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<head>
  <doi_batch_id>674fc48819c9a21316e4620</doi_batch_id>
  <timestamp>20260227122053938</timestamp>
  <depositor>
    <depositor_name>hyperscienceij@gmail.com:rcrl</depositor_name>
    <email_address>hyperscienceij@gmail.com</email_address>
  </depositor>
  <registrant>WEB-FORM</registrant>
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<body>
  <journal>
    <journal_metadata>
  <full_title>Hyperscience International Journals</full_title>
  <abbrev_title>hij</abbrev_title>
  <issn media_type='electronic'>28213300</issn>
</journal_metadata>
<journal_issue>
  <publication_date media_type='online'>
    <month>03</month>
    <year>2026</year>
  </publication_date>
  <journal_volume>
    <volume>6</volume>
  </journal_volume>
  <issue>1</issue>
</journal_issue><!-- ============== -->
<journal_article publication_type='full_text'>
  <titles>
  <title>Lagrangian Dynamics of the Musakhail Aether Dynamical ‎Lagrangian</title>
  </titles>
  <contributors>
    <organization sequence='first' contributor_role='author'>Independent Researcher, 10 William Ave, Greenlane, Auckland 1051, New Zealand</organization>
    <person_name sequence='first' contributor_role='author'>
     <given_name>James Russell</given_name>
      <surname>Farmer</surname>
    </person_name>
    <person_name sequence='additional' contributor_role='author'>
      <given_name>Muhammad Aslam</given_name>
      <surname>Musakhail ‎</surname>
    </person_name>
   <organization sequence='additional' contributor_role='author'>Independent Researcher, Pakistan</organization>
  </contributors>
  <jats:abstract xml:lang='en'>
    <jats:p>This work extends previous investigations into the relationship between the Einsteinian ‎Hamiltonian formulation and the Musakhail aether-based Lagrangian description of ‎dynamics. While earlier studies established their simultaneous role in the Newtonian-‎Einsteinian framework, the present paper focuses specifically on a formal Lagrangian ‎dynamical analysis in order to derive the corresponding equation of motion. Within the ‎proposed framework, the resulting dynamics suggest a correspondence in which the ‎classical relation F=ma transitions naturally toward the relativistic energy expression E=‎mc^2, interpreted here through the restoration of Newtonian behavior during the so-called ‎Reverse Higgs process. In this regime, the effective mass remains constant (m=m_e ) ‎rather than velocity-dependent, permitting a force-based description of particle-wave ‎interaction. The analysis further introduces a rotating Einstein energy vector derived from ‎the invariant relation E^2=(pc)^2+(m_0 c^2 )^2, which is employed to describe the ‎cyclic interaction between fermionic constituents and electromagnetic wave structure. This ‎approach yields a dual interpretative framework in which either photon energy extraction or ‎spin measurement may occur, depending on the observational configuration. The ‎formalism also explores a complex representation in which the orthogonal axis is treated as ‎imaginary, producing a geometrical interpretation associated with oscillatory spin states of ‎fermions (±1/2) and photons (0,±1). The resulting model suggests an underlying ‎symmetry between fermionic and bosonic spin states within the proposed aether-‎dynamical environment, providing a phenomenological bridge between classical force ‎dynamics and relativistic energy relations.‎</jats:p>
  </jats:abstract>
<publication_date media_type='online'>
    <month>03</month>
    <year>2026</year>
  </publication_date>  <pages>
  <first_page>13</first_page>
  <last_page>18</last_page>
  </pages>
  <doi_data>
  <doi>10.55672/hij2026pp13-18</doi>
  <resource>https://hscience.org/index.php/hij/article/view/193</resource>
  </doi_data>
</journal_article>
  </journal>
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