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<head>
  <doi_batch_id>91aa803cedff2b6d6728167f</doi_batch_id>
  <timestamp>20260918184400000</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>09</month>
    <year>2026</year>
  </publication_date>
  <journal_volume>
    <volume>6</volume>
  </journal_volume>
  <issue>3</issue>
</journal_issue><!-- ============== -->
<journal_article publication_type='full_text'>
  <titles>
  <title>A Navier-Stokes-Based Validity Framework for Linear and Nonlinear Transient Pressure-Wave Modeling in Spacecraft Pumped-Fluid Loops</title>
  </titles>
  <contributors>
    <person_name sequence='first' contributor_role='author'>
     <given_name>Misha</given_name>
      <surname>Nikouravan</surname>
<affiliations><institution><institution_name>Mechanical Engineering, CentraleSupélec, Université Paris-Saclay, France</institution_name></institution></affiliations>
    </person_name>
  </contributors>
  <jats:abstract xml:lang='en'>
    <jats:p>Transient pressure disturbances in spacecraft pumped-fluid loops are commonly represented by linearized one-dimensional models, yet the error introduced by linearization is rarely quantified against a nonlinear formulation derived from the same conservation laws. This study develops a Navier-Stokes-based validity framework for single-phase spacecraft pumped-fluid loops. Mass conservation and axial momentum balance for a slightly compressible Newtonian liquid are reduced to coupled pressure-velocity equations that retain convective inertia and flow-regime-dependent wall friction. A consistent linear model is obtained by perturbation about a nonzero steady circulation state. The equations are solved with fourth-order spatial differencing and classical fourth-order Runge-Kutta integration. Verification against an exact smooth nonlinear characteristic solution gives the designed fourth-order convergence, with relative error decreasing to 2.72×10⁻¹⁰ at 800 grid points, and the nonlinear solution recovers the moving-base linear limit as the acoustic Mach number tends to zero. Two spacecraft-informed applications are examined: a turbulent HFE-7200 external thermal-control loop and a laminar 50/50 propylene-glycol/water internal loop. For a 20% smooth pump disturbance, the global linear-versus-nonlinear pressure discrepancies are 0.0667% and 0.0116%, respectively, with peak transient pressure excursions of approximately 74.8 and 13.6 kPa. Even at the largest tested disturbance amplitude (45%), the discrepancies remain 0.1481% and 0.0260%. A broader dimensionless map shows that errors above 1% require simultaneously larger acoustic Mach number and disturbance amplitude, while the 5% threshold in the tested turbulent family appears only near M ≳ 0.08 with strong forcing. The results show that the consistent linear model is quantitatively sufficient for the representative low-Mach spacecraft loops studied, while the nonlinear formulation provides a verified criterion for identifying conditions under which that simplification ceases to be adequate.</jats:p>
  </jats:abstract>
<publication_date media_type='online'>
    <month>09</month>
    <year>2026</year>
  </publication_date>  <pages>
  <first_page>46</first_page>
  <last_page>61</last_page>
  </pages>
  <doi_data>
  <doi>10.55672/hij2026pp46-61</doi>
  <resource>https://hscience.org/index.php/hij/article/view/REPLACE_WITH_ARTICLE_ID</resource>
  </doi_data>
</journal_article>
  </journal>
</body>
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