{"id":15272,"date":"2025-12-02T21:45:41","date_gmt":"2025-12-02T21:45:41","guid":{"rendered":"https:\/\/www.hnjournal.net\/?page_id=15272"},"modified":"2025-12-02T21:45:43","modified_gmt":"2025-12-02T21:45:43","slug":"6-12-37","status":"publish","type":"page","link":"https:\/\/www.hnjournal.net\/ar\/6-12-37\/","title":{"rendered":""},"content":{"rendered":"<div class=\"journal-article\" style=\"margin-bottom: 20px;\"><h3 style='text-align: left; font-family:Times New Roman;'>Numerical Study of Flame Structure and Precursors Formation of propane\u2013H2 Mixtures<\/h3><h4 style='text-align: right; font-family:Simplified Arabic;'>\u062f\u0631\u0627\u0633\u0629 \u0639\u062f\u062f\u064a\u0629 \u0644\u0628\u0646\u064a\u0629 \u0627\u0644\u0644\u0647\u0628 \u0648\u062a\u0643\u0648\u0651\u0646 \u0627\u0644\u0645\u0631\u0643\u0628\u0627\u062a \u0627\u0644\u0623\u0648\u0651\u0644\u064a\u0629 \u0641\u064a \u062e\u0644\u064a\u0637 \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u2013\u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646<\/h4><p style='text-align: left; font-weight:bold;'>Nasreldin M. Mahmoud<sup>1<\/sup>,*<\/p><div style='direction: ltr; text-align: left; font-size:12px; line-height:1.5;'><p><sup>1<\/sup> Mechanical Engineering Department, Faculty of Engineering, University of Sinnar, Sinnar, Sudan<\/p><p>*Corresponding author. Mechanical Engineering Department, Faculty of Engineering, University of Sinnar, Sinnar, Sudan<\/p><p>E-mail address: nasrmohamed53@hotmail.com<\/p><\/div><p style='text-align:left;'><strong>DOI:<\/strong> <a href='https:\/\/doi.org\/https:\/\/doi.org\/10.53796\/hnsj612\/37' target='_blank' rel='noopener'>https:\/\/doi.org\/10.53796\/hnsj612\/37<\/a><\/p><p style='text-align: left;'><strong>Arabic Scientific Research Identifier:<\/strong> <a href='https:\/\/arsri.org\/10000\/612\/37' target='_blank' rel='noopener'>https:\/\/arsri.org\/10000\/612\/37<\/a><\/p><p style='text-align: left;'><strong>Volume (6) Issue (12). Pages:<\/strong> 549 - 557<\/p><p style='text-align: left;'><strong>Received at:<\/strong> 2025-11-10 | <strong>Accepted at:<\/strong> 2025-11-18 | <strong>Published at:<\/strong> 2025-12-01<\/p><p><a href='\/volume6\/issue12\/6-12-37.pdf' target='_blank' rel='noopener' style='background-color:green;color:white;padding:10px 15px;text-decoration:none;border-radius:5px;'>Download PDF<\/a><\/p>\r\n<style>\r\n.hnsj-cite-btn{\r\n  display:inline-flex; gap:8px; align-items:center;\r\n  padding:10px 14px; border-radius:10px;\r\n  border:1px solid #0b5ed7; background:#0b5ed7; color:#fff;\r\n  cursor:pointer; font-weight:700;\r\n}\r\n.hnsj-cite-btn:hover{background:#084bb0;border-color:#084bb0}\r\n.hnsj-cite-note{display:block;margin-top:6px;font-size:13px;opacity:.85}\r\n\r\n.hnsj-modal-backdrop{\r\n  position:fixed; inset:0; background:rgba(0,0,0,.55);\r\n  display:none; z-index:99998;\r\n}\r\n.hnsj-modal{\r\n  position:fixed; left:50%; top:50%; transform:translate(-50%,-50%);\r\n  width:min(760px,94vw); background:#fff; border-radius:14px;\r\n  box-shadow:0 12px 35px rgba(0,0,0,.28);\r\n  display:none; z-index:99999; overflow:hidden;\r\n  border:1px solid rgba(0,0,0,.08);\r\n}\r\n\r\n.hnsj-modal-header{\r\n  display:flex; justify-content:space-between; align-items:center;\r\n  padding:14px 16px; border-bottom:1px solid #eee; background:#f8fafc;\r\n}\r\n.hnsj-modal-title{font-size:16px;font-weight:800;color:#111827}\r\n.hnsj-modal-close{\r\n  border:1px solid #d1d5db; background:#fff;\r\n  width:34px; height:34px; border-radius:10px;\r\n  font-size:18px; cursor:pointer; line-height:0; color:#111827;\r\n}\r\n.hnsj-modal-close:hover{background:#f3f4f6}\r\n\r\n.hnsj-tabs{\r\n  display:flex; gap:10px; padding:10px 16px;\r\n  border-bottom:1px solid #f0f0f0; justify-content:flex-end;\r\n}\r\n.hnsj-tab{\r\n  padding:10px 14px; border-radius:10px;\r\n  border:1px solid #cfcfcf; background:#f3f4f6;\r\n  cursor:pointer; font-weight:800; color:#111827;\r\n}\r\n.hnsj-tab:hover{background:#e5e7eb;border-color:#9ca3af}\r\n.hnsj-tab.active{\r\n  background:#0b5ed7; border-color:#0b5ed7; color:#fff;\r\n  box-shadow:0 2px 10px rgba(11,94,215,.18);\r\n}\r\n\r\n.hnsj-modal-body{padding:14px 16px}\r\n.hnsj-row{\r\n  display:flex; gap:10px; flex-wrap:wrap; align-items:center;\r\n  margin-bottom:10px; justify-content:flex-end;\r\n}\r\n.hnsj-select{\r\n  padding:10px 12px; border-radius:10px;\r\n  border:1px solid #cfcfcf; min-width:220px;\r\n  background:#fff; color:#111827; font-weight:700;\r\n}\r\n.hnsj-copy{\r\n  padding:10px 14px; border-radius:10px;\r\n  border:1px solid #0b5ed7; background:#0b5ed7; color:#fff;\r\n  cursor:pointer; font-weight:800;\r\n}\r\n.hnsj-copy:hover{background:#084bb0;border-color:#084bb0}\r\n\r\n.hnsj-textarea{\r\n  width:100%; min-height:130px; padding:12px;\r\n  border-radius:12px; border:1px solid #cfcfcf;\r\n  line-height:1.7; resize:vertical; color:#111827; background:#fff;\r\n}\r\n.hnsj-actions{display:flex; justify-content:space-between; align-items:center; margin-top:10px; gap:10px; flex-wrap:wrap;}\r\n.hnsj-dl{\r\n  padding:10px 14px;\r\n  border-radius:10px;\r\n  border:1px solid #0b5ed7;\r\n  background:#0b5ed7;\r\n  color:#fff;\r\n  cursor:pointer;\r\n  font-weight:800;\r\n}\r\n.hnsj-dl:hover{background:#084bb0;border-color:#084bb0}\r\n\/* Force the citation modal UI to be independent from site RTL\/LTR *\/\r\n.hnsj-modal,\r\n.hnsj-modal *{\r\n  direction: ltr;\r\n  text-align: left;\r\n}\r\n\r\n\/* Keep the header title readable *\/\r\n.hnsj-modal-header{\r\n  direction: ltr;\r\n}\r\n<\/style>\r\n\r\n<script>\r\n(function(){\r\n  function slugifyFileName(s){\r\n    return (s || 'citation')\r\n      .toString()\r\n      .trim()\r\n      .replace(\/^https?:\\\/\\\/\/i,'')\r\n      .replace(\/[^a-z0-9]+\/gi,'-')\r\n      .replace(\/-+\/g,'-')\r\n      .replace(\/^-|-$\/g,'')\r\n      .toLowerCase();\r\n  }\r\n\r\n  function downloadTextFile(filename, content, mime){\r\n    var blob = new Blob([content], { type: mime || 'text\/plain;charset=utf-8' });\r\n    var url = URL.createObjectURL(blob);\r\n    var a = document.createElement('a');\r\n    a.href = url;\r\n    a.download = filename;\r\n    document.body.appendChild(a);\r\n    a.click();\r\n    a.remove();\r\n    setTimeout(function(){ URL.revokeObjectURL(url); }, 500);\r\n  }\r\n\r\n  function splitAuthors(str){\r\n    if(!str) return [];\r\n    return str\r\n      .split(\/,|\u061b|\u060c|;|\\n\/g)\r\n      .map(s => s.trim())\r\n      .filter(Boolean);\r\n  }\r\n\r\n  function buildRIS(m, langKey){\r\n    const title   = (langKey === 'ar') ? 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M. (2025). Numerical Study of Flame Structure and Precursors Formation of propane\u2013H2 Mixtures. Humanities &amp; Natural Sciences Journal, 6(12). https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;,&quot;Chicago&quot;:&quot;Mahmoud Nasreldin M.. 2025. \\&quot;Numerical Study of Flame Structure and Precursors Formation of propane\u2013H2 Mixtures.\\&quot; Humanities &amp; Natural Sciences Journal 6, no. 12. https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;,&quot;Harvard&quot;:&quot;Mahmoud N. M. 2025. Numerical Study of Flame Structure and Precursors Formation of propane\u2013H2 Mixtures. Humanities &amp; Natural Sciences Journal. [Internet] 2025-12-01. [Cited 2026-04-24]. 6(12). Available at: https:\\\/\\\/www.hnjournal.net\\\/6-12-37\\\/. https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;,&quot;Vancouver&quot;:&quot;Mahmoud N. M. Numerical Study of Flame Structure and Precursors Formation of propane\u2013H2 Mixtures. Humanities &amp; Natural Sciences Journal. [Internet]. 2025-12-01; 6(12). Available from: https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;,&quot;IEEE&quot;:&quot;Mahmoud N. M, \\&quot;Numerical Study of Flame Structure and Precursors Formation of propane\u2013H2 Mixtures,\\&quot; Humanities &amp; Natural Sciences Journal, vol. 6, no. 12, 2025. https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;,&quot;MLA&quot;:&quot;Mahmoud Nasreldin M.. \\&quot;Numerical Study of Flame Structure and Precursors Formation of propane\u2013H2 Mixtures.\\&quot; Humanities &amp; Natural Sciences Journal, vol. 6, no. 12, 2025-12-01, https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;}' data-cit-ar='{&quot;APA&quot;:&quot;Mahmoud N. M. (2025). \u062f\u0631\u0627\u0633\u0629 \u0639\u062f\u062f\u064a\u0629 \u0644\u0628\u0646\u064a\u0629 \u0627\u0644\u0644\u0647\u0628 \u0648\u062a\u0643\u0648\u0651\u0646 \u0627\u0644\u0645\u0631\u0643\u0628\u0627\u062a \u0627\u0644\u0623\u0648\u0651\u0644\u064a\u0629 \u0641\u064a \u062e\u0644\u064a\u0637 \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u2013\u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646. \u0645\u062c\u0644\u0629 \u0627\u0644\u0639\u0644\u0648\u0645 \u0627\u0644\u0627\u0646\u0633\u0627\u0646\u064a\u0629 \u0648\u0627\u0644\u0637\u0628\u064a\u0639\u064a\u0629\u060c 6(12). https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;,&quot;Chicago&quot;:&quot;Mahmoud Nasreldin M.. 2025. \u00ab\u062f\u0631\u0627\u0633\u0629 \u0639\u062f\u062f\u064a\u0629 \u0644\u0628\u0646\u064a\u0629 \u0627\u0644\u0644\u0647\u0628 \u0648\u062a\u0643\u0648\u0651\u0646 \u0627\u0644\u0645\u0631\u0643\u0628\u0627\u062a \u0627\u0644\u0623\u0648\u0651\u0644\u064a\u0629 \u0641\u064a \u062e\u0644\u064a\u0637 \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u2013\u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646\u00bb. \u0645\u062c\u0644\u0629 \u0627\u0644\u0639\u0644\u0648\u0645 \u0627\u0644\u0627\u0646\u0633\u0627\u0646\u064a\u0629 \u0648\u0627\u0644\u0637\u0628\u064a\u0639\u064a\u0629\u060c 6(12). https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;,&quot;Harvard&quot;:&quot;Mahmoud N. M. \u062f\u0631\u0627\u0633\u0629 \u0639\u062f\u062f\u064a\u0629 \u0644\u0628\u0646\u064a\u0629 \u0627\u0644\u0644\u0647\u0628 \u0648\u062a\u0643\u0648\u0651\u0646 \u0627\u0644\u0645\u0631\u0643\u0628\u0627\u062a \u0627\u0644\u0623\u0648\u0651\u0644\u064a\u0629 \u0641\u064a \u062e\u0644\u064a\u0637 \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u2013\u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646. \u0645\u062c\u0644\u0629 \u0627\u0644\u0639\u0644\u0648\u0645 \u0627\u0644\u0627\u0646\u0633\u0627\u0646\u064a\u0629 \u0648\u0627\u0644\u0637\u0628\u064a\u0639\u064a\u0629. [\u0627\u0646\u062a\u0631\u0646\u062a] 2025-12-01. [\u062a\u0627\u0631\u064a\u062e \u0627\u0644\u0648\u0635\u0648\u0644 2026-04-24]. 6(12). \u0645\u062a\u0627\u062d \u0639\u0644\u0649: https:\\\/\\\/www.hnjournal.net\\\/6-12-37\\\/. https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;,&quot;Vancouver&quot;:&quot;Mahmoud N. M. \u062f\u0631\u0627\u0633\u0629 \u0639\u062f\u062f\u064a\u0629 \u0644\u0628\u0646\u064a\u0629 \u0627\u0644\u0644\u0647\u0628 \u0648\u062a\u0643\u0648\u0651\u0646 \u0627\u0644\u0645\u0631\u0643\u0628\u0627\u062a \u0627\u0644\u0623\u0648\u0651\u0644\u064a\u0629 \u0641\u064a \u062e\u0644\u064a\u0637 \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u2013\u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646. \u0645\u062c\u0644\u0629 \u0627\u0644\u0639\u0644\u0648\u0645 \u0627\u0644\u0627\u0646\u0633\u0627\u0646\u064a\u0629 \u0648\u0627\u0644\u0637\u0628\u064a\u0639\u064a\u0629. [\u0627\u0646\u062a\u0631\u0646\u062a]. 2025-12-01\u061b 6(12). \u0645\u062a\u0627\u062d \u0645\u0646: https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;,&quot;IEEE&quot;:&quot;Mahmoud N. M. \u00ab\u062f\u0631\u0627\u0633\u0629 \u0639\u062f\u062f\u064a\u0629 \u0644\u0628\u0646\u064a\u0629 \u0627\u0644\u0644\u0647\u0628 \u0648\u062a\u0643\u0648\u0651\u0646 \u0627\u0644\u0645\u0631\u0643\u0628\u0627\u062a \u0627\u0644\u0623\u0648\u0651\u0644\u064a\u0629 \u0641\u064a \u062e\u0644\u064a\u0637 \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u2013\u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646\u00bb. \u0645\u062c\u0644\u0629 \u0627\u0644\u0639\u0644\u0648\u0645 \u0627\u0644\u0627\u0646\u0633\u0627\u0646\u064a\u0629 \u0648\u0627\u0644\u0637\u0628\u064a\u0639\u064a\u0629\u060c \u0645 6\u060c \u0639 12\u060c 2025. https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;,&quot;MLA&quot;:&quot;Mahmoud Nasreldin M.. \u00ab\u062f\u0631\u0627\u0633\u0629 \u0639\u062f\u062f\u064a\u0629 \u0644\u0628\u0646\u064a\u0629 \u0627\u0644\u0644\u0647\u0628 \u0648\u062a\u0643\u0648\u0651\u0646 \u0627\u0644\u0645\u0631\u0643\u0628\u0627\u062a \u0627\u0644\u0623\u0648\u0651\u0644\u064a\u0629 \u0641\u064a \u062e\u0644\u064a\u0637 \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u2013\u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646\u00bb. \u0645\u062c\u0644\u0629 \u0627\u0644\u0639\u0644\u0648\u0645 \u0627\u0644\u0627\u0646\u0633\u0627\u0646\u064a\u0629 \u0648\u0627\u0644\u0637\u0628\u064a\u0639\u064a\u0629\u060c \u0645 6\u060c \u0639 12\u060c 2025-12-01\u060c https:\\\/\\\/doi.org\\\/10.53796\\\/hnsj612\\\/37&quot;}'>\r\n    <div class='hnsj-modal-header'>\r\n    <div class='hnsj-modal-title'>Cite \/ \u0627\u0644\u0627\u0633\u062a\u0634\u0647\u0627\u062f<\/div>\r\n    <button class='hnsj-modal-close' type='button' data-hnsj-close aria-label='Close'>\u00d7<\/button>\r\n    <\/div>\r\n\r\n    <div class='hnsj-tabs'>\r\n      <button type='button' class='hnsj-tab active' data-lang='en'>English (Roman)<\/button>\r\n      <button type='button' class='hnsj-tab' data-lang='ar'>\u0627\u0644\u0639\u0631\u0628\u064a\u0629<\/button>\r\n    <\/div>\r\n\r\n    <div class='hnsj-modal-body'>\r\n      <div class='hnsj-row'>\r\n        <button type='button' class='hnsj-copy' data-hnsj-copy>Copy<\/button>\r\n        <select class='hnsj-select' data-hnsj-style><\/select>\r\n        <\/div>\r\n\r\n      <textarea class='hnsj-textarea' data-hnsj-box readonly><\/textarea>\r\n\r\n      <div class='hnsj-actions'>\r\n        <div style='display:flex; gap:10px; flex-wrap:wrap;'>\r\n          <button type='button' class='hnsj-dl' data-hnsj-dl='ris'>Download RIS<\/button>\r\n          <button type='button' class='hnsj-dl' data-hnsj-dl='bib'>Download BibTeX<\/button>\r\n        <\/div>\r\n      <\/div>\r\n    <\/div>\r\n  <\/div>\r\n<\/div>\r\n<p style='text-align:justify; direction:ltr;'><strong>Abstract:<\/strong> Combustion of propane-hydrogen mixtures represents a promising strategy for reducing soot and polycyclic aromatic hydrocarbon (PAH) emissions while taking advantage of existing fuel infrastructure. This study numerically investigates the effects of H2 addition (10\u201330\u202f% by mole) on the flame structure and formation of key aromatic precursors in a co\u2011flow propane diffusion flame using ANSYS Fluent with a detailed chemical mechanism. Fictitious inert specie (XH\u2082) was used to isolate chemical effects. The numerical Results indicated that the addition of H2 reduces the peak flame temperature by up to 19\u202fK, primarily due to its higher specific heat capacity and the upstream shift of the reaction zone. While the chemical effect of H2 promotes flame temperature due to increased free radical concentrations. In addition, the addition of H2 accelerates oxidation kinetics and inhibits the formation of benzene (A1) and its precursors, acetylene (C\u2082H\u2082) and propargyl (C\u2083H\u2083). The chemical inhibition of A1 becomes more pronounced with increasing H2 addition ratios. These results provide key insights into the chemical role of H2 in the propane flame, and support the improvement of propane-hydrogen mixtures for cleaner combustion systems.<\/p><p style='text-align:left; direction:ltr;'><strong>Keywords: <\/strong> Hydrogen; Propane; Coflow diffusion flame; Aromatic formation.<\/p><p style='text-align:justify; direction:rtl;'><strong>\u0627\u0644\u0645\u0633\u062a\u062e\u0644\u0635: <\/strong> \u064a\u0645\u062b\u0651\u0644 \u0627\u062d\u062a\u0631\u0627\u0642 \u062e\u0644\u0637\u0627\u062a \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u2013\u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646 \u0627\u0633\u062a\u0631\u0627\u062a\u064a\u062c\u064a\u0629 \u0648\u0627\u0639\u062f\u0629 \u0644\u0644\u062d\u062f \u0645\u0646 \u0627\u0646\u0628\u0639\u0627\u062b\u0627\u062a \u0627\u0644\u0633\u062e\u0627\u0645 \u0648\u0627\u0644\u0647\u064a\u062f\u0631\u0648\u0643\u0631\u0628\u0648\u0646\u0627\u062a \u0627\u0644\u0639\u0637\u0631\u064a\u0629 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\u0627\u0644\u062a\u0623\u062b\u064a\u0631 \u0627\u0644\u0643\u064a\u0645\u064a\u0627\u0626\u064a \u0644\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646 \u0641\u064a \u062a\u0639\u0632\u064a\u0632 \u062f\u0631\u062c\u0629 \u062d\u0631\u0627\u0631\u0629 \u0627\u0644\u0644\u0647\u0628 \u0646\u062a\u064a\u062c\u0629 \u0632\u064a\u0627\u062f\u0629 \u062a\u0631\u0627\u0643\u064a\u0632 \u0627\u0644\u062c\u0630\u0648\u0631 \u0627\u0644\u062d\u0631\u0629. \u0625\u0636\u0627\u0641\u0629 \u0625\u0644\u0649 \u0630\u0644\u0643\u060c \u062a\u0639\u0645\u0644 \u0625\u0636\u0627\u0641\u0629 \u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646 \u0639\u0644\u0649 \u062a\u0633\u0631\u064a\u0639 \u062d\u0631\u0643\u064a\u0627\u062a \u0627\u0644\u0623\u0643\u0633\u062f\u0629 \u0648\u062a\u062b\u0628\u064a\u0637 \u062a\u0643\u0648\u0651\u0646 \u0627\u0644\u0628\u0646\u0632\u064a\u0646 (A1) \u0648\u0633\u0644\u0627\u0626\u0641\u0647\u060c \u0648\u0647\u0645\u0627 \u0627\u0644\u0623\u0633\u064a\u062a\u064a\u0644\u064a\u0646 (C\u2082H\u2082) \u0648\u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0631\u062c\u064a\u0644 (C\u2083H\u2083). \u0648\u064a\u0632\u062f\u0627\u062f \u062a\u0623\u062b\u064a\u0631 \u0627\u0644\u062a\u062b\u0628\u064a\u0637 \u0627\u0644\u0643\u064a\u0645\u064a\u0627\u0626\u064a \u0644\u062a\u0643\u0648\u0651\u0646 \u0627\u0644\u0628\u0646\u0632\u064a\u0646 (A1) \u0628\u0627\u0632\u062f\u064a\u0627\u062f \u0646\u0633\u0628\u0629 \u0625\u0636\u0627\u0641\u0629 \u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646. \u062a\u0648\u0641\u0631 \u0647\u0630\u0647 \u0627\u0644\u0646\u062a\u0627\u0626\u062c \u0641\u0647\u0645\u0627\u064b \u0623\u0633\u0627\u0633\u064a\u0627\u064b \u0644\u0644\u062f\u0648\u0631 \u0627\u0644\u0643\u064a\u0645\u064a\u0627\u0626\u064a \u0644\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646 \u0641\u064a \u0644\u0647\u0628 \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u060c \u0648\u062a\u062f\u0639\u0645 \u062a\u0637\u0648\u064a\u0631 \u062e\u0644\u0637\u0627\u062a \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u2013\u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646 \u0645\u0646 \u0623\u062c\u0644 \u0623\u0646\u0638\u0645\u0629 \u0627\u062d\u062a\u0631\u0627\u0642 \u0623\u0646\u0638\u0641.<\/p><p style='text-align:right;'><strong>\u0627\u0644\u0643\u0644\u0645\u0627\u062a \u0627\u0644\u0645\u0641\u062a\u0627\u062d\u064a\u0629: <\/strong> \u0627\u0644\u0647\u064a\u062f\u0631\u0648\u062c\u064a\u0646\u061b \u0627\u0644\u0628\u0631\u0648\u0628\u0627\u0646\u061b \u0644\u0647\u0628 \u0627\u0644\u0627\u0646\u062a\u0634\u0627\u0631 \u0630\u0648 \u0627\u0644\u062c\u0631\u064a\u0627\u0646 \u0627\u0644\u0645\u0634\u062a\u0631\u0643\u061b \u062a\u0643\u0648\u0651\u064f\u0646 \u0627\u0644\u0645\u0631\u0643\u0628\u0627\u062a \u0627\u0644\u0639\u0637\u0631\u064a\u0629.<\/p><\/div>\n\n\n<h1 dir=\"ltr\" style=\"text-align: justify;\">Introduction<\/h1>\n<p dir=\"ltr\" style=\"text-align: justify;\">The global energy landscape is undergoing a significant transformation driven by the urgent need to reduce harmful emissions and improve air quality [1]. The combustion of conventional hydrocarbon fuels remains a primary source of energy. In the meanwhile, it is a major contributor to carbon dioxide (CO\u2082) and pollutant emissions, including soot and polycyclic aromatic hydrocarbons (PAHs) [2, 3]. The negative impacts of PAHs emissions on human health and the environments necessitate the development of advanced clean combustion technologies[4-7]. By using clean carbon-free nature fuel and thus reducing aromatic content is an effective approach to inhibit soot and PAHs formation in both internal combustion engines and industrial boilers [8].<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">hydrogen (H\u2082) has emerged as a pivotal energy carrier due to its high energy content per mass and its carbon-free nature, resulting in zero CO\u2082 emissions from combustion [9]. However, challenges related to hydrogen storage, safety, and flame stability have motivated the strategy of blending hydrogen with existing hydrocarbon fuels. This approach leverages hydrogen&#8217;s advantages, such as its high laminar flame speed and wide flammability limits, to enhance combustion efficiency and reduce carbon-based emissions, serving as a practical transition towards a sustainable hydrogen economy [10].<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">Propane (C\u2083H\u2088), a primary component of liquefied petroleum gas (LPG), is a widely used fuel in domestic, industrial, and transportation sectors. Its established infrastructure and relatively clean combustion profile make it an excellent candidate for hybridization with hydrogen [11]. The addition of hydrogen to propane can fundamentally alter the flame structure, temperature distribution, and chemical reaction pathways. Notably, the impact of H\u2082 on soot and PAH precursors is complex and highly dependent on the base fuel [12-18]. For instance, studies on methane and ethylene flames have shown that H\u2082 addition can sometimes promote soot formation by enhancing the concentrations of key precursors like acetylene (C\u2082H\u2082) and benzene (A1) [19, 20]. In contrast, numerical studies on n-dodecane flames have indicated that H\u2082 can suppress the formation of A1 and pyrene (A4), leading to reduced soot formation [21]. This fuel-specific behavior underscores the necessity of dedicated studies for propane-hydrogen mixtures.<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">Despite that numerous studies have focused on small C<sub>1<\/sub>-C<sub>2<\/sub> hydrocarbon fuel flames, a detailed investigation into the effect of H\u2082 addition on the formation of aromatic species in propane diffusion flames remains less explored. Furthermore, the fuel inlet boundary state, including composition and velocity, plays a critical role in determining the flame&#8217;s structure and the subsequent formation of pollutants [22]. Therefore, this work presents a numerical study of a co-flow diffusion flame to systematically investigate the effects of hydrogen blending on the flame structure and the formation of PAH precursors in propane flames. The result is expected to build accurate kinetic understanding to aid in the optimization of practical combustion systems utilizing propane-hydrogen blends.<\/p>\n<h1 dir=\"ltr\" style=\"text-align: justify;\">Numerical Methodology<\/h1>\n<p dir=\"ltr\" style=\"text-align: justify;\">The numerical simulations in this work were performed using the ANSYS Fluent software package [23]. A detailed chemical mechanism was employed to accurately capture the pyrolysis and oxidation processes [24]. This machoism comprising 533 chemical reactions and 99 species up to A4. 2D-axisymmetric, pressure-based solver was used under steady-state conditions. The governing equations for mass, momentum, energy, and species transport were solved based on based on coupled algorithm. Non-uniform meshes were adopted for simulating co-flow burners which provides a good balance between accuracy and computational cost for this configuration [25-27]. The computational domain was designed to represent a standard co-flow diffusion flame burner as in previous work [25-27] , with a fuel tube diameter of 1.08 cm and a co-flow air diameter of 6 cm. Non-uniform meshes were adopted for simulating co-flow burners which provides a good balance between accuracy and computational cost for this configuration [25-27]. In detail, non-uniform grid with approximately 6000 cells was generated, with significant mesh refinement in the flame zone to resolve high gradient regions accurately. Grid independence was confirmed by comparing the temperature and major species profiles with a finer grid of 9000 cells, showing negligible differences (&lt;1% in peak temperature). A mixture of propane and hydrogen (with H\u2082 mole fractions of 10%, 20%, and 30%) was introduced at a temperature of 298 K. The inlet velocity was assumed as a parabolic velocity profile for the fuel stream while a uniform profile of 6.2 cm\/s was specified for the air Co-flow Inlet The simulation was considered converged when the residuals for all variables fell below 10\u207b\u2076.<\/p>\n<h1 dir=\"ltr\" style=\"text-align: justify;\">Results and Discussion<\/h1>\n<p dir=\"ltr\" style=\"text-align: justify;\">The numerical results provide detailed insight into how H<sub>2<\/sub> addition alters the fundamental characteristics of a propane co-flow diffusion flame, with significant implications for its chemical effects on precursor and aromatic species formation.<\/p>\n<h2 dir=\"ltr\" style=\"text-align: justify;\">3.1 Flame Structure and Temperature Distribution with H<sub>2<\/sub> addition\u00a0<\/h2>\n<p dir=\"ltr\" style=\"text-align: justify;\">As depicted in Figures 1 and 2, the addition of 30% H<sub>2<\/sub> decrease the peak flame temperature by about 19K compared to neat propane flame as clear in Fig.1. The lower of flame temperature with H<sub>2<\/sub> addition is consist of the recent study of Chen and Scribano [28]. This decrease in temperature resulting from the addition of <a id=\"post-15272-_Hlk215399882\"><\/a>H<sub>2 <\/sub>can be attributed to its thermal effect. In particular, hydrogen has a higher specific heat capacity than propane[29], which requires more energy to heat the H<sub>2 <\/sub>-propane mixture, meaning more combustion energy is used to heat the fuel mixture itself, thus reducing the energy needed to raise the flame temperature. Furthermore, the higher laminar burning velocity of hydrogen causes the reaction zone to shift upstream towards the burner as clear in Fig.1 and 2. This shift of the reaction zone. This can enhance heat transfer from the flame and increase heat loss to the surroundings[28]. Furthermore, the higher laminar burning velocity of H<sub>2<\/sub> causes the reaction zone to shift upstream towards the burner nozzle, as shown in Figures 1 and 2, resulting in a narrowing of the high-temperature zone and an increase in temperature gradients. This change in the location and shape of the reaction zone also contributes to a decrease in flame temperature, which enhances heat transfer from the flame and increases heat loss to the surrounding environment [28].<\/p>\n<table dir=\"ltr\">\n<tbody>\n<tr>\n<td>\n<p><img loading=\"lazy\" decoding=\"async\" width=\"412\" height=\"507\" class=\"wp-image-15274\" src=\"http:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-1.png\" srcset=\"https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-1.png 412w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-1-244x300.png 244w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-1-10x12.png 10w\" sizes=\"auto, (max-width: 412px) 100vw, 412px\" \/><\/p>\n<\/td>\n<td>\n<p><img loading=\"lazy\" decoding=\"async\" width=\"116\" height=\"319\" class=\"wp-image-15275\" src=\"http:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-2.png\" srcset=\"https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-2.png 116w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-2-109x300.png 109w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-2-4x12.png 4w\" sizes=\"auto, (max-width: 116px) 100vw, 116px\" \/><\/p>\n<\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p dir=\"ltr\" style=\"text-align: justify;\">Fig. 1, Temperature distributions for pure propane flame (left) and propane with 30% H<sub>2<\/sub> addition (right)<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">To isolate the chemical effect of H<sub>2<\/sub> from its thermal and dilution effects, we used the approach proposed by Liu et al. [30] by introducing fictitious specie of XH<sub>2<\/sub>. Here assumed that this fictitious species has the same physical properties (e.g., specific heat, diffusion coefficients, gas-phase radiation coefficients, etc.) as real H<sub>2<\/sub>, but is not allowed to participate in any chemical reactions. In this way, the differences in results between H<sub>2<\/sub> addition and XH<sub>2<\/sub> can be attributed entirely to the chemical effects of H<sub>2<\/sub>. As can be seen in Figure 3, the addition of H<sub>2<\/sub> results in a slight increase in the maximum flame temperature compared to the case of adding XH<sub>2<\/sub>. For instance, the maximum flame temperature increases by 5 k with the addition of XH<sub>2<\/sub> compared to that of 30% H<sub>2<\/sub> addition. This increase of temperature attributed to chemical effect of H<sub>2<\/sub>. In particular, hydrogen addition increasing the concentration of active radicals (H, O, and OH) within the flame zone. These radicals accelerate the oxidation kinetics of intermediate hydrocarbon species derived from propane, leading to a more intense and localized release of energy [10, 31].<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\"><img loading=\"lazy\" decoding=\"async\" width=\"627\" height=\"500\" class=\"wp-image-15276\" src=\"http:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-3.png\" srcset=\"https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-3.png 627w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-3-300x239.png 300w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-3-15x12.png 15w\" sizes=\"auto, (max-width: 627px) 100vw, 627px\" \/><\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">Fig. 2. Compared of temperature profiles along centerline for pure propane flame with different ration of H<sub>2<\/sub>\/XH<sub>2<\/sub> addition<\/p>\n<h2 dir=\"ltr\" style=\"text-align: justify;\">3.2 <a id=\"post-15272-_Hlk215407018\"><\/a>Formation of benzene with H<sub>2<\/sub> addition\u00a0<\/h2>\n<p dir=\"ltr\" style=\"text-align: justify;\">The formation of PAHs and soot is critically governed by the chemical pathways leading to the first aromatic ring, primarily benzene (A1) [26, 27, 32]. The results presented in Figures 3 demonstrates a clear suppression of the maximum mole fraction of A1 with 30% H\u2082 blending. This suppression can be explained by the total effect of H\u2082. Moreover, it is shown in Fig. 3 that the peaks of A1 mass fraction profiles shift slightly towards the burner rim with the addition of 30%H<sub>2<\/sub> as compared to neat propane, which are consistent with the change of temperature and reactions zone shown in Fig. 1.<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\"><img loading=\"lazy\" decoding=\"async\" width=\"437\" height=\"514\" class=\"wp-image-15277\" src=\"http:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-4.png\" srcset=\"https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-4.png 437w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-4-255x300.png 255w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-4-10x12.png 10w\" sizes=\"auto, (max-width: 437px) 100vw, 437px\" \/><\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">Fig. 3, A1 distributions for pure propane flame (left) and propane with 30% H<sub>2<\/sub> addition (right)<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">The use of fictitious XH\u2082 species is crucial in analyzing the underlying mechanisms of the chemical effect of H<sub>2<\/sub>. The comparison shows that while the addition of fictitious XH\u2082 (simulating only the thermal and dilution effects) leads to a decrease in A1, the inhibition is more pronounced with the H\u2082 addition. Furthure more, Fig.4 shows that as the H<sub>2<\/sub>\/XH<sub>2<\/sub> ratio increases, the differences in results of A1 mole fraction between H<sub>2<\/sub> and xH<sub>2<\/sub> become more pronounced, indicating that the chemical effect increases with the addition of H<sub>2<\/sub>.<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\"><img loading=\"lazy\" decoding=\"async\" width=\"633\" height=\"499\" class=\"wp-image-15278\" src=\"http:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-5.png\" srcset=\"https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-5.png 633w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-5-300x236.png 300w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-5-15x12.png 15w\" sizes=\"auto, (max-width: 633px) 100vw, 633px\" \/><\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">Fig. 4. Compared of A1 mole fraction along centerline for pure propane flame with different ratio of H<sub>2<\/sub>\/XH<sub>2<\/sub> addition<\/p>\n<h2 dir=\"ltr\" style=\"text-align: justify;\">2.3 Formation of Small Precursors with H<sub>2<\/sub> addition.<\/h2>\n<p dir=\"ltr\" style=\"text-align: justify;\">Acetylene (C\u2082H\u2082) and propargyl (C\u2083H\u2083) species are crucial for understanding the observed trends in A1. While C\u2082H\u2082 is a fundamental building block for PAH surface growth via the Hydrogen-Abstraction-C\u2082H\u2082-Addition (HACA) mechanism [27, 33, 34]. The profile of C\u2082H\u2082 is presented in Fig. 5 for comparisons among the neat propane, H<sub>2<\/sub> addition, and XH<sub>2<\/sub> addition flames. As mentioned before, the differences between the latter two flames reveal the chemical effect of H<sub>2<\/sub>. It can be seen that, although the flame temperature increases with the chemical effect of H<sub>2<\/sub>, the chemical effect of H<sub>2<\/sub> further decreases the production of C<sub>2<\/sub>H<sub>2<\/sub>, which is consistent with the overall suppression of A1. This suggests that H\u2082 addition enhances the oxidative breakdown of propane fragments, reducing the pool of C\u2082 species available for aromatization and growth [35].<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\"><img loading=\"lazy\" decoding=\"async\" width=\"649\" height=\"480\" class=\"wp-image-15279\" src=\"http:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-6.png\" srcset=\"https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-6.png 649w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-6-300x222.png 300w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-6-16x12.png 16w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-6-80x60.png 80w\" sizes=\"auto, (max-width: 649px) 100vw, 649px\" \/><\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">Fig. 5. Compared of C<sub>2<\/sub>H<sub>2<\/sub> mole fraction along centerline for neat propane flame with different ration of H<sub>2<\/sub>\/XH<sub>2<\/sub> addition<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">The concentration of C\u2083H\u2083, a direct precursor to benzene also presented in Fig.6 as C\u2083H\u2083 radicals, a key precursor to A1 via the C\u2083H\u2083 + C\u2083H\u2083 reaction [27, 34-36]. Similarly, C\u2083H\u2083 is also suppressed as seen in Fig.6. This can be addressed from the differences between the results of XH<sub>2<\/sub> and H<sub>2<\/sub> flames. This inhabitation of C\u2083H\u2083 indicates that the chemical effect of hydrogen in propane flames is predominant, actively suppressing the key molecular pathways leading to the inception of soot precursors, rather than merely acting as a diluent. Furthermore, this finding aligns with the observations of Akram et al. [21] in n-dodecane flames but contrasts with studies on methane flames [5], highlighting the fuel-specific nature of H\u2082&#8217;s chemical effect.<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">Figures 3 and 4 show a clear reduction in the maximum mole fraction of A1 with 30% H\u2082 blending. This suppression can be explained by the chemical interaction of H\u2082 within the fuel stream. The increased H-atom concentration promotes the hydrogenation of small hydrocarbon radicals, potentially steering the chemical pathways away from the recombination reactions that form the first aromatic ring. For instance, propargyl (C\u2083H\u2083) radicals, a key precursor to benzene via the C\u2083H\u2083 + C\u2083H\u2083 reaction, can be scavenged by H atoms to form allene or propyne, thereby inhibiting the benzene formation route [13]. This finding aligns with the observations of Akram et al. [7] in n-dodecane flames but contrasts with studies on methane flames [19], highlighting the fuel-specific nature of the chemical role of H\u2082 .<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\"><img loading=\"lazy\" decoding=\"async\" width=\"647\" height=\"494\" class=\"wp-image-15280\" src=\"http:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-7.png\" srcset=\"https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-7.png 647w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-7-300x229.png 300w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-7-16x12.png 16w, https:\/\/www.hnjournal.net\/wp-content\/uploads\/2025\/12\/word-image-15272-7-80x60.png 80w\" sizes=\"auto, (max-width: 647px) 100vw, 647px\" \/><\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">Fig. 6. Compared of C<sub>3<\/sub>H<sub>3<\/sub> mole fraction along centerline for pure propane flame with different ration of H<sub>2<\/sub>\/XH<sub>2<\/sub> addition<\/p>\n<h1 dir=\"ltr\" style=\"text-align: justify;\">Concluding Remarks<\/h1>\n<p dir=\"ltr\" style=\"text-align: justify;\">This numerical study elucidates the dual thermal\/dilution and chemical effects of H<sub>2<\/sub> addition on propane coflow diffusion flames. The results showed that the H<sub>2<\/sub> addition lowers the peak flame temperature and narrows the high\u2011temperature zone due to its thermal properties and increased laminar burning velocity. More importantly, the chemical effect of H<sub>2<\/sub> enhance the flame temperature due to enhances of radial species. In addition, the chemical effect of H<sub>2<\/sub> suppresses the formation of A1 and its critical precursors (i.e. C\u2082H\u2082 and C\u2083H\u2083). This suppression is attributed to H<sub>2<\/sub> \u2011driven enhancement of radical pools, which promotes oxidative breakdown of propane fragments and inhibits reactions routes toward aromatic ring formation. The observed behavior contrasts with the results in previous studies of methane flames, highlighting the chemical role of hydrogen addition with different fuels. The results of current work provide a kinetic basis for designing cleaner combustion systems using these mixtures.<\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\"><strong>References<\/strong><\/p>\n<p dir=\"ltr\" style=\"text-align: justify;\">[1] Giurcan, V.<em>, et al.<\/em>, The impact of H2-enrichment on flame structure and combustion characteristic properties of premixed hydrocarbon-air flames<em>, Fuel<\/em>, <em>376<\/em>. 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The combustion of conventional hydrocarbon fuels [&hellip;]<\/p>\n","protected":false},"author":2,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"om_disable_all_campaigns":false,"_monsterinsights_skip_tracking":false,"_monsterinsights_sitenote_active":false,"_monsterinsights_sitenote_note":"","_monsterinsights_sitenote_category":0,"_joinchat":[],"footnotes":""},"class_list":["post-15272","page","type-page","status-publish","hentry"],"_links":{"self":[{"href":"https:\/\/www.hnjournal.net\/ar\/wp-json\/wp\/v2\/pages\/15272","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.hnjournal.net\/ar\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/www.hnjournal.net\/ar\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/www.hnjournal.net\/ar\/wp-json\/wp\/v2\/users\/2"}],"replies":[{"embeddable":true,"href":"https:\/\/www.hnjournal.net\/ar\/wp-json\/wp\/v2\/comments?post=15272"}],"version-history":[{"count":1,"href":"https:\/\/www.hnjournal.net\/ar\/wp-json\/wp\/v2\/pages\/15272\/revisions"}],"predecessor-version":[{"id":15281,"href":"https:\/\/www.hnjournal.net\/ar\/wp-json\/wp\/v2\/pages\/15272\/revisions\/15281"}],"wp:attachment":[{"href":"https:\/\/www.hnjournal.net\/ar\/wp-json\/wp\/v2\/media?parent=15272"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}