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Envelope Reference

Crystal–Mycelial Engine — RTT / CMH / MSRM#


1. Purpose of This Page#

This document provides a consolidated reference for all substrate envelopes used within the Crystal–Mycelial Engine (CME).
Envelopes define the environmental and field conditions required for stable substrate transitions across the CMH regime cycle.


2. Envelope Categories#

CME uses envelopes in three primary domains:

  1. Moisture envelopes
  2. Ion saturation envelopes
  3. Resonance envelopes
  4. Electromagnetic envelopes
  5. Thermal envelopes

Each envelope constrains substrate behavior and determines regime boundaries.


3. Biological Growth Regime (BGR) Envelopes#

Moisture Envelope#

Target: 0.55–0.65

  • Supports hyphal extension
  • Prevents uncontrolled overgrowth
  • Maintains pulse conductivity

Nutrient Envelope#

Target: low‑nitrogen

  • Encourages channel formation
  • Reduces chaotic branching

Electromagnetic Envelope#

Target: 0.2–0.4 mT

  • Stabilizes biological pulse propagation
  • Maintains coherence across hyphal networks

4. Hybrid Resonance Regime (HRR) Envelopes#

Ion Saturation Envelope#

Target: 0.65–0.75

  • Enables mineral precursor infiltration
  • Supports hybrid memory transfer

Coherence Field Envelope#

Target: 0.8–1.4 kHz

  • Aligns biological and mineral waveforms
  • Required for resonance synchronization

Moisture Envelope#

Target: 0.35–0.45

  • Reduces biological activity
  • Prepares substrate for mineral infiltration

5. Mineral Lock‑In Regime (MLR) Envelopes#

Supersaturation Envelope#

Target: ≥ 0.85

  • Enables crystal lattice propagation
  • Supports impurity band formation

Thermal Envelope#

Target: −3 to −5 °C shift

  • Stabilizes mineral domains
  • Locks resonance‑aligned lattice geometry

Resonance Alignment Envelope#

Requirement: TRUE

  • Mandatory for domain memory formation
  • Ensures coherent lattice propagation

6. Operator Influence on Envelopes#

Propagation (P)#

  • Sensitive to moisture and supersaturation
  • Controls front propagation stability

Energy (E)#

  • Sensitive to EM field and resonance envelopes
  • Controls pulse and resonance field behavior

Gradient (G)#

  • Sensitive to nutrient and voltage gradients
  • Shapes substrate directionality

Memory (M)#

  • Sensitive to domain stability envelopes
  • Encodes routing and impurity‑band memory

Substrate (S)#

  • Sensitive to hybrid transition envelopes
  • Controls infiltration and dual‑substrate alignment

7. Envelope Transition Summary#

BGR → moisture ↓ → HRR → supersaturation ↑ → MLR

Each envelope shift marks a substrate transition point within CME.

Updated