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首页|An Operational Framework for Light-Speed Invariance and Time Dilation

An Operational Framework for Light-Speed Invariance and Time Dilation

Chen Chi-Yi

An Operational Framework for Light-Speed Invariance and Time Dilation

An Operational Framework for Light-Speed Invariance and Time Dilation

Chen Chi-Yi1

作者信息

  • 1. Hangzhou Normal University
  • 折叠

摘要

The invariance of the speed of light and the phenomenon of time dilation are foundational pillars of special relativity, yet their conceptual foundations remain a subject of ongoing debate and persistent pedagogical difficulty. We present an operational framework in which light-speed invariance and time dilation are understood as consequences of the coordinated shifts of spatial and temporal reference origins under changes of inertial frame. The framework rests on a conceptual distinction that is logically forced by the causal structure of particle dynamics: the separation of the \emph{absolute background} of spacetime---the invariant but unobservable stage on which all events occur---from the \emph{relative physical scales} defined by material clocks and rods. When a frame changes, the spatial reference origin and the temporal reference origin both shift, and they shift in a coordinated manner because both are anchored to the same reference particle. Their joint displacement cancels exactly in the ratio $\Delta x'/\Delta t'$ for light, causing $c$ to emerge as an invariant. We demonstrate that time dilation is fundamentally a comparison ofworldline lengths: Observationally, when an observer intercepts theworldlines of different clocks by two of her simultaneity hypersurfaces,she finds that the uniformly moving clock's worldline is shorter;physically, however, it is the observer who, by stretching hercoordinate time, realizes this shortening and accommodates the clockhypothesis, yielding thefamiliar dilation factor $\gamma$. The distinction of three temporal quantities---the temporal background segment $\bgT$ (the invariant benchmark), the proper-time interval $\Delta\tau$ (the worldline length), and the coordinate-time interval $\Delta t$ (a simultaneity construct)---together with their three corresponding rates, enables a complete physical picture of time dilation to be formulated in operational terms. The twin paradox is resolved through the \emph{directionality} of the four-velocity, governed by the Minkowski reverse triangle inequality: the turnaround does not alter the travelling twin's instantaneous proper rate; rather, it changes the \emph{direction} of the traveller's four-velocity, thereby introducing directional misalignment between successive infinitesimal four-displacement vectors and reducing the accumulated proper time. The age difference is the integral of directional misalignment, not the integral of dynamical clock slowing. Throughout, we keep our assumptions explicit and situate each in the pedagogical and historical literature.

Abstract

The invariance of the speed of light and the phenomenon of time dilation are foundational pillars of special relativity, yet their conceptual foundations remain a subject of ongoing debate and persistent pedagogical difficulty. We present an operational framework in which light-speed invariance and time dilation are understood as consequences of the coordinated shifts of spatial and temporal reference origins under changes of inertial frame. The framework rests on a conceptual distinction that is logically forced by the causal structure of particle dynamics: the separation of the \emph{absolute background} of spacetime---the invariant but unobservable stage on which all events occur---from the \emph{relative physical scales} defined by material clocks and rods. When a frame changes, the spatial reference origin and the temporal reference origin both shift, and they shift in a coordinated manner because both are anchored to the same reference particle. Their joint displacement cancels exactly in the ratio $\Delta x'/\Delta t'$ for light, causing $c$ to emerge as an invariant. We demonstrate that time dilation is fundamentally a comparison of worldline lengths: Observationally, when an observer intercepts the worldlines of different clocks by two of her simultaneity hypersurfaces, she finds that the uniformly moving clock's worldline is shorter; physically, however, it is the observer who, by stretching her coordinate time, realizes this shortening and accommodates the clock hypothesis, yielding the familiar dilation factor $\gamma$. The distinction of three temporal quantities---the temporal background segment $\bgT$ (the invariant benchmark), the proper-time interval $\Delta\tau$ (the worldline length), and the coordinate-time interval $\Delta t$ (a simultaneity construct)---together with their three corresponding rates, enables a complete physical picture of time dilation to be formulated in operational terms. The twin paradox is resolved through the \emph{directionality} of the four-velocity, governed by the Minkowski reverse triangle inequality: the turnaround does not alter the travelling twin's instantaneous proper rate; rather, it changes the \emph{direction} of the traveller's four-velocity, thereby introducing directional misalignment between successive infinitesimal four-displacement vectors and reducing the accumulated proper time. The age difference is the integral of directional misalignment, not the integral of dynamical clock slowing. Throughout, we keep our assumptions explicit and situate each in the pedagogical and historical literature.

关键词

Reference-origin symmetry/ Light-speed invariance/ Time dilation/ Twin paradox/ Clock hypothesis/ Absolute background

Key words

Reference-origin symmetry/ Light-speed invariance/ Time dilation/ Twin paradox/ Clock hypothesis/ Absolute background

引用本文复制引用

Chen Chi-Yi.An Operational Framework for Light-Speed Invariance and Time Dilation[EB/OL].(2026-07-27)[2026-07-30].https://chinaxiv.org/abs/202607.00270.

学科分类

物理学
首发时间 2026-07-27
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