Read · Special relativity: from clock operations to electrodynamics

§1 · operational simultaneity

Follow the introduction and all ten sections, including field transformations, finite light complexes, moving mirrors, charge-current transformations, and the electron-force conventions.

Newly authored explanatory preview in modern notation, with editorial and physics review pending. Both the kinematic and electrodynamic halves are treated, but this is not a German transcription, an aligned translation, or a complete critical edition. The source paragraphs, footnotes, acknowledgment, and date-lines are not claimed to be fully represented or reviewed here. Headings and argument units are editorial.

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§1 · operational simultaneity

definition · Within the stated model

Time at a distant clock is an operation

How can clocks at different places share a time coordinate?

tBtA=tA,returntBt_B-t_A=t_{A,\mathrm{return}}-t_B

The outward assigned travel time equals the return assigned travel time.

tB=tA+tA,return2t_B=\frac{t_A+t_{A,\mathrm{return}}}{2}

The assigned reflection time is the midpoint of departure and return times.

If A sends at time 0 and receives the reflected signal at time 10, the convention assigns time 5 at the reflection event at B. A later reception of a photograph of B is another event, not a replacement for that time assignment.

SR-01 retains departure, reflection, reception, and clock-reading records separately. The equal-time rule defines a coordinate procedure in the chosen rest frame.

Show every step here: Time at a distant clock is an operation
  1. Record departure and return on the same clock at A.
  2. Identify the intervening reflection event at B.
  3. Assign its clock reading the arithmetic midpoint.
  4. Check the assigned outward and return intervals.
  5. Keep the time of a remote event separate from reception of its signal.
Assumptions and limits: Time at a distant clock is an operation

Assumed here

  • The clocks and endpoints are at rest in one inertial frame.
  • The light-based convention assigns equal outward and return travel times.

What this does not establish

  • One round-trip clock reading alone does not independently measure both one-way travel times.
  • Synchronizing clocks is distinct from moving them or changing their rates.

Source context: German source · English · Interlinear gloss · Facsimile

References and source status

Newly authored explanatory preview in modern notation, with editorial and physics review pending. Both the kinematic and electrodynamic halves are treated, but this is not a German transcription, an aligned translation, or a complete critical edition. The source paragraphs, footnotes, acknowledgment, and date-lines are not claimed to be fully represented or reviewed here. Headings and argument units are editorial.

A. Einstein, Zur Elektrodynamik bewegter Körper. Annalen der Physik (4), 17, 891–921 (1905).

A. Einstein, Does the inertia of a body depend upon its energy content?. Annalen der Physik (4), 18, 639–641 (1905). External 1923 Perrett–Jeffery translation, electronically transcribed by John Walker; its notation was modernized. A reference for this explanatory preview, not this edition’s reviewed translation or pinned facsimile.

16 foundation readings sit behind this argument.

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