AngelΒ Matter

In a far away parallel universe an advanced civilization built a computer around a star and escaped into a simulated reality. After some immeasurable amount of time these facts were forgotten and after another immeasurable amount of time that star began to die. Even so, life Inside this simulation progressed, and on one planet some of that life progressed enough to form a government. You are the new member of a mysterious project under a secret agency of this government researching the elementary particles that make up your universe.

AM Research Manual

This document is property of the research division codename Angel Matter. All contents here within are classified top secret under code XE-333. Some contents are classified β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ under code β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ and have been redacted as such.

As a researcher under the Angel Matter program your goal is to understand the nature of our universe at a fundamental level by studying the behavior of the particles that make it up. Using your provided Angel Matter software you will study the visualizations of these behaviors highlighted below.

1: Particle

Fig 1: Visualization of an elementary particle
Fig 1: Visualization of an elementary particle

Particles are the building blocks of our reality and their interactions with one another dictate the laws of physics, chemistry, and biology. Every particle in the universe is unique in some way and at a basic level is comprised of 10 light orbitals that form an energy gradient core and 4 of 16 cardinal elements.

1.1 Elements

  • ⧈ void

  • β˜‰ moon

  • βŠ• planet

  • 🝊 dwarf

  • ✧ star

  • β—ˆ giant

  • ❖ nova

  • ⨳ supernova

  • ✸ hypernova

  • ❉ system

  • πŸœ‹ quasar

  • βš› galaxy

  • ⁂ megacluster

  • ☊ wormhole

  • β™Ύ universal

  • ↂ multiversal

1.2 Spin

Every particle takes either an up spin or a down spin when observed. The spin of a particle can be easily inverted at any time and the effects of this can be observed in both the exterior wavefield interaction and static transmission decay.

2: Exterior Wavefield Interaction

Fig 2: Visualization of a particles exterior wavefield interaction
Fig 2: Visualization of a particles exterior wavefield interaction

Every particle has a magnetic wavefield that emits both laterally and medially from its energy gradient. The strength of individual fields can be represented by a color that remains constant but the relative position of these fields shifts based on the external environment of the particle.

Fig 3: Exterior wavefield interaction visualization of the same particle when inverted and placed in a different environment
Fig 3: Exterior wavefield interaction visualization of the same particle when inverted and placed in a different environment

3: Subdimensional Architecture

Fig 4: Visualization of a particles subdimensional architecture
Fig 4: Visualization of a particles subdimensional architecture

In lower dimensions, particles are observed to have a crystalline architecture that is represented by rings that form positive, negative, and neutral bonds against each other. Over time the strong white light reflected through the crystal structure will slowly shift with noticeable changes taking place on a daily timeframe.

Fig 5: Subdimensional architecture visualization of the same particle several weeks later
Fig 5: Subdimensional architecture visualization of the same particle several weeks later

3.1 Eclipse

On several rare occasions particles have been recorded going through a phase of eclipse. This is the only time that β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ

4: Pentagonal Element Collapse

Fig 6: Visualization of a particles basic pentagonal element collapse
Fig 6: Visualization of a particles basic pentagonal element collapse

Pentagonal element collapse is a visualization of the wave particle duality phenomenon. When transmitted through a pentagonal prism in its wave state prior to observation, a particles energy gradient can be separated into the basic components of red light, green light, blue light, and black light. Through targeted methods that use more precise prisms, a particle can also be separated into weakly charged white light. This process is foundational to the synthesis of higher level chemical compounds.

Fig 7: Visualization of an advanced pentagonal element collapse with weakly charged white light
Fig 7: Visualization of an advanced pentagonal element collapse with weakly charged white light

4.1 Strongly Charged White Light

It is hypothesized that β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ The phenomena is still yet to be observed.

5: Static Transmission Decay

Fig 8: Static transmission decay visualization of an undisturbed particle
Fig 8: Static transmission decay visualization of an undisturbed particle

Every time a particle is transmitted to another environment it experiences a level of decay that can be detected at a macro scale. A particle experiences decay at most 100 times before becoming stable. β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ

Fig 9: Static transmission decay visualization of the same particle after inversion and 100 transmissions
Fig 9: Static transmission decay visualization of the same particle after inversion and 100 transmissions

6: Antigraviton

Antigraviton is something that is emitted by particles at a constant rate of 1 per second. The phenomenon is unobservable by current methods and there is fierce debate over whether antigraviton are sub particles, waves, or something else entirely. None the less, amounts of antigraviton noted by the symbol Ο† can be measured and extracted from particles.

7: Collision Research

Fig 10: Results of particle acceleration and following collision
Fig 10: Results of particle acceleration and following collision

Advances in our field of study have led to us to the focus of the Angel Matter project, particle collision. By using a large amounts of antigraviton (3,333,333) we can accelerate a given particle to critical speeds and from there introduce a signal that results in collision. The direct result of this process is a raw tensor of quantum data that can then be visualized as a collision map like the one seen above. Our theory is that under intense acceleration the wavefields of a particle expand from the energy gradient which in turn breaks down the bonds within the subdimensional architecture. When a signal is introduced it briefly fractures the particle along its cardinal elements which can be observed in four distinct flashes of light. Following this the particle reforms in an entirely new state with different attributes and reset decay. We believe the through this methodology we can discover β–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆβ–ˆ

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