01. Matter Theory Temporal Gradient Simulation
Interactive CGI visualization engine. Toggle between Solar System, Galactic Center, and Cosmic Map scales. Celestial bodies glow orange according to curvature math, while the SMBH galactic core glows white where local event rate approaches zero. Hover over space to probe local distance and event rate ($\Delta t / \Delta t_0$).
See Paper §2.1 & §2.2
Matter Theory Temporal Gradient Simulation
DISTANCE
3.14 AU
EVENT RATE (ΔT/ΔT0)
0.94
02. Galactic Core & Temporal Singularity (Milky Way)
Across the Milky Way galaxy, stellar density and massive central structures compound the temporal gradient field. At the galactic center (Sagittarius A*), mass density reaches its extreme limit. As event rate approaches zero at the event horizon, the gradient field reaches maximum intensity, represented by a peak white light core embedded within the galactic orange gradient field.
See Paper §2.1 & §6.5
Figure 2: Detailed perspective of the Milky Way galaxy with a white-hot temporal gradient center at Sagittarius A*, demonstrating maximum temporal gradient concentration where time flow stops.
03. Large-Scale Structure of the Observable Universe
At cosmic scales, galaxy clusters and superclusters (such as Laniakea and the Sloan Great Wall) form interconnected web-like temporal networks. Deep cosmic voids represent regions of maximum event flow rate (fastest time flow), while filamentary cosmic structures correspond to concentrated channels of glowing orange temporal dilation fields.
See Paper §10, Universe Theory (UT)
Figure 3: Time map of the observable universe displaying high event-rate deep space voids alongside orange high-density temporal gradient filaments connecting superclusters.
04. Gravitational Lensing via Temporal Refraction
Rather than light following paths through physical spatial curves, Matter Theory models gravitational lensing as the refraction of light rays passing through a variable event-rate field across flat space. Photons traveling past a massive galaxy experience a spatial gradient in propagation rate, causing their wavepaths to bend around the body and allowing observers to view background sources (e.g., quasars) otherwise blocked from direct sight lines.
See Paper §2.2 (Flat Space Postulate) & §9 (Lensing)
Figure 4: Light paths refract through the foreground galaxy's temporal gradient field, focusing behind the obstruction to produce lensed images at the observer point.