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📖 Free full textPeer-ReviewedOpenAlexResearch ArticleZenodo (CERN European Organization for Nuclear Research) · 2026

Magnetic quantum computers

Travis Raymond-Charlie Stone

Abstract

The Quantum-Magnetic Piston: A Unified Theory of Phase-Change Synthesis and Information Transduction Introduction The traditional boundary between mechanical engineering and quantum information science is defined by the scale of interaction. However, by synthesizing the principles of volumetric pressure-temperature correlatives, centrifugal vacuum extraction, and high-density magnetic flux, we can conceptualize a novel architecture: the Quantum-Magnetic Piston. This system treats the atmosphere not as a gaseous void, but as a high-resistance fluid of latent potential, capable of being harvested, compressed, and "precipitated" into a liquid water supply through a process governed by macroscopic quantum influence. I. The Dynamics of Atmospheric Resistance The foundation of this proposal rests on the variability of heat transfer within a humid atmosphere. Unlike a dry atmosphere, which exhibits linear sensible heat transfer, a high-relative-humidity (RH) environment possesses a "latent heat blanket." As a force compresses this atmosphere against a liquid interface, displacement is met with non-linear resistance (𝑅−1). To quantify this, we establish an Interval Scale of Vaporization Potential, measured in millimeters of displacement per Pascal per degree Celsius (𝑚𝑚3/𝑃𝑎/°𝐶). At the 1st percentile of vaporization, the system is highly elastic; however, as we approach the "Inverse" of this correlative, the energy required to collapse vapor back into liquid spikes. This resistance is the primary barrier to creating a water supply from gases, necessitating a more sophisticated "force" than simple mechanical pressure. II. Centrifugal Extraction and the Magnetic Harvest To overcome atmospheric resistance, the proposal utilizes a centrifugal-vacuum hybrid. By spinning a water source at high velocities, a synthetic gravity gradient is created. This forces denser liquid to the periphery while "bleeding" dissolved gases—specifically Oxygen (O2) and Hydrogen (H2) toward a central vacuum port. Once these commercial-grade gases are harvested, they are introduced into a pressure vessel dominated by Maximum-Force Magnetic Stacks. By pressing two high-powered magnets together at either homogeneous (repulsive) or heterogeneous (attractive) points, we generate a suite of secondary effects: Electromagnetic Convection: Induced eddy currents move energy at the speed of electron flow, wicking away the "Heat of Compression" faster than traditional fluid convection. Photonic Lensing: Extreme magnetic flux density (𝐵) alters the refractive index of the gap, creating a "magnetic prism" that can focus light and heat to reach the 500°C auto-ignition threshold required for water synthesis. Molecular Torque: The magnets physically align the paramagnetic oxygen molecules, lowering the activation energy needed to precipitate liquid water. III. The Magnet as a Quantum Computing Element The most novel leap in this exploration is the transition from a mechanical reactor to a Quantum-Magnetic Computer. By holding these magnets apart with a metrology-grade scale, we measure two critical variables: Static Weight and Lattice Strain. By modulating the position of the magnets, we can detect "Quantum Influence." When the magnets are compressed to the point of "homogeneous polarity approximation," the strain on the crystal lattice and the fluctuations in measured weight become a readout of Quantum Coherence. The "Strain-to-Weight" ratio serves as the computational logic: The Qubit: Defined by the superposition of magnetic domains under extreme pressure. The Gate: Controlled by the nano-modulation of the gap distance. The Output: The "Quantum Effect" is determined by the system’s ability to "calculate" the exact moment of molecular alignment to trigger synthesis. In this regime, the computer and the chemical reactor are one. The quantum computer calculates the optimal "Resistance" (𝑅−1) path, and the magnetic field executes the "Precipitation" of the water supply. I

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