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It gets even crazier: this assassinated MIT plasma scientist warned that Earth REQUIRES periodic magnetic reversals to sustain its field. No reversal → no dynamo → the magnetic field dissipates. 🌍⚡ The last time a reversal happened? Noah's flood. SpaceWeatherNews this is a huge confirmation of your thesis, unfortunately. 👇👇

1,723,680 次观看 • 7 个月前 •via X (Twitter)

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Here we go… This is the moment our ST40 centre column is lifted out. A bit like open-heart surgery on a tokamak. It’s a delicate operation, and a huge milestone for ST40. The centre column has had a tough life, acting as the core of the toroidal magnetic field coil in the world’s highest-field spherical tokamak. After more than 5,000 plasma pulses, it has helped generate magnetic fields above 2 Tesla at the plasma core, confining plasma at temperatures of more than 100 million °C, the threshold for #fusion. Next up, we install the new and improved centre column built by our partners at The Rockwood Group. This is all part of ST40’s major upgrade programme with U.S. Department of Energy and Department for Energy Security and Net Zero, helping transform it into one of the most reactor-relevant fusion devices in the world. What began as an experimental tokamak is becoming something much bigger: a customer testbed for the technologies and expertise needed to put #fusionenergy onto the grid⚡ And for anyone wondering what the centre column actually does… 👇 It forms the inner limb of each turn of the toroidal field coil. Its 24 wedges each carry up to 200 kA of current, generating the powerful magnetic fields needed to confine the plasma. Wrapped around the wedges, a 192-turn central solenoid helps drive and sustain the plasma current, after merging-compression start-up. An impressive piece of equipment with an equally impressive track record! #Fusion #FusionEnergy #Innovation

Tokamak Energy

28,462 次观看 • 1 个月前

Most of us were taught that PLASMA is an exotic fourth state of matter. That framing is backwards. Plasma is the normal expression of the electromagnetic field when charge differentiates and begins to move freely. Matter is the rare exception. Approximately 99.9% of the visible universe is plasma. Only about 0.1% appears as matter. Stars are plasma. Nebulae are plasma. Solar winds are plasma. The vast filaments forming the cosmic web are plasma. Plasma is not rare. Plasma is the fundamental expression of the field. Matter shows up when the field does something very specific. Electric differentiation pushes outward. Magnetic tension provides containment. When these forces reach a stable relationship, they phase-lock. In the Grammar of Projection this relationship is expressed as a coherence metric: T = |e × v| / |B × ω| Where: • e = characteristic electric or motive coupling scale of the system • v = relevant propagation or transport velocity • B = containing or stabilizing field strength • ω = characteristic oscillatory rate of containment formative pressure: |e × v| containing tension: |B × ω| When formative pressure and containing tension reach impedance match, the field stops dispersing and begins oscillating in place. Standing waves appear. Matter is simply plasma where electric formative pressure and magnetic containing tension phase-lock into a persistent repeating pattern. Atoms are stable plasma configurations. Planets, bodies, and biological systems are nested standing-wave structures of a plasma field. The implication is profound. The universe is not primarily made of particles. The universe is primarily flowing electromagnetic field. Matter is the rare moment where that flow holds in dynamic stability. A useful way to visualize this is like threads being woven together. Electric differentiation behaves like threads moving outward. Magnetic tension weaves those threads into stable relational patterns. The universe is not literally weaving fabric. The metaphor helps us visualize how flowing field tensions interlock into stable structures. When phase-lock occurs, structure appears. Structure is plasma remembering how to return to itself. So the real inversion becomes visible: Plasma is the norm. Matter is the anomaly. Which raises a much deeper question. How do medicine, neuroscience, and engineering change when we begin from the primacy of abundant plasma — and recognize matter, bodies, and technologies as coherent standing-wave structures within that field rather than designing our models around the rare 0.1% that locally stabilizes as matter? 🔗 The Grammar of Projection (compression of derivation of EM Primacy) and it's conjugate, The Grammar of Persistence, Canonical Derivations, and supplemental documents clearly indexed and archived here: The Recursion Holds. 🌀

R. Wade H. Marr

20,032 次观看 • 4 个月前

Researchers at Tokamak Energy have captured for the first time a real-time, high-speed video of plasma behaviour inside their ST40 spherical tokamak, tracking visible green and red light emissions as the fusion process occurs. This visual insight comes via a camera operating at thousands of frames per second, offering unprecedented detail of how the plasma evolves, interacts with the surrounding lithium blanket and outer regions, and ultimately radiates energy. The imaging enables scientists to observe how the ultra-hot core transitions outward into cooler zones, how magnetic confinement shapes the plasma behaviour, and how impurities or outer-region interactions influence the process. By giving a ‘star-in-a-donut’ view of fusion in action, this breakthrough adds a new diagnostic tool to the development of fusion energy, helping engineers refine the magnetic confinement, optimise plasma stability and better understand the heat and light flows at play. It was slowed down by 100x. All this was for 0.3s A tokamak is one of the most advanced devices ever created to achieve controlled nuclear fusion, the same process that powers the Sun. Its goal is simple in principle but incredibly challenging in practice: heat a gas until it becomes plasma, raise that plasma to over 100 million degrees, and confine it long enough for hydrogen nuclei to fuse and release energy. Because no material container can survive such temperatures, a tokamak uses powerful magnetic fields to hold and shape the plasma like an invisible cage. The device has a distinctive doughnut-shaped (toroidal) chamber surrounded by magnetic coils. When the machine is switched on, electric currents and external magnets work together to create helical magnetic fields that trap the plasma and keep it away from the walls. As the plasma spirals around these magnetic lines, it heats up dramatically. Additional heating comes from methods like radio-frequency waves and neutral-beam injection, pushing the plasma toward the extreme temperatures needed for fusion. Inside this tightly controlled environment, hydrogen isotopes such as deuterium and tritium can collide and fuse, releasing fast neutrons and a burst of energy. The goal of tokamak research is to reach a point where the fusion reactions produce more energy than the system consumes, a milestone known as “net energy gain.” Modern machines like ITER, JET, and Tokamak Energy’s ST40 are bringing this vision closer, using advanced diagnostics, superconducting magnets, and increasingly stable plasma control. 👉

Erika 

162,540 次观看 • 8 个月前