Spatial Displacement Theorykeystone: 0.03% EPJ-C draft

The redshift is the depth.

What we call gravitational redshift is not a metric effect — it is a direct reading of how deeply light sat in the spation lattice when it was emitted. And one law, v = c√z, carries that depth from the hydrogen atom to the outer solar system without a single fitted parameter.

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Act I — one scalar

Depth is closure is clock is colour

SDT space is a relay lattice. Matter crushes the volume it displaces, tightening the local spation closure ℓ_P. Light advances one spation per tick, so a tighter closure means locally slower light and a slower clock. Define the convergence depth:

z(r) = ϟ/r = (v/c)² = 1/k²  ·  ϟ = v²R/c² (koppa)

Four things turn out to be one quantity — three readings of the same closure deficit, plus the colour shift it imprints on light:

ℓ_P(r) = ℓ_P,∞(1−z) closure c_local = c_∞(1−z) light speed dτ/dt = √(1−z) clock rate z_spectral = z_emit − z_obs redshift

No attraction anywhere in this. Nothing is pulled — the convergence pushes, and matter takes the path of least resistance through the gradient. A closed least-resistance path is an orbit.

Act II — the test

Does the Sun's redshift equal its depth?

This is the whole paper in one comparison. Take the convergence depth at the solar surface — the depth solar hydrogen emits from — and compare it to the measured solar gravitational redshift:

quantityvalue
SDT depth at emission, z = ϟ_⊙/R_⊙
observed solar redshift, GM/(c²R_⊙)
ratio

The shift is the displacement depth at emission. Lab hydrogen emits its line in Earth's shallow regime; solar hydrogen in the Sun's deeper one; we record the difference as z. A satellite's clock runs at √(1−z) for the depth at its altitude — which is exactly the GPS correction, already applied every day.

solar H · deep · z=2.1e-6 lab H · shallow · z≈0 same emitted line — read shifted by the depth difference
Spations shrink toward mass (left). Identical emitters at different depths; the recorded shift is z_emit − z_obs. Inline SVG — editable.

Act III — one law

v = c√z, from the atom to 292 AU

Displacement pressure provides the centripetal force: v²/r = c²ϟ/r². Solve it and the bound-motion law is just the square root of the depth:

v(r) = c√(ϟ/r) = c√z

One relation, validated forward — no fitting — across fifteen orders of magnitude:

systemradiusv = c√(ϟ/r)reference
heliocentric orbit292 AU
Earth orbit1 AU29.78 km/s
hydrogen ground statea₀v = αc
proton surfaceR_pk=0.546<1

At hydrogen the law returns k_H = 1/α = 137.036 and the ground-state c-boundary α²a₀ = r_e exactly — the famous constants fall out of the same equation that gives a planet's speed.

the one law, live

Pick any radius around the Sun; read the depth and the orbital speed. The hydrogen rung is the same law at atomic scale.
z = ϟ/r = v = c√z =
local clock dτ/dt = k = c/v =

Act IV — the countdown

k is a clock; 137 is how far hydrogen is from the edge

From the movement budget v_circ²+v²=c², the clock rate is dτ/dt = √(1−1/k²). As k falls toward 1 (v→c) the clock halts and bound matter dissolves at the c-boundary. The hydrogen ground state sits exactly 1/α = 137 steps from that edge. So α = v/c = 1/k is at once a speed ratio, a clock rate, and a position in a countdown.

The k-countdown (log axis): rest at k→∞, dissolution at k=1. Hydrogen at k=137, the Sun at 686. Editable.

Act V — the ceiling

Our speed of light is a local rung

If c tracks the local closure, then 299,792,458 m/s is just Earth's value. We sit in the Milky Way's own depth floor, z_gal ≈ 3.5×10⁻⁷, so the absolute relay ceiling is higher:

c_∞ = c/(1−z_gal) =  ≈  c +

That ~105 m/s isotropic deficit, present even in empty interstellar space, is a prediction with no counterpart in metric gravity — and one of the three falsifiers below.

Act VI — go measure it

Three things curved spacetime does not predict

P1 · feasible nowOrbital emitter gradient

A calibrated emitter on a solar descent shows Δλ/λ = ϟ_⊙(1/r−1/r_obs): +2.05×10⁻⁷ at 0.046 AU. GPS-anchored; 5–6 orders above comb precision.

P2 · deep spaceGalactic relay floor

A constant, isotropic ~105 m/s deficit below c_∞ in field-free interstellar space. No metric counterpart.

P3 · surveyLumiostasis

Oort bodies suspended at the depth surface L_⊙/(4πr²)=F_CMB → , not a purely Keplerian distribution.

falsifierα drift breaks it

Slide α below — the SDT hydrogen speed walks off αc and k_H leaves 137. There is nowhere to hide; α is load-bearing.

k_H =

Act VII — the honest ledger

What is proven, and what is on loan

proven

The redshift = depth identity (0.03%). The one centripetal law v=c√z, forward-validated atom→292 AU. k_H=137, koppa=r_e from that law. ℓ_P=√(ϟ·ƛ) reproduces the Planck length, mass-independent.

on loan / future work

ϟ ≡ GM/c², so the first-order redshift is an identity — the novelty is the interpretation + the 2nd-order predictions, not new 1st-order numbers. The absolute ℓ_P,∞ needs one scale-seed. The galactic floor carries the MW-mass ±20%. The proton/electron internal radii are measured, not yet derived.

The claim, precisely. This does not supersede general relativity. It is an empirically equivalent first-order reading — the redshift as a medium property rather than a metric one — with distinct, testable second-order content (P1–P3). The paper states every caveat in the open rather than hiding it.

The framework already fits the sky

The same depth/convergence-floor picture, with the derived acceleration scale a₀ = cH₀/2π = m/s²:

Galaxy rotation (GD05)

135 SPARC galaxies, baryons only: RMS 23.8%, unbiased, Tully–Fisher slope 3.58.

Cross-scale collapse (APS03)

Galactic + atomic + stellar response on one curve, RMS 8.8%; a wrong floor degrades it 6×.

Every number on this page is recomputed live and matches the paper's reproducibility script keystone.js in one run.