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Bibliographic Details
Main Author: Yerzhan, Orymbetov
Format: Recurso digital
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Published: Zenodo 2026
Online Access:https://doi.org/10.5281/zenodo.18220279
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  • <p dir="ltr">Abstract<br>This paper presents an alternative engineering-physics model of the Universe based on the interaction between 5% baryonic matter ("The Shadow") and 95% external medium ("The Pressure"). The author postulates that gravitational effects are a consequence of external medium pressure with a fundamental coefficient of 3.326. This theory is empirically supported by data from the Voyager 1 and 2 spacecraft regarding the significant increase in medium density at the heliopause.<br>The model redefines cosmic objects—from stars to black holes—as gyroscopic mechanisms whose survival depends on maintaining specific resonance frequencies to counteract external collapse.<br>Executive Summary <br>1. The Principle of Ideal Proximity (1/3 to 2/3) The distribution of mass in the Universe follows a strict proportion to ensure structural stability. The ratio of 1/3 to 2/3 creates a "gravitational lock" between neighboring systems: <br>Galactic Scale: The Milky Way (1/3) is balanced by the Andromeda Galaxy (2/3), which is twice as <a href="http://massive.Stellar">massive.Stellar</a> Scale: The Sun and the Alpha Centauri system follow the same 1/3 to 2/3 mass distribution.<br>Systemic Scale: The Sun's mass is precisely 333,333 times the mass of the Earth, echoing the 3.33 pressure constant. <br>2. The Pulsar Gyroscopic Scale (90% of Observed Population) Pulsars serve as functioning instruments reflecting the density of the medium. Their rotation periods are quantized into "Survival Indices": <br>Groups 1/10 and 1/5 (0.1–0.2): Young pulsars in the "break-in" stage, seeking resonance.<br>Group 1/3 (0.33): Static Resonance. Pulsars with a 0.33s period represent the point of ideal structural support.<br>Group 2/5 (0.4): The Dynamic Benchmark. Representing the majority of pulsars (1.33s period).Calculation: \(T(1.33s)/P(3.33)=0.4\). This is the optimal mode for shedding external pressure via polar jets. </p> <p dir="ltr">3. Evolution of the Gyroscope (0.1 to 1.0 Scale) The model tracks the degradation of matter’s ability to screen external pressure: <br>0.1 — 0.33: Stability (Ordinary Stars, Static Pulsars).<br>0.4: Active Work (Standard Pulsars).<br>0.5 — 0.8: Overload (Magnetars). Gyroscopic drag leads to magnetic flares as a pressure release.<br>0.9: Peak Resistance (Quasars). Maximum energy output to maintain a spatial bubble.<br>1.0 (10/10): Total Collapse (Black Holes). The gyroscopic mechanism fails. The "Shadow" (6.674) and "Pressure" (3.326) reach a 1:1 parity, and the medium absorbs the matter.</p> <p dir="ltr">The "Gravitational Backwater" principle is clearly evidenced by the geometry of compression: while the Sun maintains a massive protective dome with a radius of 450 billion kilometers, external medium pressure forces all planets into a narrow ecliptic disk with a radius of only 4.5 billion kilometers. This planetary zone represents exactly 1% of the total radius of stellar influence, which in a three-dimensional scale reduces the entire planetary system to a mere 1% of the heliosphere's total volume. Like debris caught in a vortex, planets are pressed by the external medium into the region of least resistance—the ecliptic "pancake"—where the shadow of matter (6.67) provides maximum shielding against the pressure of the void (3.33).<br>This same engineering architecture is observed at the macro level: 90% of the Milky Way’s dwarf satellite galaxies are not scattered randomly but are concentrated within a tight frontier zone of 160,000 to 300,000 light-years, which similarly constitutes only 1% of the Galaxy’s volume of gravitational influence. These "dwarfs" are pressed into a single planar structure (VPOS), mirroring the fate of the planets. All matter in the Universe—from Jupiter’s moons to dwarf galaxies—huddles within these tiny 1% "backwaters" near massive gyroscopic shields, seeking refuge from the overwhelming pressure of the external medium, which 2026 Voyager data confirms to be dozens of times denser than the environment within our system.</p> <p dir="ltr">ENGINEERING CALCULATION: SGR A* GYROSCOPIC BALANCE<br>Author: Yerzhan OrymbetovModel: Pressure-Shadow Balance (3.326/6.674)Date: January 12, 2026</p> <p dir="ltr">1. SYSTEM CONSTANTS<br>P (External Medium Pressure): 3.326<br>G (Newtonian Matter Shadow): 6.674<br>Total Balance: 10.000<br>2. OBJECT DATA: SGR A (GALACTIC CENTER)*<br>V (Linear Velocity): 299792.458 km/s (Speed of Light)<br>R (Radius): 12,700,000 km<br>L (Circumference): 2 * 3.14159 * R = 79,796,453 km<br>T (Rotation Period): L / V = 266.17 seconds<br>3. GYROSCOPIC DYNAMIC INDEX (K)<br>Formula: K = V / T<br>Calculation: <a href="tel:29979245826617">299792.458 / 266.17</a> = 1.126<br>4. RESONANCE VERIFICATION (Rz)<br>Formula: Rz = K / P<br>Calculation: 1.126 / 3.326 = 0.338...<br>Reference Point: 0.333 (exactly 1/3)<br>Accuracy: 98.5%</p> <p dir="ltr">5. MASS HIERARCHY (1/3 to 2/3 BALANCE)<br>Milky Way (1/3) / Andromeda (2/3): Ratio 1 to 2<br>Sun (1/3) / Alpha Centauri (2/3): Ratio 1 to 2<br>Earth / Sun: Ratio 1 to 333,333 (Code 3.33)</p> <p dir="ltr">6. PULSAR SCALE (90% POPULATION)<br>Dynamic Group (1.33s): Period 1.33 / 3.33 = 0.4 (2/5)<br>Static Group (0.33s): Period 0.33 / 3.33 = 0.1 (1/10)</p>