MAT GRADES • 105 VERIFIED MATERIALS • SOURCE-LINKED PROPERTIES

Material Comparison

Compare verified engineering materials side by side with condition-specific mechanical properties.

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Material A (Baseline)
Material B (Comparison)
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Temper & Metallurgical Context Qualification:The selected records contain different or missing source contexts. Values shown in separate rows are not directly matched. Typical and estimated values are not guaranteed minima; matching context alone does not establish interchangeability.
1. Identity, Classification & Standards
ParameterSilver 835Sterling Silver 925
Material FamilySilver & Silver AlloysSilver & Silver Alloys
SubfamilyAlloyed SilverSterling Silver
DIN Designation2.3835Ag925
ISO DesignationAg835Ag925
EN DesignationAgCu16.5—
SPECIFICATION DesignationDIN 17510 Feinsilber und SilberlegierungenASTM B742 Standard Specification for Fine Silver Contact Material (Grade 92.5)
UNS Designation—P07925
ASTM Designation—B742 Grade 92.5
W-Nr Designation—2.1213
UK-HALLMARK Designation—925
2. Chemical Composition Limits (wt %)Source-specific limits and typical values
ElementSilver 835Sterling Silver 925
Ag (Silver)≥ 83.5%≥ 92.5%
Cu (Copper)16 – 16.5%7.2 – 7.5%
3. Physical Properties
PropertySilver 835Sterling Silver 925
Density · TYPICAL · 20 °CUnit: g/cm³10.22 g/cm³10.36 g/cm³
4. Contextual Mechanical PropertiesUnit: SI
Mechanical ParameterSilver 835Annealed (Soft)Sterling Silver 925Annealed (O Temper)
Modulus of Elasticity · TYPICALUnit: GPa85 GPa82 GPa
Yield Strength (0.2% Offset) · Strip & Wire · Annealed (Soft) · TYPICALUnit: MPa≥ 180 MPa— MPa
Yield Strength (0.2% Offset) · Strip, Sheet, Wire · Annealed (O Temper) · TYPICALUnit: MPa— MPa≥ 125 MPa
Ultimate Tensile Strength · Strip & Wire · Annealed (Soft) · TYPICALUnit: MPa≥ 280 MPa— MPa
Ultimate Tensile Strength · Strip, Sheet, Wire · Annealed (O Temper) · TYPICALUnit: MPa— MPa≥ 220 MPa
Elongation at Break · Strip & Wire · Annealed (Soft) · TYPICALUnit: %≥ 24 %— %
Elongation at Break · Strip, Sheet, Wire · in 50 mm (2 in) · Annealed (O Temper) · TYPICALUnit: %— %≥ 28 %
Poisson's Ratio · TYPICALUnit: dimensionless— dimensionless0.36 dimensionless
5. Electrical & Thermal Conductive Properties
PropertySilver 835Sterling Silver 925
Electrical Conductivity · TYPICAL · 20 °CCategory: ELECTRICAL • Unit: % IACS72 % IACS84 % IACS
Electrical Resistivity · TYPICAL · 20 °CCategory: ELECTRICAL • Unit: nΩ·m— nΩ·m20.5 nΩ·m
Thermal Conductivity · TYPICAL · 20 °CCategory: THERMAL • Unit: W/(m·K)380 W/(m·K)410 W/(m·K)
Melting Range (Solidus-Liquidus) · RANGECategory: THERMAL • Unit: °C779–830 °C779–893 °C
6. Hardness Evaluation (Discrete Scales Preserved)No cross-scale mathematical conversion
Hardness ScaleSilver 835Sterling Silver 925
HV Hardness · Annealed (Soft) · TYPICAL82–98 HV62–78 HV
7. Fabrication & Processing Comparison
Silver 835 Characteristics:

Machinability: Rated at approximately 55% relative to C36000. Good machinability with crisp edge retention; produces shorter curling chips.

Weldability: Brazed with standard Ag-Cu-Zn filler metals. Requires active fluxing to dissolve heavy copper oxidation.

Formability / Cold Working: Moderate cold ductility; can be punched and stamped with adequate punch clearances.

Heat Treatment & Annealing: Annealed at 550°C to 620°C for 20 minutes, followed by water quench. Rapidly age-hardens at 280°C to 300°C.

Sterling Silver 925 Characteristics:

Machinability: Rated at approximately 45% relative to C36000. Chips shear more cleanly than fine silver; tool life is good when using positive rake carbide inserts and flood oil/emulsion coolant.

Weldability: Readily brazed using silver solder (AWS BAg-1 to BAg-7). Subject to firescale (subsurface cuprous oxide Cu2O formation) when heated in oxidizing atmospheres without flux.

Formability / Cold Working: Excellent cold working characteristics; readily stamped, coined, and rolled with periodic annealing at 600°C.

Heat Treatment & Annealing: Precipitation hardenable: Solution heat treat at 740°C to 760°C for 15-30 minutes and rapid water quench; artificial age at 280°C to 300°C for 45-60 minutes to achieve peak hardness of 110-140 HV.