Metallurgical Analysis Skill
Purpose
The Metallurgical Analysis skill provides specialized capabilities for characterizing metallic materials through metallographic techniques, enabling systematic evaluation of microstructure, grain size, phase distribution, and inclusion content per industry standards.
Capabilities
- Metallographic preparation protocol selection
- Etching reagent selection for different alloys
- Grain size measurement (ASTM E112, intercept method)
- Phase fraction quantification (point count, image analysis)
- Inclusion rating (ASTM E45)
- Banding and segregation assessment
- Prior austenite grain boundary revelation
- Weld microstructure evaluation (HAZ mapping)
Usage Guidelines
Sample Preparation
Sectioning
- Select appropriate cutting method (abrasive, EDM, precision saw)
- Minimize heat input to prevent microstructural changes
- Identify orientation relative to processing direction
Mounting
- Choose mount type (hot compression, cold setting)
- Add conductive filler for SEM/EBSD samples
- Consider edge retention requirements
Grinding and Polishing
- Follow systematic grit progression (120 to 1200 to diamond)
- Use appropriate lubricant and rotation direction
- Verify scratch-free surface before etching
Etching Selection
| Alloy System |
Etchant |
Purpose |
| Carbon steels |
2% Nital |
General microstructure |
| Stainless steel |
Vilella's |
Martensitic structures |
| Aluminum |
Keller's |
Grain boundaries, precipitates |
| Titanium |
Kroll's |
Alpha-beta microstructure |
| Copper |
FeCl3/HCl |
Grain boundaries |
| Nickel superalloys |
Glyceregia |
Gamma prime, carbides |
Grain Size Measurement
ASTM E112 Methods
- Comparison method: Match to standard charts
- Planimetric method: Count grains in known area
- Intercept method: Count grain boundary intersections
Calculation
- Apply magnification correction
- Use minimum 5 fields for statistical validity
- Report ASTM grain size number with standard deviation
Special Cases
- Duplex structures: Report both phases separately
- Elongated grains: Measure aspect ratio
- Prior austenite: Use specific etchants (picric acid based)
Inclusion Rating (ASTM E45)
Method Selection
- Method A: Worst field rating
- Method D: Quantitative measurement
- Specify inclusion type (A, B, C, D sulfides, oxides)
Reporting
- Include severity (thin, heavy) and length
- Note distribution (random, stringer, cluster)
- Compare to specification limits
Process Integration
- MS-002: Electron Microscopy Characterization
- MS-017: Root Cause Failure Analysis
Input Schema
{
"sample_id": "string",
"alloy_system": "steel|aluminum|titanium|copper|nickel",
"alloy_grade": "string",
"analysis_type": "grain_size|phase_fraction|inclusion|weld_eval",
"magnification": "number",
"etchant_used": "string"
}
Output Schema
{
"sample_id": "string",
"grain_size": {
"astm_number": "number",
"average_diameter": "number (microns)",
"standard_deviation": "number",
"method": "string"
},
"phase_fractions": [
{
"phase": "string",
"fraction": "number (percent)",
"morphology": "string"
}
],
"inclusion_rating": {
"method": "string",
"type_a": "number",
"type_b": "number",
"type_c": "number",
"type_d": "number"
},
"observations": "string"
}
Best Practices
- Document complete preparation procedure for reproducibility
- Use consistent magnification within a comparative study
- Apply appropriate etching time - under-etched is better than over-etched
- Verify grain boundaries are fully revealed before measurement
- Use image analysis software for quantitative phase measurements
- Include representative micrographs in reports
Integration Points
- Connects with Electron Microscopy for high-resolution analysis
- Feeds into Failure Analysis for metallographic investigation
- Supports Mechanical Testing for structure-property correlation
- Integrates with Heat Treatment Optimization for process development
1---2name: metallurgical-analysis3description: Specialized skill for metallic materials analysis and metallography including grain size measurement, phase quantification, and inclusion rating4---5
6# Metallurgical Analysis Skill
7
8## Purpose
9
10The Metallurgical Analysis skill provides specialized capabilities for characterizing metallic materials through metallographic techniques, enabling systematic evaluation of microstructure, grain size, phase distribution, and inclusion content per industry standards.
11
12## Capabilities
13
14- Metallographic preparation protocol selection
15- Etching reagent selection for different alloys
16- Grain size measurement (ASTM E112, intercept method)
17- Phase fraction quantification (point count, image analysis)
18- Inclusion rating (ASTM E45)
19- Banding and segregation assessment
20- Prior austenite grain boundary revelation
21- Weld microstructure evaluation (HAZ mapping)
22
23## Usage Guidelines
24
25### Sample Preparation
26
271. **Sectioning**
28 - Select appropriate cutting method (abrasive, EDM, precision saw)
29 - Minimize heat input to prevent microstructural changes
30 - Identify orientation relative to processing direction
31
322. **Mounting**
33 - Choose mount type (hot compression, cold setting)
34 - Add conductive filler for SEM/EBSD samples
35 - Consider edge retention requirements
36
373. **Grinding and Polishing**
38 - Follow systematic grit progression (120 to 1200 to diamond)
39 - Use appropriate lubricant and rotation direction
40 - Verify scratch-free surface before etching
41
42### Etching Selection
43
44| Alloy System | Etchant | Purpose |
45|--------------|---------|---------|
46| Carbon steels | 2% Nital | General microstructure |
47| Stainless steel | Vilella's | Martensitic structures |
48| Aluminum | Keller's | Grain boundaries, precipitates |
49| Titanium | Kroll's | Alpha-beta microstructure |
50| Copper | FeCl3/HCl | Grain boundaries |
51| Nickel superalloys | Glyceregia | Gamma prime, carbides |
52
53### Grain Size Measurement
54
551. **ASTM E112 Methods**
56 - Comparison method: Match to standard charts
57 - Planimetric method: Count grains in known area
58 - Intercept method: Count grain boundary intersections
59
602. **Calculation**
61 - Apply magnification correction
62 - Use minimum 5 fields for statistical validity
63 - Report ASTM grain size number with standard deviation
64
653. **Special Cases**
66 - Duplex structures: Report both phases separately
67 - Elongated grains: Measure aspect ratio
68 - Prior austenite: Use specific etchants (picric acid based)
69
70### Inclusion Rating (ASTM E45)
71
721. **Method Selection**
73 - Method A: Worst field rating
74 - Method D: Quantitative measurement
75 - Specify inclusion type (A, B, C, D sulfides, oxides)
76
772. **Reporting**
78 - Include severity (thin, heavy) and length
79 - Note distribution (random, stringer, cluster)
80 - Compare to specification limits
81
82## Process Integration
83
84- MS-002: Electron Microscopy Characterization
85- MS-017: Root Cause Failure Analysis
86
87## Input Schema
88
89```json
90{
91 "sample_id": "string",
92 "alloy_system": "steel|aluminum|titanium|copper|nickel",
93 "alloy_grade": "string",
94 "analysis_type": "grain_size|phase_fraction|inclusion|weld_eval",
95 "magnification": "number",
96 "etchant_used": "string"
97}
98```
99
100## Output Schema
101
102```json
103{
104 "sample_id": "string",
105 "grain_size": {
106 "astm_number": "number",
107 "average_diameter": "number (microns)",
108 "standard_deviation": "number",
109 "method": "string"
110 },
111 "phase_fractions": [
112 {
113 "phase": "string",
114 "fraction": "number (percent)",
115 "morphology": "string"
116 }
117 ],
118 "inclusion_rating": {
119 "method": "string",
120 "type_a": "number",
121 "type_b": "number",
122 "type_c": "number",
123 "type_d": "number"
124 },
125 "observations": "string"
126}
127```
128
129## Best Practices
130
1311. Document complete preparation procedure for reproducibility
1322. Use consistent magnification within a comparative study
1333. Apply appropriate etching time - under-etched is better than over-etched
1344. Verify grain boundaries are fully revealed before measurement
1355. Use image analysis software for quantitative phase measurements
1366. Include representative micrographs in reports
137
138## Integration Points
139
140- Connects with Electron Microscopy for high-resolution analysis
141- Feeds into Failure Analysis for metallographic investigation
142- Supports Mechanical Testing for structure-property correlation
143- Integrates with Heat Treatment Optimization for process development