CRYSTAL–MYCELIAL ENGINE (CME)
FULL TEACHING HANDOUT
TriadicFrameworks / RTT / CMH / MSRM
Version 1.0 — 2026
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SECTION 1 — INTRODUCTION
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The Crystal–Mycelial Engine (CME) describes the substrate
transition pipeline used in RTT/CMH/MSRM:
Biological → Hybrid → Mineral
CME explains how biological geometry becomes resonance‑aligned
and then locked into mineral lattice logic.
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SECTION 2 — REGIME OVERVIEW
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BGR — Biological Growth Regime
HRR — Hybrid Resonance Regime
MLR — Mineral Lock‑In Regime
Flow:
BGR → moisture ↓ → HRR → supersaturation ↑ → MLR
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SECTION 3 — SUBSTRATE TRANSITION
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BIOLOGICAL SUBSTRATE
- hyphal channels
- routing geometry
- biological pulses
- moisture‑driven growth
HYBRID SUBSTRATE
- mineral precursor infiltration
- resonance alignment
- hybrid memory transfer
- dual‑substrate coherence
MINERAL SUBSTRATE
- crystal lattice propagation
- domain formation
- impurity band memory
- resonance‑locked geometry
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SECTION 4 — OPERATOR FAMILIES
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P — Propagation
E — Energy
G — Gradient
M — Memory
S — Substrate
HybridOps — Hybrid‑layer operators
Operator emphasis by regime:
BGR: P • E • G • M
HRR: S • HybridOps • E • G
MLR: P • M • E • S
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SECTION 5 — ENVELOPE TARGETS
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BGR
- moisture: 0.55–0.65
- nutrient gradient: active
- biological pulses: coherent
HRR
- ion saturation: 0.65–0.75
- coherence field: 0.8–1.4 kHz
- moisture: 0.35–0.45
MLR
- supersaturation: ≥ 0.85
- thermal shift: −3 to −5 °C
- resonance alignment: TRUE
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SECTION 6 — MEMORY PATH
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route_memory (biological)
↓
memory_transfer (hybrid)
↓
domain_memory (mineral)
Impurity bands store the final encoded memory.
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SECTION 7 — ASCII TEACHING DIAGRAM
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BIO → HYBRID → MINERAL
(geometry → alignment → lattice)
┌──────────────────────────┐
│ BGR — Biological Growth │
└──────────────────────────┘
│ moisture ↓
▼
┌──────────────────────────┐
│ HRR — Hybrid Resonance │
└──────────────────────────┘
│ supersaturation ↑
▼
┌──────────────────────────┐
│ MLR — Mineral Lock‑In │
└──────────────────────────┘
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SECTION 8 — KEY TERMS
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Biological Map
Hybrid Layer
Crystal Domain
Impurity Band
Resonance Field
Supersaturation
Dual‑Substrate Alignment
Lattice Front
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SECTION 9 — QUICK REFERENCE
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Regimes: BGR → HRR → MLR
Substrates: Bio → Hybrid → Mineral
Memory: route → transfer → domain
Operators: P/E/G/M/S + HybridOps
Envelopes: moisture → ion → supersaturation
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SECTION 10 — SUMMARY
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The Crystal–Mycelial Engine provides a complete substrate
transition model for RTT/CMH/MSRM. Biological geometry is
captured, aligned, and locked into mineral lattice logic using
operator grammar, envelope control, and resonance fields.
END OF HANDOUT