
Cosmic Influx Theory (CIT)
Introduction
The Cosmic Influx Theory (CIT) explores the continuous influx of mass-energy in celestial bodies, contributing to planetary growth, geophysical activity, and gravitational effects. Beyond the macroscopic scale, CIT proposes that mass-energy influx also influences microscopic phenomena such as Van der Waals forces, the Casimir effect… [8.2.10], and even the trajectory of falling raindrops. These phenomena may provide subtle but crucial evidence of a pervasive cosmic influx shaping both the vast and the minuscule aspects of the universe.
By delving into the Gravitational Constant, we unveil compelling evidence for an increase in mass and heat for all celestial objects within an isotropic and homogenous universe as a result of the Lorentz Transformation of Mass- Energy (LTME) [8.1.1]. Traditionally, LTME has been considered relevant primarily for subatomic particles at high velocities. However, this study posits that LTME is equally applicable to big celestial bodies, even at relatively low velocities.
CIT introduces the concept of a universal energy influx, hypothesized as a stream of “whirlings” or “excitations” interacting with the kinetic energy of atoms, driving incremental mass increases in alignment with the Lorentz Transformation of Mass-Energy (LTME) [8.7.2]
This mechanism offers a unified explanation for geological phenomena such as volcanic activity, seafloor spreading, and planetary expansion [8.4.15] [8.4.20], while also addressing cosmological questions such as galactic rotation curves and cosmic acceleration. Key results include calculated mass-energy growth rates consistent with geological observations as described by many researchers on Earth Expansion and Expansion Tectonics [8.4.20] [8.4.21], a redefinition of gravitational acceleration through the volumetric universal influx. By integrating CIT with established physics principles and observational data, this paper highlights its potential to bridge gaps in mainstream models of dark matter and dark energy [8.1.2].
Importantly, CIT does not reject the occurrence of subduction zones. Rather, it integrates subduction as a natural consequence of localized surface adjustments during global expansion. While oceanic crust is created at mid-ocean ridges, older, denser crust may subduct along continental margins, often accompanied by mountain building. However, the net balance, according to CIT, is a continuous increase in the total mass and volume of celestial bodies. A more detailed discussion on how subduction and expansion coexist within CIT is presented in Chapter 5.3.
This pursuit contemplates the possibility of an infinitely energetic universe, where energy metamorphoses into mass through M=Ec2 This interpretation proposes the existence of a Process of Continuously Created Matter, manifesting as an ongoing accretion, augmentation, and expansion, harmonizing with the universe’s ever-expansive nature [8.4.7].
CIT introduces the Preferred Distance (Dpref), derived from the Root Mean Square Velocity (VRMS) of planetary systems (see Chapter 2 for explanation)[8.7.3], as a key factor in structuring planetary orbits. This theory challenges conventional gravitational models by linking the gravitational constant (G) to the Lorentz transformation and vacuum energy properties [8.7.8].
The purpose of this Wikiversity page is to present CIT in a structured and accessible format, supported by mathematical derivations, observational data, and theoretical discussions.
CIT–VGT: An Interdisciplinary Collaboration in Gravitational and Geometric Physics
Francesco Chiaramonte
In 2026, the Cosmic Influx Theory (CIT) entered a new collaborative phase through the work of Francesco Chiaramonte, developer of Vortical Geometrodynamics Theory (VGT) [8.4.54] . While the original CIT framework was developed by Ruud Loeffen, Chiaramonte has contributed substantially to the mathematical, geometrical, and field-theoretical interpretation of several CIT-related ideas.
The collaboration between Loeffen and Chiaramonte focuses especially on the possible complementarity between CIT and VGT. In this combined approach, CIT proposes a universal influx process related to mass-energy growth, gravitational acceleration, and preferred-distance relations, while VGT explores vortical, torsional, and geometrical structures that may provide a more formal mathematical language for such processes.
Chiaramonte’s contribution is particularly important in the development of the CIT–VGT research line, including discussions on planetary torsional coupling, gravitational lensing, vortical constraint algebra, Gaia DR3 harmonic density structures, and possible links between vacuum dynamics, angular momentum, and large-scale cosmic organization. These ideas remain exploratory and should not be presented as established physics, but they represent a serious attempt to make the CIT framework more mathematically explicit and testable.
For that reason, Francesco Chiaramonte is introduced here as co-author and theoretical collaborator for the CIT–VGT convictions, reasoning, insights, and related publications developed from 2026 onward. The aim of this collaboration is not merely to confirm CIT, but to examine, strengthen, criticize, formalize, and where necessary correct the theory through mathematical reasoning, observational comparison, and open scientific discussion.
Professor Suresh Kumar S.
Professor S. Suresh Kumar contributes advanced knowledge in mathematical physics, particularly in metric-affine geometry, torsion, Palatini formulations, SU(2) structures, hypermomentum, field theory, and the geometric foundations of gravitation. These areas are closely related to the effort within CIT–VGT to describe gravity not only as an observed force, but as a deeper interaction between cosmic influx, matter, motion, and spacetime structure.
His contribution is expected to strengthen the mathematical and theoretical basis of the combined CIT–VGT framework. In particular, he can help investigate whether the proposed influx processes can be represented through torsion, affine connections, matter–geometry coupling, and microscopic degrees of freedom. This may provide a bridge between the macroscopic phenomena emphasized in Cosmic Influx Theory and the more formal geometric structures developed within VGT.
Professor Kumar may also contribute to the formulation of consistent field equations, action principles, conservation relations, and possible links between nuclear, atomic, astrophysical, and cosmological scales. His expertise is therefore especially valuable in testing the internal consistency of CIT–VGT, identifying necessary mathematical improvements, and translating its physical concepts into a more rigorous theoretical framework suitable for further scientific discussion, comparison, and development.
RMM Loeffen
Ruud Loeffen is the originator and principal developer of Cosmic Influx Theory (CIT). His work begins with observable gravitational, geological, planetary, and cosmological phenomena and explores the possibility that gravity is associated with a continuous inward influx of energy and matter-forming potential.
Using accessible mathematics, numerical comparisons, and dimensional analysis, he has developed relationships involving surface gravity, planetary mass, the Lorentz transformation of mass-energy, the characteristic (V_{\mathrm{RMS}}) velocity, the gravitational constant, and possible mass-energy increase over time. His research also investigates connections between gravitational processes at planetary scales and matter formation at atomic and nuclear scales.
Within the broader CIT–VGT collaboration, Ruud provides the foundational physical concepts, numerical discoveries, observational interpretations, and cross-scale hypotheses. His aim is to encourage critical examination, mathematical development, and independent testing of CIT as an alternative framework for understanding gravity and cosmic evolution.
Chapters
Below are the ten chapters explaining the Cosmic Influx Theory in detail:
- Chapter 1: The Foundations of Cosmic Influx Theory
- Chapter 2: The Role of VRMS in Planetary Structuring
- Chapter 3: The Cosmic Influx and the Gravitational Constant (G)
- Chapter 4: Implications for Planetary and Cosmic Expansion
- Chapter 5: Cosmic Expansion and the Growth of Celestial Bodies
- Chapter 6: The Future of Cosmic Influx Theory
- Chapter 7: Units, Dimensions, and Fundamental Constants in CIT
- Chapter 8: Supporting Research, References, and Multimedia on Cosmic Influx Theory
- Chapter 9: Genesis of the Cosmic Influx Theory
- Chapter 10: Feeling the Influx — A New Point of Observation
Detailed Chapter and Subsection Overview
Chapter 1: The Foundations of Cosmic Influx Theory
- 1.1 The Root Mean Square Velocity (VRMS)
- 1.2 The Limitations of Traditional Gravitational Models
- 1.3 The Concept of an Energy Influx
- 1.4 Lorentz Transformation and Planck-Based Influx Concepts
Chapter 1: The Foundations of Cosmic Influx Theory
- 1.1 The Root Mean Square Velocity (VRMS)
- 1.2 The Limitations of Traditional Gravitational Models
- 1.3 The Concept of an Energy Influx
- 1.4 Lorentz Transformation and Planck-Based Influx Concepts
- 1.5 Understanding VRMS and Its Significance
- 1.6 Relating Lorentz Mass-Energy to the Gravitational Constant
- 1.7 From Einstein’s Original Kappa to Vacuum Structure
Chapter 2: The Role of VRMS in Planetary Structuring
- 2.1 How VRMS is Related to Cosmic Structuring
- 2.2 The Connection Between CIT and General Relativity
- 2.3 The Preferred Distance (Dpref) and its Calculation
- 2.4 Empirical Confirmation from Exoplanetary Systems
- 2.5 Implications for Planetary Formation Models
Chapter 3: The Cosmic Influx and the Gravitational Constant (G)
- 3.1 The Traditional Definition of G
- 3.2 Vacuum Energy and the Gravitational Constant
- 3.3 The Role of Vacuum Energy in Gravity
- 3.4 Mass, Vacuum, and the Historical Constants
- 3.5 A Relativistic Vacuum Model: Components A & B
- 3.6 Observational Evidence and Implications (volcanoes etc.)
- 3.7 Summary
Chapter 4: Implications for Planetary and Cosmic Expansion
- 4.1 Recap of Delta Influx
- 4.2 Isostasy as Internal Pressure and Volume Stress Due to Influx
- 4.3 Radius Growth: A General Response to Cosmic Influx
- 4.4 Equality of Influx and Gravity
- 4.5 Implications for Planetary and Cosmic Expansion
- 4.6 Conclusion: Influx as the Driver of Mass-Energy Growth
- 4.7 Looking Back in Time
- 4.8 Reversing Our Perspective: Looking Back from the Primordial Energy Field
- 4.9 The Expanding History of the Universe
- 4.10 A New Perspective on the Observable Universe
- Summary
Chapter 5: Cosmic Expansion and the Growth of Celestial Bodies
- 5.1 Planetary Growth Through Mass-Energy Influx Delta INFLUX
- 5.2 The Link Between Cosmic Expansion and CIT
- 5.3 Geophysical Evidence: Plate Tectonics and Planetary Evolution
- 5.3.1 Seafloor Spreading – A Step Toward Understanding Multi-Directional Crustal Growth
- 5.3.1.1 Introduction
- 5.3.1.2 Traditional Model
- 5.3.1.3 Multi-Directional Seafloor Spreading
- 5.3.1.4 MDSS and Expansion Tectonics
- 5.3.1.5 Evidence on Continents
- 5.3.1.6 Are Some Mountain Ranges Fossil Mid-Ocean Ridges?
- 5.3.1.7 Fossil Spreading Ridges Preserved on Continental Crust
- 5.3.1.8 Isostasy in a Multi-Directional Growth Picture (MDSS)
- 5.3.1 Seafloor Spreading – A Step Toward Understanding Multi-Directional Crustal Growth
- 5.4 Earth’s Day Length Through Geological Time
- 5.5 Stellar Growth and Galactic Evolution
- 5.6 Bondi-Hoyle Accretion as Empirical Support
- 5.7 Pioneers and Contributors to Earth Expansion and Expansion Tectonics
- References
- Summary
Chapter 6: The Future of Cosmic Influx Theory
- 6.1 Experimental and Observational Tests for CIT
- 6.2 CIT and the Unification of Physics
- 6.3 The Role of AI-Human Collaboration in Science
- 6.4 Why Local Mass Measurements Cannot Detect the Influx
- 6.5 Observational Evidence for a Cosmic Influx: Accelerometer, Casimir Effect, Cloud Chamber, Van der Waals Forces, and the Human Body
- 6.6 The Human Sensor of Influx
- Summary
Chapter 7: Units, Dimensions, and Fundamental Constants in CIT
- 7.1 Unit Conversions in CIT
- 7.2 The Five Dimensions in CIT
- 7.3 Derivation of Constants in CIT
- 7.4 Conclusion
- 7.5 Overview of Important Constants
Chapter 8: Supporting Research, References, and Multimedia
- 8.1 Articles Explaining CIT
- 8.2 Comments and Contributions from ChatGPT
- 8.3 Excel Files Supporting CIT
- 8.4 Other Articles and Websites
- 8.5 Videos Supporting CIT
- 8.6 Videos Related to CIT
- 8.7 Selected Responses from ChatGPT
Chapter 9: Genesis of the Cosmic Influx Theory
- 9.1 Early Insights and Thought Experiments
- 9.2 Connecting with Existing Theories
- 9.3 Mathematical Exploration and Key Discoveries
- 9.4 Challenges and the Scientific Landscape
- 9.5 The Role of AI in Theory Development
- 9.6 Conclusion and Future Directions
- Chapter 10: Feeling the Influx — A New Point of Observation