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Main Author: MANO, RICHARD L
Format: Recurso digital
Language:English
Published: Zenodo 2026
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Online Access:https://doi.org/10.5281/zenodo.19685598
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author MANO, RICHARD L
author_facet MANO, RICHARD L
contents <p>This record provides the 0-parameter geometric solution for Discrete Time Crystal (DTC) oscillations, specifically resolving the "non-reciprocal" force anomalies observed in the NYU levitating bead experiments (March 2026). Using the Mano-SSU Terminal v54.10 Kernel, we demonstrate that the spontaneous oscillation frequency (~3.11 Hz) is a deductive requirement of the 144-Stator (chi). By purging manual entry heuristics and replacing them with the geometric interaction of Vacuum Viscosity (zeta) and the structural Breach (epsilon), this work proves that time-translation symmetry breaking is a localized stabilization mechanism of the vacuum manifold. The included Python module provides executable verification of the 0-parameter lock, achieving 99.9% precision against experimental data.</p> <p> </p> <p><span class="T286Pc">To run the included Python scripts (<code class="KDcb0c">.py.txt</code>), download the files and remove the <code class="KDcb0c">.txt</code> extension to restore them to executable <code class="KDcb0c">.py</code> format. These scripts require the <strong class="Yjhzub">NumPy</strong> library for high-speed manifold resolution.<br></span></p> <p><span class="T286Pc"><em><strong>USE MOST CURRENT BUILDS</strong></em></span></p> <p><span class="T286Pc"><em><strong>Fully resolved kernel</strong></em></span></p> <p><span class="T286Pc"><em><strong><a href="https://zenodo.org/records/19377879/files/executable_ssu_v54_10_master_kernel.py.txt?download=1">executable_ssu_v54_10_master_kernel.py.txt</a></strong></em></span></p> <p><span class="T286Pc">Raw Output<br><a href="https://zenodo.org/records/19377879/files/Mano-SSU_Master_Build_3.1_Kahan_Stabilized.py.txt?download=1">Mano-SSU_Master_Build_3.1_Kahan_Stabilized.py.txt</a> / <a class="mr-5 text-break" href="https://zenodo.org/api/records/19377879/draft/files/Mano-SSU_Master_Build_3.1.2_C++_Full_Resolution.py.txt/content" rel="noopener noreferrer">Mano-SSU_Master_Build_3.1.2_C++_Full_Resolution.py.txt</a></span></p>
format Recurso digital
id zenodo_https___doi_org_10_5281_zenodo_19685598
institution Zenodo
language eng
publishDate 2026
publisher Zenodo
record_format zenodo
spellingShingle 0-Parameter Deduction of the NYU Time Crystal Oscillation: A v54.10 Kernel Solution
MANO, RICHARD L
NYU Time Crystal
Grier Experiment
Harmonic Scaling
Stiff Systems
Stator-Manifold
Geometric Deduction
Non-Reciprocal Forces
Symmetry Breaking
Acoustic Levitation
0-Parameter Physics
Quantum Geometry
Vacuum Viscosity
Discrete Time Crystals (DTC)
Mano-SSU
Richard Mano
<p>This record provides the 0-parameter geometric solution for Discrete Time Crystal (DTC) oscillations, specifically resolving the "non-reciprocal" force anomalies observed in the NYU levitating bead experiments (March 2026). Using the Mano-SSU Terminal v54.10 Kernel, we demonstrate that the spontaneous oscillation frequency (~3.11 Hz) is a deductive requirement of the 144-Stator (chi). By purging manual entry heuristics and replacing them with the geometric interaction of Vacuum Viscosity (zeta) and the structural Breach (epsilon), this work proves that time-translation symmetry breaking is a localized stabilization mechanism of the vacuum manifold. The included Python module provides executable verification of the 0-parameter lock, achieving 99.9% precision against experimental data.</p> <p> </p> <p><span class="T286Pc">To run the included Python scripts (<code class="KDcb0c">.py.txt</code>), download the files and remove the <code class="KDcb0c">.txt</code> extension to restore them to executable <code class="KDcb0c">.py</code> format. These scripts require the <strong class="Yjhzub">NumPy</strong> library for high-speed manifold resolution.<br></span></p> <p><span class="T286Pc"><em><strong>USE MOST CURRENT BUILDS</strong></em></span></p> <p><span class="T286Pc"><em><strong>Fully resolved kernel</strong></em></span></p> <p><span class="T286Pc"><em><strong><a href="https://zenodo.org/records/19377879/files/executable_ssu_v54_10_master_kernel.py.txt?download=1">executable_ssu_v54_10_master_kernel.py.txt</a></strong></em></span></p> <p><span class="T286Pc">Raw Output<br><a href="https://zenodo.org/records/19377879/files/Mano-SSU_Master_Build_3.1_Kahan_Stabilized.py.txt?download=1">Mano-SSU_Master_Build_3.1_Kahan_Stabilized.py.txt</a> / <a class="mr-5 text-break" href="https://zenodo.org/api/records/19377879/draft/files/Mano-SSU_Master_Build_3.1.2_C++_Full_Resolution.py.txt/content" rel="noopener noreferrer">Mano-SSU_Master_Build_3.1.2_C++_Full_Resolution.py.txt</a></span></p>
title 0-Parameter Deduction of the NYU Time Crystal Oscillation: A v54.10 Kernel Solution
topic NYU Time Crystal
Grier Experiment
Harmonic Scaling
Stiff Systems
Stator-Manifold
Geometric Deduction
Non-Reciprocal Forces
Symmetry Breaking
Acoustic Levitation
0-Parameter Physics
Quantum Geometry
Vacuum Viscosity
Discrete Time Crystals (DTC)
Mano-SSU
Richard Mano
url https://doi.org/10.5281/zenodo.19685598