PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 25, 20260 citationsOpen Access

Puan Station 36+1 Causal Detector – Operational Software, Construction Manual, and Simulation Package

View Full Paper
MPMiguel Angel Percudani

Key Points

  • This package aims to enable detection of scalar torsion fields using advanced operational software and simulation tools.
  • Includes scripts for generating phase-synchronized sinusoidal signals and monitoring RMS values.
  • Features a complete construction manual with specifications, diagrams, and battery design.
  • Provides a digital twin simulation to validate phase equations and expected saturation levels.
  • Saturation level achieved in simulation is approximately 0.7050, close to the target of 0.7071.
  • Dynamic frequency calibration adjusts operating frequency based on UAT Inflationary Drift.
  • Detailed technical notes enhance the implementation of the INA128 instrumentation amplifier to achieve target noise levels.

Abstract

This package provides the complete operational software, detailed construction manual, and precision technical notes for the **Puan Station 36+1 Coil Rotational Detector** – a tabletop instrument designed to detect scalar torsion fields predicted by the Universal Applicable Time (UAT) and Unified Principle of Causality (UPC) frameworks. **Key Features: **- **Dynamic Frequency Calibration: ** The operating frequency is automatically calculated for the current date using the UAT Inflationary Drift (α = 0. 046 Hz/day, reference epoch 2023-05-27, f₀ = 84. 4 Hz). Leap years are correctly handled. - **Operational Scripts: ** - `puan₃6chgenerator. py`: Generates 36 phase-synchronized sinusoidal signals with 7% table rotation asymmetry and logarithmic torsion (τ = 0. 3697). - `puanᵣmsₘonitor. py`: Captures and displays the live RMS value from the central observer coil. - **Complete Construction Manual (PDF): ** Includes coil specifications, mechanical layout, wiring diagrams, battery power supply design, and star-grounding scheme. - **Precision Technical Note (PDF): ** Detailed instructions for INA128 instrumentation amplifier implementation, shielding, and grounding – essential for achieving the target noise floor. - **Digital Twin Simulation: ** A self-contained simulation script (`simulation/puancombineddemo. py`) validates the phase equations and demonstrates the expected RMS saturation (~0. 7050, target 0. 7071) in an ideal environment. **Hardware Requirements (for operational use): **- 5 × 8-channel audio interfaces with Word Clock synchronization (e. g. , Behringer UMC1820) - 36 identical air-core peripheral coils + 1 central observer coil- INA128 instrumentation amplifier with precision 51 kΩ gain resistor (G = 1. 9694) - Battery power supply (±12 V, ±5 V) for low-noise operation **Intended Audience: ** Experimental physicists, independent researchers, and engineers interested in replicating or validating the UAT/UPC scalar torsion detection methodology. **Related DOIs: **- UAT Framework: 10. 5281/zenodo. 17729221 (https: //doi. org/10. 5281/zenodo. 17729221) - UPC Framework: 10. 5281/zenodo. 18210808 (https: //doi. org/10. 5281/zenodo. 18210808) **Author: ** Miguel Ángel Percudani (ORCID: 0009-0007-1748-3212)

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Miguel Angel Percudani (2026) studied this question.

synapsesocial.com/papers/69ec5b3d88ba6daa22dacd3fhttps://doi.org/10.5281/zenodo.19704791
Ask AI
Helpful
Bookmark
Share
View Full Paper