finishes work on GB/T 10801.2 XPS300?

Scarify or groove the surface, or apply a bonding primer, before troweling polymer mortar over glass-fibre mesh. Do not leave it exposed to UV for long periods; exposed faces must be coated or shielded.

GB/T 10801.2 XPS300 chemical composition (wt %)

Limits by weight percent from the governing specification, written the way the spec states them — a single maximum for impurities, a range for alloying elements, and the base element as balance. Nominal is the typical mid-range value.

ElementSpec limit (wt %)Nominal
blowing agent (CO2 / co-blowing agentresidual blowing gas in closed cells1 – 42.5
flame retardant ( PolyFR, HBCD)required for class B1; can be reduced for class B20.5 – 2.51.2
nucleating agent (talc )controls cell size0.2 – 10.5
pigment /used for brand identification0.05 – 0.50.2
polystyrene (PS, PS)mainly general-purpose or high-flow GPPS≥ 92 (balance)

GB/T 10801.2 XPS300-HFC — frequently asked

What is GB/T 10801.2 XPS300-HFC used for?

GB/T 10801.2 XPS300-HFC is typically used for under-slab foundation insulation, parking deck insulation, inverted (protected-membrane) roof boards, perimeter and frost-wall insulation, cold storage floor insulation and render-carrier boards on exterior walls. In short: mid-load structural XPS; 300 kPa load class; 0.029 W/mK conductivity.

What is the tensile strength of GB/T 10801.2 XPS300-HFC?

GB/T 10801.2 XPS300-HFC has a typical tensile strength of 0.5 MPa (0.0725 ksi) — weaker than 89% of polymer grades. Strength varies by condition: see the 7 listed tempers.

Is GB/T 10801.2 XPS300-HFC easy to machine?

Yes — machinability is rated excellent (95/100, better than 100% of polymer grades). Hot wire, saw blade or utility knife all cut it at high speed, and grooving or routing needs no coolant. Excessive hot-wire temperature generates fumes, so ventilate the cutting area.

Can GB/T 10801.2 XPS300-HFC be welded?

Not readily — weldability is rated poor (20/100). Not fusion weldable; seal board joints with polyurethane foam adhesive, water-based or solvent-free adhesive, or dedicated jointing tape. Do not use adhesives containing aromatic solvents.

What surface finishes work on GB/T 10801.2 XPS300-HFC?

Scarify or groove the surface, or apply a bonding primer, before troweling polymer mortar over glass-fibre mesh. Do not leave it exposed to UV for long periods; exposed faces must be coated or shielded.

Can GB/T 10801.2 XPS300-HFC be formed, bent or molded?

Geometry is set on the extrusion foaming line, so finished board can only be cut and grooved. The rigid foam has a large minimum cold-bend radius and cracks readily when bent, so produce contoured parts by CNC cutting.

What is the maximum service temperature of GB/T 10801.2 XPS300-HFC?

GB/T 10801.2 XPS300-HFC is rated for continuous use to about 75°C (167 °F), and briefly to 85°C. Strength falls off well before that limit — check the elevated-temperature data for load-bearing parts.

Sources

  1. ASM Engineered Materials Handbook, Vol. 2 — Engineering Plastics (PS foams)ASM International (1988)
  2. ICE / EPD XPS insulation boardUniversity of Bath / EPD Programmes (2019)

Property data is compiled from published supplier and standards handbooks and normalised for comparison. Nothing on this page is a certification — request mill certs, CoC or material test reports with your order.