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Master Bond adhesives

Austempered Ductile Iron 125-80-10 (Obsolete with ASTM A897/A897M-06)
Categories: Metal; Ferrous Metal; Cast Iron; Alloy Cast Iron; Ductile Iron

Material Notes: ASTM 897 (in-lb units) 125-80-10
ASTM 897M (SI units) 850-550-10.

Austempered Ductile Iron (ADI) offers low cost, design flexibility, good machinability, high strength-to-weight ratio and good toughness, wear resistance and fatigue strength because it can be cast like any other member of the Ductile Iron family, thus offering all the production advantages of a conventional Ductile Iron casting. Subsequently it is subjected to the austempering process to produce mechanical properties that are superior to conventional ductile iron, cast and forged aluminum and many cast and forged steels.

The mechanical properties of Ductile Iron and ADI are primarily determined by the metal matrix. The matrix in conventional Ductile Iron is a controlled mixture of pearlite and ferrite. (Tempered martensitic matrices may be developed for wear resistance, but lack the ductility of either as-cast Ductile Iron or ADI). The properties of ADI are due to its unique matrix of acicular ferrite and carbon stabilized austenite; called Ausferrite. ADI is a group of materials whose mechanical properties can be varied over a wide range by a suitable choice of heat treatment, as seen in the various entries in MatWeb.

The composition reported herein does not guarantee ADI properties, nor is it mandatory. However, this composition is a typical, industrially successful ADI composition. A good controlled chemistry like this one combined with a consistently high nodule count and nodularity and a consistent pearlite/ferrite ratio in clean, shrink-free Ductile Iron will provide the most robust process for the production of ADI.

Information supplied to MatWeb by Applied Process, Inc.

Key Words: ADI; Former ASTM 897 Grade 1
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Physical PropertiesMetricEnglishComments
Density 7.0965 g/cc0.25638 lb/in³
 
Mechanical PropertiesMetricEnglishComments
Hardness, Brinell 302
@Thickness 3.50 mm
302
@Thickness 0.138 in
B.I.D.
Tensile Strength, Ultimate >= 862 MPa>= 125000 psiMinimum
 965 MPa140000 psiTypical
Tensile Strength, Yield >= 552 MPa>= 80000 psiMinimum
 758 MPa
@Strain 0.2 %
110000 psi
@Strain 0.2 %
Typical
Elongation at Break >= 10 %>= 10 %Minimum
 11 %11 %Typical; in 2 inch (50 mm) gage length
Reduction of Area 10 %10 %
Modulus of Elasticity 163 GPa23600 ksiStatic Young's Modulus
 170 GPa24700 ksiDynamic
Compressive Yield Strength 1380 MPa200000 psi
Poissons Ratio 0.250.25
Fatigue Strength 450 MPa
@# of Cycles 1.00e+7
65300 psi
@# of Cycles 1.00e+7
rotating bending, as machined
Fracture Toughness 109 MPa-m½99.2 ksi-in½
Shear Modulus 65.1 GPa9440 ksi
Shear Strength 862 MPa125000 psi
Charpy Impact 12.0 J
@Temperature 23.0 °C
8.85 ft-lb
@Temperature 73.4 °F
Charpy Impact, Unnotched 120 J
@Temperature 23.0 °C
88.5 ft-lb
@Temperature 73.4 °F
 
Thermal PropertiesMetricEnglishComments
CTE, linear 14.6 µm/m-°C
@Temperature 20.0 °C
8.11 µin/in-°F
@Temperature 68.0 °F
Thermal Conductivity 22.1 W/m-K153 BTU-in/hr-ft²-°F
 
Component Elements PropertiesMetricEnglishComments
Carbon, C 3.7 %3.7 %
Copper, Cu <= 0.80 %<= 0.80 %
Iron, Fe 93 %93 %
Manganese, Mn 0.28 %0.28 %
Molybdenum, Mo 0.00 - 0.25 %0.00 - 0.25 %
Nickel, Ni <= 2.0 %<= 2.0 %
Silicon, Si 2.5 %2.5 %

Some of the values displayed above may have been converted from their original units and/or rounded in order to display the information in a consistent format. Users requiring more precise data for scientific or engineering calculations can click on the property value to see the original value as well as raw conversions to equivalent units. We advise that you only use the original value or one of its raw conversions in your calculations to minimize rounding error. We also ask that you refer to MatWeb's terms of use regarding this information. Click here to view all the property values for this datasheet as they were originally entered into MatWeb.

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MDFEADI125 / 12065

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