概要

Mineral Lock‑In Regime (MLR)

Crystal–Mycelial Engine — RTT / CMH Substrate Phase#


1. Regime Identity#

Regime: Mineral Lock‑In Regime (MLR)
Layer: Mineral substrate
Role: Stabilize mineral logic substrate and finalize domain memory
Operators: P • M • E • S


2. Purpose#

The Mineral Lock‑In Regime defines the final substrate phase in which crystal lattice propagation stabilizes and impurity‑encoded memory forms.
MLR is the phase where CME completes:

  • lattice propagation
  • domain formation
  • impurity band memory encoding
  • resonance‑aligned stabilization

This regime produces the mineral logic layer of the Crystal–Mycelial Engine.


3. Substrate Behavior#

Lattice Propagation#

  • Crystal lattice grows along preserved biological geometry
  • Hybrid layer acts as a structural guide
  • Supersaturation drives propagation speed

Domain Formation#

  • Resonance alignment determines domain orientation
  • Thermal envelope stabilizes lattice boundaries
  • Impurity incorporation encodes memory

Impurity Band Memory#

  • Defect regions store memory transferred from hybrid layer
  • Branch scars influence impurity band placement
  • Resonance fields lock impurity patterns into stable domains

4. RTT Operator Mapping#

Propagation (P)#

  • P.front_propagate — advance crystal growth front
  • P.domain_extend — extend mineral domain boundaries

Memory (M)#

  • M.domain_memory — encode memory in crystal domains
  • M.impurity_memory — stabilize impurity band patterns

Energy (E)#

  • E.resonance_field — generate field for lattice alignment
  • E.domain_lock — stabilize resonance‑aligned domains

Substrate (S)#

  • S.dual_substrate_alignment — maintain coherence during mineral takeover
  • S.substrate_swap — finalize transition from hybrid → mineral

5. MSRM Envelope Requirements#

Supersaturation Envelope#

Target: ≥ 0.85

  • Required for lattice propagation
  • Supports impurity band formation

Thermal Envelope#

Target: −3 to −5 °C shift

  • Stabilizes mineral domains
  • Locks resonance‑aligned geometry

Resonance Alignment Envelope#

Requirement: TRUE

  • Mandatory for domain memory formation
  • Ensures coherent lattice propagation

6. Outputs of MLR#

  • Crystal lattice
  • Mineral logic regions
  • Impurity band memory
  • Resonance‑aligned domains
  • Final mineral substrate map (mineral_map)

These outputs define the CME’s mineral logic layer.


7. Transition Completion#

MLR completes the CMH substrate cycle when:

  • lattice propagation stabilizes
  • impurity bands are fully encoded
  • resonance alignment remains coherent
  • biological and hybrid layers have fully transferred memory

At this point, the Crystal–Mycelial Engine reaches its final substrate state.

Updated