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Phase 2 · Evidence-Controlled Library

Engineering Material Records

Traceable material identity, composition, process state, property claim, test basis, source provenance, evidence maturity, availability and cross-project dependencies — without turning screening literature into design allowables.

Composition controlledSource traceableConflict awareE5-only allowables
Phase 2 Batch 01 validated · Batch 02 source queue staged
Engineering Materials Library canonical visual
9controlled UHTC records
12traceable claim rows
2open conflicts preserved
10next sources queued
E0–E5evidence promotion model
9 controlled records
Zirconium diboride visual
MAT-UHTC-ZRB2-001E2A0

Zirconium diboride

ZrB2
High temperature; Thermal shock screening; Structural/hot structure; Electrical conductor; Wear/tribology

Melting temperature: 3040 / 3250 / 3517 degC
CONFLICT_OPEN · Intro pp.3-4
Densification example: Nearly full density at 2200 degC
PROCESS_SPECIFIC · Historical chapter p.14
Densification limitation: <95 % relative density
PROCESS_SPECIFIC · Historical chapter p.14
Hafnium diboride visual
MAT-UHTC-HFB2-001E2A0

Hafnium diboride

HfB2
High temperature; Structural/hot structure; Electrical conductor; Oxidation screening

Relative oxidation performance: Slightly better than corresponding Zr compound qualitative
CONTEXT_CONTROLLED · Historical chapter p.21
Tantalum carbide visual
MAT-UHTC-TAC-001E2A0

Tantalum carbide

TaC (stoichiometry may vary)
Ultra-high temperature; Wear/tribology; Structural screening

Zirconium carbide visual
MAT-UHTC-ZRC-001E2A0

Zirconium carbide

ZrC (stoichiometry may vary)
Ultra-high temperature; Structural screening; Phase-equilibria lineage

Hafnium carbide visual
MAT-UHTC-HFC-001E2A0

Hafnium carbide

HfC (stoichiometry may vary)
Ultra-high temperature; Structural screening; Phase-equilibria lineage

Titanium diboride visual
MAT-UHTC-TIB2-001E2A0

Titanium diboride

TiB2
Hard/wear-resistant; High-temperature; Conductive ceramic

ZrB2 + 20 vol% SiC composite visual
MAT-UHTC-ZRB2-SIC20-001E2A0

ZrB2 + 20 vol% SiC composite

ZrB2 + 20 vol% SiC
Oxidation resistance; Hot structure; Thermal/mechanical performance

Solidus / liquid formation: ~2300 degC
CONTEXT_CONTROLLED · Intro p.4
Historical composition selection: 20 vol% SiC
CONTEXT_CONTROLLED · Historical chapter p.15
Historical reentry survival: Met model-trajectory requirement qualitative
HISTORICAL_TEST · Historical chapter p.23
HfB2 + 20 vol% SiC composite visual
MAT-UHTC-HFB2-SIC20-001E2A0

HfB2 + 20 vol% SiC composite

HfB2 + 20 vol% SiC
Oxidation resistance; Hot structure; Thermal/mechanical performance

Oxidation behavior: Superior to HfB2 or SiC alone qualitative
CONTEXT_CONTROLLED · Historical chapter p.16
Historical reentry survival: Met model-trajectory requirement qualitative
HISTORICAL_TEST · Historical chapter p.23
ZrB2-SiC-WC composite visual
MAT-UHTC-ZRB2-SIC-WC-001E2A0

ZrB2-SiC-WC composite

ZrB2 + SiC + WC; exact fractions claim-specific
High-temperature strength; Toughening; Hot structure screening

High-temperature strength retention: at least 675 MPa
TARGETED_EXTRACTION · Reactive-process chapter p.47
Fracture mode at elevated temperature: Elastic, transgranular qualitative
TARGETED_EXTRACTION · Reactive-process chapter p.47
Source-first rule
019

Optical Metamaterials - Fundamentals and Applications - W. Cai, V. Shalaev (Springer, 2010)

Optical metamaterials · Ingestion required before numerical-property promotion.

Source gate
020

Nanostructured Superconductors

Superconductors · Ingestion required before numerical-property promotion.

Source gate
021

Nanomaterials for Solid State Hydrogen Storage - Varin, Czujko (Springer, 2009)

Hydrogen storage · Ingestion required before numerical-property promotion.

Source gate
022

Corrosion Protection and Control Using Nanomaterials - V. Saji, R. Cook (Woodhead, 2012)

Corrosion / nanomaterials · Ingestion required before numerical-property promotion.

Source gate
023

Thermal Nanosystems and Nanomaterials - S. Volz (Springer, 2009)

Thermal nanosystems · Ingestion required before numerical-property promotion.

Source gate
024

Piezoelectric Nanomaterials for Biomedical Applications - G. Ciofani, A. Menciassi (Springer, 2012)

Piezoelectric biomaterials · Ingestion required before numerical-property promotion.

Source gate
025

Porous Silicon Carbide and Gallium Nitride - Feenstra, Wood (Wiley, 2008)

Porous SiC / GaN · Ingestion required before numerical-property promotion.

Source gate
026

Carbon Nanotube-Polymer Composites - B. Grady (Wiley, 2011)

CNT polymer composites · Ingestion required before numerical-property promotion.

Source gate
027

The Nanoscience and Technology of Renewable Biomaterials - L. Lucia, O. Rojas (Wiley, 2009)

Renewable biomaterials · Ingestion required before numerical-property promotion.

Source gate
028

Mechanics of Biomaterials - Fundamental Principles for Implant Design - L. Pruitt, A. Chakravartula (Cambridge, 2011)

Implant mechanics · Ingestion required before numerical-property promotion.

Source gate
Review gate: these ten subjects are already wired into the taxonomy and Phase 3 dependency map, but detailed property claims remain deliberately gated until the source contents are actually ingested. This prevents attractive webpage mockups from becoming an uncited property database.
Context travels with the number
Claim IDMaterialProperty / ClaimValueContextStatus
CLM-UHTC-0001MAT-UHTC-ZRB2-001Melting temperature3040 / 3250 / 3517 degCReported values disagree across cited historical sources · N/A · Intro pp.3-4CONFLICT_OPEN
CLM-UHTC-0002MAT-UHTC-ZRB2-SIC20-001Solidus / liquid formation~2300 degCComposite system; eutectic reaction discussed · N/A · Intro p.4CONTEXT_CONTROLLED
CLM-UHTC-0003MAT-UHTC-ZRB2-SIC20-001Historical composition selection20 vol% SiCManLabs study lineage · Historical program · Historical chapter p.15CONTEXT_CONTROLLED
CLM-UHTC-0004MAT-UHTC-HFB2-SIC20-001Oxidation behaviorSuperior to HfB2 or SiC alone qualitativeHistorical HfB2-20 vol% SiC lineage · High-temperature oxidation · Historical chapter p.16CONTEXT_CONTROLLED
CLM-UHTC-0005MAT-UHTC-ZRB2-001Densification exampleNearly full density at 2200 degCB/Me ratio 1.89 · Hot pressing · Historical chapter p.14PROCESS_SPECIFIC
CLM-UHTC-0006MAT-UHTC-ZRB2-001Densification limitation<95 % relative densityB/Me ratio 1.89 at 2300 degC · Hot pressing · Historical chapter p.14PROCESS_SPECIFIC
CLM-UHTC-0007MAT-UHTC-ZRB2-001Protective oxidation regimebelow ~1200 degCNominally pure ZrB2 in cited historical program · Oxidation testing · Historical chapter p.14CONTEXT_CONTROLLED
CLM-UHTC-0008MAT-UHTC-HFB2-001Relative oxidation performanceSlightly better than corresponding Zr compound qualitativeHistorical furnace tests · Oxidizing environment · Historical chapter p.21CONTEXT_CONTROLLED
CLM-UHTC-0009MAT-UHTC-ZRB2-SIC20-001Historical reentry survivalMet model-trajectory requirement qualitativeManLabs program materials set · Simulated atmospheric reentry · Historical chapter p.23HISTORICAL_TEST
CLM-UHTC-0010MAT-UHTC-HFB2-SIC20-001Historical reentry survivalMet model-trajectory requirement qualitativeManLabs program materials set · Simulated atmospheric reentry · Historical chapter p.23HISTORICAL_TEST
CLM-UHTC-0011MAT-UHTC-ZRB2-SIC-WC-001High-temperature strength retentionat least 675 MPaZrB2-SiC-WC composition/process from cited study · 1600 degC · Reactive-process chapter p.47TARGETED_EXTRACTION
CLM-UHTC-0012MAT-UHTC-ZRB2-SIC-WC-001Fracture mode at elevated temperatureElastic, transgranular qualitativeZrB2-SiC-WC composition/process from cited study · 1600 degC · Reactive-process chapter p.47TARGETED_EXTRACTION
Controlled boundary. Public summary values may be shown only when the underlying claim rows are compatible and the aggregation rule is documented. Safety-critical use, radiation/nuclear/medical use, and Aurora design allowables require qualification independent of screening literature.