{"id":71,"date":"2026-03-23T11:17:20","date_gmt":"2026-03-23T15:17:20","guid":{"rendered":"https:\/\/mae.ucf.edu\/TESD\/?page_id=71"},"modified":"2026-08-26T12:53:25","modified_gmt":"2026-08-26T16:53:25","slug":"publications","status":"publish","type":"page","link":"https:\/\/mae.ucf.edu\/TESD\/publications\/","title":{"rendered":"Publications"},"content":{"rendered":"<p><a class=\"XqQF9c\" href=\"https:\/\/scholar.google.com\/citations?user=vAa_j18AAAAJ&amp;hl=en\" target=\"_blank\" rel=\"noopener\"><span class=\"C9DxTc aw5Odc \">Google Scholar Citations<\/span><\/a><\/p>\n<section id=\"h.2b423a2dee1fbf91_85\" class=\"yaqOZd\">\n<div class=\"mYVXT\">\n<div class=\"LS81yb VICjCf j5pSsc db35Fc\" tabindex=\"-1\">\n<div class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd purZT-AhqUyc-II5mzb ZcASvf-AhqUyc-II5mzb pSzOP-AhqUyc-qWD73c Ktthjf-AhqUyc-qWD73c JNdkSc SQVYQc\">\n<div class=\"JNdkSc-SmKAyb LkDMRd\">\n<div class=\"\">\n<div class=\"oKdM2c ZZyype Kzv0Me\">\n<div id=\"h.2b423a2dee1fbf91_88\" class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd jXK9ad D2fZ2 zu5uec OjCsFc dmUFtb wHaque g5GTcb\">\n<div class=\"jXK9ad-SmKAyb\">\n<div class=\"tyJCtd mGzaTb Depvyb baZpAe\">\n<p class=\"zfr3Q CDt4Ke \" dir=\"ltr\"><a class=\"XqQF9c\" href=\"https:\/\/www.researchgate.net\/profile\/Like_Li\" target=\"_blank\" rel=\"noopener\"><span class=\"C9DxTc aw5Odc \">ResearchGate Profile<\/span><\/a><\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"h.2b423a2dee1fbf91_89\" class=\"yaqOZd\">\n<div class=\"IFuOkc\"><\/div>\n<div class=\"mYVXT\">\n<div class=\"LS81yb VICjCf j5pSsc db35Fc\" tabindex=\"-1\">\n<div class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd purZT-AhqUyc-II5mzb ZcASvf-AhqUyc-II5mzb pSzOP-AhqUyc-qWD73c Ktthjf-AhqUyc-qWD73c JNdkSc SQVYQc\">\n<div class=\"JNdkSc-SmKAyb LkDMRd\">\n<div class=\"\">\n<div class=\"oKdM2c ZZyype Kzv0Me\">\n<div id=\"h.2b423a2dee1fbf91_92\" class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd jXK9ad D2fZ2 zu5uec OjCsFc dmUFtb wHaque g5GTcb\">\n<div class=\"jXK9ad-SmKAyb\">\n<div class=\"tyJCtd mGzaTb Depvyb baZpAe\">\n<p class=\"zfr3Q CDt4Ke \" dir=\"ltr\"><span class=\"C9DxTc \">* Corresponding author\u00a0<\/span><\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"h.2b423a2dee1fbf91_93\" class=\"yaqOZd\">\n<div class=\"IFuOkc\"><strong><span class=\"C9DxTc \">Patents<\/span><\/strong><\/div>\n<\/section>\n<section id=\"h.2b423a2dee1fbf91_97\" class=\"yaqOZd\">\n<div class=\"IFuOkc\"><\/div>\n<div class=\"mYVXT\">\n<div class=\"LS81yb VICjCf j5pSsc db35Fc\" tabindex=\"-1\">\n<div class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd purZT-AhqUyc-II5mzb ZcASvf-AhqUyc-II5mzb pSzOP-AhqUyc-qWD73c Ktthjf-AhqUyc-qWD73c JNdkSc SQVYQc\">\n<div class=\"JNdkSc-SmKAyb LkDMRd\">\n<div class=\"\">\n<div class=\"oKdM2c ZZyype Kzv0Me\">\n<div id=\"h.2b423a2dee1fbf91_100\" class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd jXK9ad D2fZ2 zu5uec OjCsFc dmUFtb wHaque g5GTcb\">\n<div class=\"jXK9ad-SmKAyb\">\n<div class=\"tyJCtd mGzaTb Depvyb baZpAe\">\n<p class=\"zfr3Q CDt4Ke \" dir=\"ltr\"><span class=\"C9DxTc \">1. J.F. Klausner , K. Randhir , N. AuYueng , <strong>L. Li<\/strong>, N. Rhodes, A. Barde, R. Mei, D.W. Hahn, \u201c<\/span><a class=\"XqQF9c\" href=\"https:\/\/patents.google.com\/patent\/US10266420B2\/en\" target=\"_blank\" rel=\"noopener\"><span class=\"C9DxTc aw5Odc \">Method for the Generation of Power<\/span><\/a><span class=\"C9DxTc \">\u201d Patent No.: US 10,266,420 B2, (2019).<\/span><\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"h.2b423a2dee1fbf91_101\" class=\"yaqOZd\">\n<div class=\"IFuOkc\"><\/div>\n<div class=\"mYVXT\">\n<div class=\"LS81yb VICjCf j5pSsc db35Fc\" tabindex=\"-1\">\n<div class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd purZT-AhqUyc-II5mzb ZcASvf-AhqUyc-II5mzb pSzOP-AhqUyc-qWD73c Ktthjf-AhqUyc-qWD73c JNdkSc SQVYQc\">\n<div class=\"JNdkSc-SmKAyb LkDMRd\">\n<div class=\"\">\n<div class=\"oKdM2c ZZyype Kzv0Me\">\n<div id=\"h.2b423a2dee1fbf91_104\" class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd jXK9ad D2fZ2 zu5uec OjCsFc dmUFtb wHaque g5GTcb\">\n<div class=\"jXK9ad-SmKAyb\">\n<div class=\"tyJCtd mGzaTb Depvyb baZpAe\">\n<p class=\"zfr3Q CDt4Ke \" dir=\"ltr\"><strong><span class=\"C9DxTc \">Book Chapters<\/span><\/strong><\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"h.2b423a2dee1fbf91_105\" class=\"yaqOZd\">\n<div class=\"mYVXT\">\n<div class=\"LS81yb VICjCf j5pSsc db35Fc\" tabindex=\"-1\">\n<div class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd purZT-AhqUyc-II5mzb ZcASvf-AhqUyc-II5mzb pSzOP-AhqUyc-qWD73c Ktthjf-AhqUyc-qWD73c JNdkSc SQVYQc\">\n<div class=\"JNdkSc-SmKAyb LkDMRd\">\n<div class=\"\">\n<div class=\"oKdM2c ZZyype Kzv0Me\">\n<div id=\"h.2b423a2dee1fbf91_108\" class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd jXK9ad D2fZ2 zu5uec OjCsFc dmUFtb wHaque g5GTcb\">\n<div class=\"jXK9ad-SmKAyb\">\n<div class=\"tyJCtd mGzaTb Depvyb baZpAe\">\n<p>3. D. Korba, <strong>L. Li<\/strong>*, \u201cMesoscale Dendritic Solidification Modeling with a Coupled Finite Difference \u2013 Lattice Boltzmann Phase-Field Model,\u201d in Book: Metal Additive Manufacturing: Methods, Materials and Applications, <em>Springer<\/em>, <a href=\"https:\/\/link.springer.com\/chapter\/10.1007\/978-981-96-8162-4_18\">https:\/\/link.springer.com\/chapter\/10.1007\/978-981-96-8162-4_18<\/a> (2025).<\/p>\n<p class=\"zfr3Q CDt4Ke \" dir=\"ltr\"><span class=\"C9DxTc \">2. A. Singh*, K. Randhir,\u00a0<\/span><span class=\"C9DxTc \"><strong>L. Li<\/strong>,<\/span><span class=\"C9DxTc \">\u00a0N. AuYeung, A. Arabkoohsar, \u201c<\/span><a class=\"XqQF9c\" href=\"https:\/\/www.sciencedirect.com\/science\/article\/abs\/pii\/B9780323907866000145\" target=\"_blank\" rel=\"noopener\"><span class=\"C9DxTc aw5Odc \">Thermochemical thermal energy storage<\/span><\/a><span class=\"C9DxTc \">\u201d in Book: Future Grid-Scale Energy Storage Solutions: Mechanical and Chemical Technologies and Principles, pages: 169-213, <em>Academic Press<\/em>, (2023).<\/span><\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"h.3af8d40b9636d9e7_0\" class=\"yaqOZd\">\n<div class=\"IFuOkc\"><span class=\"C9DxTc \">1. D. Korba, <strong>L. Li*<\/strong>, \u201c<\/span><a class=\"XqQF9c\" href=\"https:\/\/www.intechopen.com\/online-first\/interface-treatment-for-conjugate-conditions-in-the-lattice-boltzmann-method-for-the-convection-diff\" target=\"_blank\" rel=\"noopener\"><span class=\"C9DxTc aw5Odc \">Interface Treatment for Conjugate Conditions in the Lattice Boltzmann Method for the Convection Diffusion Equation<\/span><\/a><span class=\"C9DxTc \">\u201d in Book: Lattice Boltzmann Model &#8211; Theoretical Modelling, Numerical Simulation and Engineering Applications, <em>IntechOpen<\/em>, (2019).<\/span><\/div>\n<\/section>\n<section id=\"h.2b423a2dee1fbf91_109\" class=\"yaqOZd\">\n<div class=\"IFuOkc\">\n<div class=\"IFuOkc\"><\/div>\n<div class=\"mYVXT\">\n<div class=\"LS81yb VICjCf j5pSsc db35Fc\" tabindex=\"-1\">\n<div class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd purZT-AhqUyc-II5mzb ZcASvf-AhqUyc-II5mzb pSzOP-AhqUyc-qWD73c Ktthjf-AhqUyc-qWD73c JNdkSc SQVYQc\">\n<div class=\"JNdkSc-SmKAyb LkDMRd\">\n<div class=\"\">\n<div class=\"oKdM2c ZZyype Kzv0Me\">\n<div id=\"h.2b423a2dee1fbf91_104\" class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd jXK9ad D2fZ2 zu5uec OjCsFc dmUFtb wHaque g5GTcb\">\n<div class=\"jXK9ad-SmKAyb\">\n<div class=\"tyJCtd mGzaTb Depvyb baZpAe\">\n<p class=\"zfr3Q CDt4Ke \" dir=\"ltr\"><strong><span class=\"C9DxTc \">Journal Articles<\/span><\/strong><\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"h.5e25cd970fb6f038_12\" class=\"yaqOZd\">\n<div class=\"IFuOkc\">\n<p>46. M. Patel, D. Polacek, M. Trinh-Pham, Z. Monem, <strong>L. Li<\/strong>*, \u201cMeasurement and Characterization of Electrical Conductivity of Metal Oxides for High-Temperature Thermochemical Energy Storage and Electrodes,\u201d <strong><em>ACS Appl. Eng. Mater.<\/em><\/strong> 4 (4), 1600-1610 (2026). DOI: <a href=\"https:\/\/doi.org\/10.1021\/acsaenm.5c01102\">https:\/\/doi.org\/10.1021\/acsaenm.5c01102<\/a><\/p>\n<p>45. H. Baldino, N. Schnitzer, Z. Monem, S. Rego, D. Hedlund, S. Bennett, \u0141. Dobrzycki, D. Heiman, B. Cui, <strong>L. Li<\/strong>, D.A. Muller, P. Kulik*, \u201cExistence of a low cooling rate martensitic transformation into the metastable ferrimagnetic \u03c4-phase in the MnAlCu system,\u201d <strong><em>J. Alloys Compd.<\/em><\/strong> 1057, 186938 (2026). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.jallcom.2026.186938\">https:\/\/doi.org\/10.1016\/j.jallcom.2026.186938<\/a><\/p>\n<p>44. O. Abourazzouk, M.P. Shah, J. Martinek, X. He, Z. Ma, <strong>L. Li<\/strong>*, \u201cThermomechanical analysis and modeling of a high-temperature light trapping planar cavity solar receiver,\u201d <strong><em>Sol. Energy <\/em><\/strong>308, 114377 (2026). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.solener.2026.114377\">https:\/\/doi.org\/10.1016\/j.solener.2026.114377<\/a><\/p>\n<p>43. X. Chen, K. Randhir, <strong>L. Li<\/strong>, B. Xu*, \u201cA unified and scalable design framework for multilayer insulation in thermal energy storage systems,\u201d <strong><em>Appl. Therm. Eng.<\/em><\/strong> 288, 129576 (2025). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.applthermaleng.2025.129576\">https:\/\/doi.org\/10.1016\/j.applthermaleng.2025.129576<\/a><\/p>\n<p>42. J. Ortiz-Ulloa, M. Rahman, K. Randhir, <strong>L. Li<\/strong>, N. AuYeung*, \u201cDesign and Scale-Up of Direct-Contact Continuous Oxidation Reactors for High-Temperature Thermochemical Storage Using Concentrated Solar Energy,\u201d <strong><em>Energy Fuels<\/em><\/strong> 39, 23408-23423 (2025). DOI: <a href=\"https:\/\/doi.org\/10.1021\/acs.energyfuels.5c02623\">https:\/\/doi.org\/10.1021\/acs.energyfuels.5c02623<\/a><\/p>\n<p>41. <strong>L. Li<\/strong>*, J.F. Klausner, R. Mei*, \u201cFlow structures in two-dimensional lid-driven cavity flow: Benchmark numerical results for steady flows,\u201d <strong><em>Eur. J. Mech. B Fluids<\/em><\/strong> 114, 204313 (2025). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.euromechflu.2025.204313\">https:\/\/doi.org\/10.1016\/j.euromechflu.2025.204313<\/a><\/p>\n<p>40. M. Rahman, D. Korba, J. Zhao, N. AuYeung, <strong>L. Li<\/strong>*, \u201cThermochemical energy storage in a lab-scale packed-bed reactor using MgO supported BaO2\/BaO redox system,\u201d <strong><em>J. Energy Storage<\/em><\/strong> 133, 117917 (2025). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.est.2025.117917\">https:\/\/doi.org\/10.1016\/j.est.2025.117917<\/a><\/p>\n<p>39. J. Ortiz-Ulloa, O. Ramsey, P. Schimmels, M. Hayes, D. Korba, K. Randhir, N. Ozalp, <strong>L. Li<\/strong>, J. Petrasch, J. Klausner, A. Benard, N. AuYeung*, \u201cConversion of stored thermochemical potential into high quality heat in a continuous flow reactor\/heat exchanger,\u201d <strong><em>J. Mater. Chem. A<\/em><\/strong> 13, 32481-32503 (2025). DOI: <a href=\"https:\/\/doi.org\/10.1039\/D5TA04802H\">https:\/\/doi.org\/10.1039\/D5TA04802H<\/a><\/p>\n<\/div>\n<div class=\"mYVXT\">\n<div class=\"LS81yb VICjCf j5pSsc db35Fc\" tabindex=\"-1\">\n<div class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd purZT-AhqUyc-II5mzb ZcASvf-AhqUyc-II5mzb pSzOP-AhqUyc-qWD73c Ktthjf-AhqUyc-qWD73c JNdkSc SQVYQc\">\n<div class=\"JNdkSc-SmKAyb LkDMRd\">\n<div class=\"\">\n<div class=\"oKdM2c ZZyype Kzv0Me\">\n<div id=\"h.5e25cd970fb6f038_15\" class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd jXK9ad D2fZ2 zu5uec OjCsFc dmUFtb wHaque g5GTcb\">\n<div class=\"jXK9ad-SmKAyb\">\n<div class=\"tyJCtd mGzaTb Depvyb baZpAe\">\n<p>38. J. Ortiz-Ulloa, L. Freiberg, F. Lei, K. Randhir, N. Ozalp, <strong>L. Li<\/strong>, J. Petrasch, J. Klausner, N. AuYeung*, \u201cEngineering design of a kW-scale continuous reactor-heat exchanger for high temperature discharge of particle-based thermochemical energy storage,\u201d <strong><em>Energy Convers. Manag<\/em><\/strong>. 327, 119546 (2025). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.enconman.2025.119546\">https:\/\/doi.org\/10.1016\/j.enconman.2025.119546<\/a><\/p>\n<p>37. J. Zhao, D. Korba, A. Mishra, J. Klausner, K. Randhir, N. AuYeung, <strong>L. Li<\/strong>*, \u201cParticle-based high-temperature thermochemical energy storage reactors,\u201d <strong><em>Prog. Energy Combustion Sci<\/em><\/strong>. 102, 101143 (2024). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.pecs.2024.101143\">https:\/\/doi.org\/10.1016\/j.pecs.2024.101143<\/a><\/p>\n<ul>\n<li><strong>Invited Review Paper<\/strong>.<\/li>\n<\/ul>\n<p>36. A. Mishra, D. Korba, J. Zhao, <strong>L. Li<\/strong>*, \u201cHeat and mass transfer model for a counter-flow moving packed-bed oxidation reactor\/heat exchanger,\u201d <strong><em>ASME J. Sol. Energy Eng<\/em><\/strong><em>.<\/em>, 146, 051006 (2024). DOI: <a href=\"https:\/\/doi.org\/10.1115\/1.4065040\">https:\/\/doi.org\/10.1115\/1.4065040<\/a><\/p>\n<p>35. Y. Wang, A. Kazemi, T. Jing, Z. Ding, <strong>L. Li<\/strong>, S. Yang*, \u201cRapid prediction of grain boundary network evolution in nanomaterials utilizing a generative machine learning approach,\u201d <strong><em>Extreme Mech. Lett. <\/em><\/strong>70, 102172 (2024). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.eml.2024.102172\">https:\/\/doi.org\/10.1016\/j.eml.2024.102172<\/a><\/p>\n<p>34. D. Korba, M. Hayes, P. Schimmels, K. Randhir, J. Klausner, N. AuYeung, <strong>L. Li<\/strong>*, \u201cContinuum modeling of high-temperature (&gt; 1000\u00b0 C) heat extraction from a moving-bed oxidation reactor for thermochemical energy storage,\u201d <strong><em>J. Energy Storage<\/em><\/strong>, 82, 110579 (2024). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.est.2024.110579\">https:\/\/doi.org\/10.1016\/j.est.2024.110579<\/a><\/p>\n<p>33. A. Mishra, P. Singh, <strong>L. Li<\/strong>*, \u201cHeat transfer model for moving packed-bed particle-to-sCO2 heat exchangers integrated with metal foams,\u201d <strong><em>Appl. Therm. Eng<\/em><\/strong><em>.<\/em> 239, 122062 (2024). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.applthermaleng.2023.122062\">https:\/\/doi.org\/10.1016\/j.applthermaleng.2023.122062<\/a><\/p>\n<p>32. M. Hayes, D. Korba, P. Schimmels, J. Klausner, J. Petrasch, N. AuYeung, <strong>L. Li<\/strong>*, and K. Randhir*, \u201cExperimental demonstration of high-temperature (&gt; 1000\u00b0 C) heat extraction from a moving-bed oxidation reactor for thermochemical energy storage.\u201d <strong><em>Appl. Energy<\/em><\/strong> 349, 121625 (2023). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.apenergy.2023.121625\">10.1016\/j.apenergy.2023.121625<\/a><\/p>\n<p>31. Y. Aider, I. Kaur, A. Mishra, <strong>L. Li<\/strong>, H. Cho, Z. Ma, J. Martinek, P. Singh*, \u201cHeat transfer characteristics of particle and air flow through additively manufactured lattice frame material based on octet-shape topology.\u201d <strong><em>ASME J. Sol. Energy Eng<\/em><\/strong><em>.<\/em>, 145 (6), 061004 (2023). DOI: <a href=\"https:\/\/doi.org\/10.1115\/1.4062196\">10.1115\/1.4062196<\/a><\/p>\n<p>30. A. Mishra, D. Korba, I. Kaur, P. Singh, and <strong>L. Li<\/strong>*, \u201cPrediction and validation of flow properties in porous lattice structures.\u201d <strong><em>ASME J. Fluids Eng<\/em><\/strong><em>.<\/em>, 145 (4), 041402 (2023). DOI: <a href=\"https:\/\/doi.org\/10.1115\/1.4056524\">10.1115\/1.4056524<\/a><\/p>\n<p>29. D. Korba, <strong>L. Li<\/strong>*, \u201cEffects of pore scale and conjugate heat transfer on thermal convection in porous media.\u201d <strong><em>J. Fluid Mech.<\/em><\/strong> 944, A28 (2022). DOI: <a href=\"https:\/\/doi.org\/10.1017\/jfm.2022.491\">10.1017\/jfm.2022.491<\/a><\/p>\n<p>28. D. Korba, W. Huang, K. Randhir, J. Petrasch, J. Klausner, N. AuYeung, and <strong>L. Li<\/strong>*, \u201cA continuum model for heat and mass transfer in moving-bed reactors for thermochemical energy storage.\u201d <strong><em>Appl. Energy<\/em><\/strong> 313, 118842 (2022). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.apenergy.2022.118842\">10.1016\/j.apenergy.2022.118842<\/a><\/p>\n<p>27. N. Wang, S. Bhushan, H. Cho, and <strong>L. Li<\/strong>*, \u201cModeling of vapor-liquid interactions in condensing ejectors.\u201d <strong><em>Appl. Therm. Eng<\/em><\/strong><em>.<\/em> 206, 118111 (2022). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.applthermaleng.2022.118111\">10.1016\/j.applthermaleng.2022.118111<\/a><\/p>\n<p>26. W. Huang, D. Korba, K. Randhir, J. Petrasch, J. Klausner, N. AuYeung, and <strong>L. Li<\/strong>*, \u201cThermochemical reduction modeling in a high-temperature moving-bed reactor for energy storage: 1D model.\u201d <strong><em>Appl. Energy<\/em><\/strong> 306, 118009 (2022). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.apenergy.2021.118009\">10.1016\/j.apenergy.2021.118009<\/a><\/p>\n<p>25. F. Lei, D. Korba, W. Huang, K. Randhir, <strong>L. Li<\/strong>, and N. AuYeung*, \u201cThermochemical heat recuperation for compressed air energy storage.\u201d <strong><em>Energy Convers. Manag.<\/em><\/strong> 250, 114889 (2021).\u00a0DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.enconman.2021.114889\">10.1016\/j.enconman.2021.114889<\/a><\/p>\n<p>24. N. Wang, D. Korba, Z. Liu, R. Prabhu, M.W. Priddy, S. Yang, L. Chen, and <strong>L. Li<\/strong>*, \u201cPhase-field-lattice Boltzmann method for dendritic growth with melt flow and thermosolutal convection-diffusion.\u201d <strong><em>Comput. Methods Appl. Mech. Eng<\/em><\/strong><em>.<\/em> 385, 114026 (2021). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.cma.2021.114026\">10.1016\/j.cma.2021.114026<\/a><\/p>\n<p>23. D. Korba, <strong>L. Li<\/strong>*, \u201cLattice Boltzmann model for conjugate heat transfer across thin walls.\u201d <strong><em>Phys. Rev. E<\/em><\/strong> 103, 043304 (2021). DOI: <a href=\"https:\/\/doi.org\/10.1103\/PhysRevE.103.043304\">10.1103\/PhysRevE.103.043304<\/a><\/p>\n<p>22. X. Wang, Y. Liu, <strong>L. Li<\/strong>, C.O. Yenusah, Y. Xiao, and L. Chen*, \u201cMulti-scale phase-field modeling of layer-by-layer powder compact densification during solid-state direct metal laser sintering.\u201d <strong><em>Mater. Des.<\/em><\/strong> 203, 109615 (2021). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.matdes.2021.109615\">10.1016\/j.matdes.2021.109615<\/a><\/p>\n<p>21. N. Wang, I. Kaur, P. Singh, and <strong>L. Li<\/strong>*, \u201cPrediction of effective thermal conductivity of porous lattice structures and validation with additively manufactured metal foams.\u201d <strong><em>Appl. Therm. Eng<\/em><\/strong><em>.<\/em>, 187, 116558 (2021). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.applthermaleng.2021.116558\">10.1016\/j.applthermaleng.2021.116558<\/a><\/p>\n<p>20. D. Korba, N. Wang, and <strong>L. Li<\/strong>*, \u201cAccuracy of interface schemes for conjugate heat and mass transfer in the lattice Boltzmann method.\u201d <strong><em>Int. J. Heat Mass Transfer<\/em><\/strong> 156, 119694 (2020).\u00a0DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.ijheatmasstransfer.2020.119694\">10.1016\/j.ijheatmasstransfer.2020.119694<\/a><\/p>\n<p>19. <strong>L. Li<\/strong>*, \u201cMultiple-time-scaling lattice Boltzmann method for the convection diffusion equation.\u201d <strong><em>Phys. Rev. E<\/em><\/strong> 99, 063301 (2019). DOI: <a href=\"https:\/\/doi.org\/10.1103\/PhysRevE.99.063301\">10.1103\/PhysRevE.99.063301<\/a><\/p>\n<p>18. K. Randhir*, K. King, N. Rhodes, <strong>L. Li<\/strong>, D.W. Hahn, R. Mei, N. AuYeung, and J.F. Klausner, \u201cMagnesium-manganese oxides for high temperature thermochemical energy storage.\u201d <strong><em>J. Energy Storage<\/em><\/strong> 21, 599-610 (2019). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.est.2018.11.024\">10.1016\/j.est.2018.11.024<\/a><\/p>\n<p>17. J.T. Waters, Y. Liu, <strong>L. Li<\/strong>, and A.C. Balazs*, \u201cOptimizing micromixer surfaces to deter biofouling.\u201d <strong><em>ACS Appl. Mater. Interfaces<\/em><\/strong> 10, 8374-8383 (2018). DOI: <a href=\"https:\/\/doi.org\/10.1021\/acsami.7b19845\">10.1021\/acsami.7b19845<\/a><\/p>\n<p>16. K. Randhir*, N. Rhodes, <strong>L. Li<\/strong>, N. AuYeung, D.W. Hahn, R. Mei, and J.F. Klausner, \u201cMagnesioferrites for solar thermochemical fuel production.\u201d <strong><em>Sol. Energy<\/em><\/strong> 163, 1-15 (2018). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.solener.2017.12.006\">10.1016\/j.solener.2017.12.006<\/a><\/p>\n<p>15. C. Chen, <strong>L. Li<\/strong>*, R. Mei, and J.F. Klausner, \u201cChapman-Enskog analyses on the gray lattice Boltzmann equation method for fluid flow in porous media.\u201d <strong><em>J. Stat. Phys.<\/em><\/strong> 171, 493-520 (2018). DOI: <a href=\"https:\/\/doi.org\/10.1007\/s10955-018-2005-1\">10.1007\/s10955-018-2005-1<\/a><\/p>\n<p>14.<strong> L. Li<\/strong>*, R. Mei, and J.F. Klausner, \u201cLattice Boltzmann models for the convection-diffusion equation: D2Q5 vs D2Q9.\u201d <strong><em>Int. J. Heat Mass Transfer<\/em><\/strong> 108, 41-62 (2017). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.ijheatmasstransfer.2016.11.092\">10.1016\/j.ijheatmasstransfer.2016.11.092<\/a><\/p>\n<p>13.<strong> L. Li<\/strong>*, N. AuYeung, R. Mei, and J.F. Klausner, \u201cEffects of tangential-type boundary condition discontinuity on the accuracy of lattice Boltzmann method for heat and mass transfer.\u201d <strong><em>Phys. Rev. E<\/em><\/strong> 94, 023307 (2016). DOI: <a href=\"https:\/\/doi.org\/10.1103\/PhysRevE.94.023307\">10.1103\/PhysRevE.94.023307<\/a><\/p>\n<p>12. <strong>L. Li<\/strong>*, C. Chen, N. Rahmatian, A. Singh, N. AuYeung, K. Randhir, R. Mei, J.F. Klausner, D.W. Hahn, and J. Petrasch, \u201cA transient heat transfer model for high temperature solar thermochemical reactors.\u201d <strong><em>Int. J. Hydrog. Energy<\/em><\/strong> 41, 2307-2325 (2016). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.ijhydene.2015.11.079\">10.1016\/j.ijhydene.2015.11.079<\/a><\/p>\n<p>11. N. Rhodes, A. Barde, K. Randhir, <strong>L. Li<\/strong>, D.W. Hahn, R. Mei, J.F. Klausner, and N. AuYeung*, \u201cSolar thermochemical energy storage through carbonation cycles of SrCO<sub>3<\/sub>\/SrO cycling supported on SrZrO<sub>3<\/sub>.\u201d <strong><em>ChemSusChem<\/em><\/strong> 8, 3793-3798 (2015). DOI: <a href=\"https:\/\/doi.org\/10.1002\/cssc.201501023\">10.1002\/cssc.201501023<\/a><\/p>\n<ul>\n<li><strong>Featured<\/strong> <strong>Cover Article<\/strong>.<\/li>\n<li><strong>Reported by<\/strong> <em>Sun &amp; Wind Energy<\/em>, <em>Science World Report<\/em>, <em>EurekAlert (AAAS)<\/em>, <em>Utility Dive<\/em>, <em>Kurzweil<\/em>, <em>Gizmag (<\/em>now<em> New Atlas)<\/em>, <em>The Chemical Engineer<\/em> (tcetoday.com), and <em>The Engineer<\/em> (www.theengineer.co.uk).<\/li>\n<\/ul>\n<p>10. K. Guo, <strong>L. Li<\/strong>, G. Xiao, N. AuYeung, and R. Mei*, \u201cLattice Boltzmann method for conjugate heat and mass transfer with interfacial jump conditions.\u201d <strong><em>Int. J. Heat Mass Transfer<\/em><\/strong> 88, 306-322 (2015). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.ijheatmasstransfer.2015.04.064\">10.1016\/j.ijheatmasstransfer.2015.04.064<\/a><\/p>\n<p>9. J. Leonard, N. Reyes, K.M. Allen, K. Randhir, <strong>L. Li<\/strong>*, N. AuYeung, J. Grunewald, N. Rhodes, M. Bobek, and J.F. Klausner, \u201cEffects of dopant metal variation and material synthesis method on the material properties of mixed metal ferrites in yttria stabilized zirconia for solar thermochemical fuel production.\u201d <strong><em>Int. J. Photoenergy<\/em><\/strong> 2015, 856385 (2015). DOI: <a href=\"http:\/\/dx.doi.org\/10.1155\/2015\/856385\">10.1155\/2015\/856385<\/a><\/p>\n<p>8.<strong> L. Li<\/strong>*, C. Chen, R. Mei, and J.F. Klausner, \u201cConjugate heat and mass transfer in the lattice Boltzmann equation method.\u201d <strong><em>Phys. Rev. E<\/em><\/strong> 89, 043308 (2014). DOI: <a href=\"https:\/\/doi.org\/10.1103\/PhysRevE.89.043308\">10.1103\/PhysRevE.89.043308<\/a><\/p>\n<p>7.<strong> L. Li<\/strong>*, R. Mei, and J.F. Klausner, \u201cHeat transfer evaluation on curved boundaries in thermal lattice Boltzmann equation Method.\u201d <strong><em>ASME J. Heat Transfer<\/em><\/strong> 136, 012403 (2014). DOI: <a href=\"https:\/\/doi.org\/10.1115\/1.4025046\">10.1115\/1.4025046<\/a><\/p>\n<p>6.<strong> L. Li<\/strong>*, R. Mei, and J.F. Klausner, \u201cMultiple-relaxation-time lattice Boltzmann model for the axisymmetric convection diffusion equation.\u201d <strong><em>Int. J. Heat Mass Transfer<\/em><\/strong> 67, 338-351 (2013). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.ijheatmasstransfer.2013.08.039\">10.1016\/j.ijheatmasstransfer.2013.08.039<\/a><\/p>\n<p>5. <strong>L. Li<\/strong>, R. Mei*, and J.F. Klausner, \u201cBoundary conditions for thermal lattice Boltzmann equation method.\u201d <strong><em>J. Comput. Phys.<\/em><\/strong> 237, 366-395 (2013). DOI: <a href=\"https:\/\/doi.org\/10.1016\/j.jcp.2012.11.027\">10.1016\/j.jcp.2012.11.027<\/a><\/p>\n<ul>\n<li><strong>Featured<\/strong> Top 1 of the 5 Most Downloaded <em>Journal of Computational Physics<\/em> Articles in 2013.<\/li>\n<\/ul>\n<p>4.<strong> L. Li<\/strong>*, R. Mei, J.F. Klausner, and D.W. Hahn, \u201cHeat transfer between colliding surfaces and particles.\u201d <strong><em>ASME J. Heat Transfer<\/em><\/strong> 134, 011301 (2012). DOI: <a href=\"https:\/\/doi.org\/10.1115\/1.4004874\">10.1115\/1.4004874<\/a><\/p>\n<ul>\n<li><strong>Featured<\/strong> Top 10 Most Downloaded <em>Journal of Heat Transfer<\/em> Articles in Nov. 2011 and Dec. 2011.<\/li>\n<\/ul>\n<p>3. J. Chi, Z. Wang, and <strong>L. Li<\/strong>, \u201cNumerical simulation and analysis of low hysteresis brush seals.\u201d <strong><em>Advanced Materials Research<\/em><\/strong> 452, 1455-1459 (2012).<\/p>\n<p>2. Z. Wang, M. Guo, and <strong>L. Li<\/strong>, \u201cMechanical behaviors of brush seals and sealing performance.\u201d <strong><em>J.<\/em><\/strong><em> <strong>Beijing University of Aeronautics &amp; Astronautics<\/strong><\/em> 37, 10 (2011) (in Chinese).<\/p>\n<p>1. <strong>L. Li<\/strong>, Z. Wang, F. Song, W. Wang, and C. Chen, \u201cNumerical investigation of temperature field in brush seals.\u201d <strong><em>J. Aerospace Power<\/em><\/strong> 25, 5 (2010) (in Chinese).<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"h.2b423a2dee1fbf91_233\" class=\"yaqOZd\">\n<div class=\"mYVXT\">\n<div class=\"LS81yb VICjCf j5pSsc db35Fc\" tabindex=\"-1\">\n<div class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd purZT-AhqUyc-II5mzb ZcASvf-AhqUyc-II5mzb pSzOP-AhqUyc-qWD73c Ktthjf-AhqUyc-qWD73c JNdkSc SQVYQc\">\n<div class=\"JNdkSc-SmKAyb LkDMRd\">\n<div class=\"\">\n<div class=\"oKdM2c ZZyype Kzv0Me\">\n<div id=\"h.2b423a2dee1fbf91_236\" class=\"hJDwNd-AhqUyc-uQSCkd Ft7HRd-AhqUyc-uQSCkd jXK9ad D2fZ2 zu5uec OjCsFc dmUFtb wHaque g5GTcb\">\n<div class=\"jXK9ad-SmKAyb\">\n<div class=\"tyJCtd mGzaTb Depvyb baZpAe\">\n<hr \/>\n<p class=\"zfr3Q CDt4Ke \" dir=\"ltr\"><strong><span class=\"C9DxTc \">Conference Papers<\/span><\/strong><\/p>\n<p>21. M. Patel, D. Polacek, M. Trinh-Pham, Z. Monem, <strong>L. Li<\/strong><strong>*<\/strong>, \u201cElectrical Conductivity Measurement at High Temperatures for Thermochemical Energy Storage Materials.\u201d <em>Proceedings of the 11th Thermal and Fluids Engineering Conference<\/em>, Tempe, Arizona, USA, 2026.<\/p>\n<p>20. O. Abourazzouk, M.P. Shan, J. Martinek, X. He, Z. Ma, <strong>L. Li<\/strong><strong>*<\/strong>, \u201cThermomechanical evaluation of a particle-based solar receiver prototype during on-sun conditions.\u201d <em>Proceedings of the 11th Thermal and Fluids Engineering Conference<\/em>, Tempe, Arizona, USA, 2026.<\/p>\n<p>19. X. Chen, M. Farias, <strong>L. Li<\/strong>, K. Randhir, B. Xu*, \u201cInsulation Design of Particle-Based CSP Storage Silos Using 1-D Model: A Case Study for a Laboratory-Scale High-Temperature Storage System,\u201d <em>Proceedings of the ASME 2025 19th International Conference on Energy Sustainability (ES2025), <\/em>Westminster, Colorado, 2025 (DOI: https:\/\/doi.org\/10.1115\/ES2025-157909).<\/p>\n<p>18. O. Abourazzouk, M.P. Shan, J. Martinek, X. He, Z. Ma, <strong>L. Li*<\/strong>, \u201cThermomechanical Modeling and Analysis of a High-Temperature Light Trapping Planar Cavity Receiver.\u201d <em>Proceedings of the 10th Thermal and Fluids Engineering Conference<\/em>, Washington DC, 2025.<\/p>\n<p>17. A. Mishra, O. Abourazzouk, J. Zhao<sup>\u00a7<\/sup>, <strong>L. Li*<\/strong>, \u201cDiscrete Modeling of Flow and Heat Transfer in High-Temperature Gravity-Driven Granular Flows for Thermal Energy Storage.\u201d <em>Proceedings of the ASME 2024 18th International Conference on Energy Sustainability (ES2024)<\/em>, Anaheim, CA, 2024.<\/p>\n<p>16. M. Carter, D. Korba, J. Martinek, Z. Ma, <strong>L. Li*<\/strong>, \u201cThermomechanical stress and creep-fatigue analysis of a high-temperature prototype receiver for heating particles.\u201d <em>Proceedings of the ASME 2023 17th International Conference on Energy Sustainability (ES2023)<\/em>, Washington DC, 2023.<\/p>\n<p>15. A. Mishra, D. Korba, <strong>L. Li*<\/strong>, \u201cNumerical investigation of thermochemical energy extraction in a moving packed bed oxidation reactor-heat exchanger.\u201d <em>Proceedings of the ASME 2023 17th International Conference on Energy Sustainability (ES2023)<\/em>, Washington DC, 2023.<\/p>\n<p>14. D. Korba, A. Mishra, M. El Amrani, K. Randhir, N. Rahmatian, J. Klausner, N. AuYeung, <strong>L. Li*<\/strong>, \u201cTomography-based pore-scale model and prediction of flow and thermal transport properties for thermochemical energy storage materials.\u201d <em>Proceedings of the 8th Thermal and Fluids Engineering Conference<\/em>, College Park, MD, 2023.<\/p>\n<p>13. D. Korb<sup>\u00a7<\/sup>, <strong>L. Li*<\/strong>, \u201cA coupled finite difference-lattice Boltzmann-based phase field model for dendritic evolution during metal additive manufacturing.\u201d <em>Proceedings of the 8th Thermal and Fluids Engineering Conference<\/em>, College Park, MD, 2023.<\/p>\n<p>12. Y. Aider, A. Mishra, <strong>L. Li<\/strong>, H. Cho, P. Singh*, \u201cHeat transfer characteristics of particle flow through additively manufactured SS-316L lattice frame material based on Octet-shape topology.\u201d <em>Proceedings of the ASME 2022 International Mechanical Engineering Congress &amp; Exposition<\/em>, Columbus, OH, 2022.<\/p>\n<p>11. W. Huang, E. Million, K. Randhir, J. Petrasch, J. Klausner, N. AuYeung, <strong>L. Li<\/strong>*, \u201cHeat transfer modeling in a counter-current moving-bed tubular reactor for high-temperature thermochemical energy storage.\u201d <em>Proceedings of the ASME 15th International Conference on Energy Sustainability<\/em>, Virtual, 2021.<\/p>\n<p>10. N. Wang, <strong>L. Li<\/strong>*, \u201cAnalysis and Modeling of Vapor-Liquid Interactions in Condensing Ejectors.\u201d <em>Proceedings of the ASME 2021 International Mechanical Engineering Congress &amp; Exposition<\/em>, Virtual, 2021.<\/p>\n<p>9. N. Wang, <strong>L. Li<\/strong>*, \u201cLattice Boltzmann-phase field method for dendritic growth modeling.\u201d <em>Proceedings of the 5-6th Thermal and Fluids Engineering Conference<\/em>, Virtual, 2021.<\/p>\n<p>8.<strong> L. Li<\/strong>*, K. Randhir, J.F. Klausner, R. Mei, and N. AuYeung, \u201cMultiscale thermal transport in solar thermochemical energy storage systems.\u201d <em>Proceedings of the 16th International Heat Transfer Conference<\/em>, Beijing, China, 2018.<\/p>\n<p>7. J.F. Klausner*, <strong>L. Li<\/strong>, A. Singh, N. AuYeung, R. Mei, D.W. Hahn, and J. Petrasch, \u201cThe role of heat transfer in sunlight to fuel conversion using high-temperature solar thermochemical reactors.\u201d <em>Invited Keynote Papers of the 15th International Heat Transfer Conference<\/em>, Kyoto, Japan, 2014.<\/p>\n<p>6. <strong>L. Li<\/strong>*, C. Chen, R. Mei, and J.F. Klausner, \u201cConjugate interface heat and mass transfer simulation with the lattice Boltzmann equation method.\u201d <em>Proceedings of the ASME 2014 4th Joint US-European Fluids Engineering Division Summer Meeting and 12th International Conference on Nanochannels, Microchannels, and Minichannels<\/em>, Chicago, IL, 2014.<\/p>\n<p>5.<strong> L. Li<\/strong>*, A. Singh, N. AuYeung, R. Mei, J. Petrasch, and J.F. Klausner, \u201cLattice Boltzmann simulation of high-diffusivity problems with application to energy transport in a high-temperature solar thermochemical reactor.\u201d <em>Proceedings of the ASME 2013 Summer Heat Transfer Conference, Minneapolis<\/em>, MN, 2013.<\/p>\n<p>4.<strong> L. Li<\/strong>*, R. Mei, and J.F. Klausner, \u201cHeat transfer in thermal lattice Boltzmann equation method.\u201d <em>Proceedings of the ASME 2012 International Mechanical Engineering Congress &amp; Exposition<\/em>, Houston, TX, 2012.<\/p>\n<p>3.<strong> L. Li<\/strong>*, R. Mei, J.F. Klausner, and D.W. Hahn, \u201cHeat transfer between colliding surfaces and particles.\u201d <em>Proceedings of the ASME\/JSME 2011 8th Thermal Engineering Joint Conference<\/em>, Honolulu, HI, 2011.<\/p>\n<p>2. J. Chi, Z. Wang, and <strong>L. Li<\/strong>, \u201cNumerical simulation and analysis of low hysteresis brush seals.\u201d <em>Proceedings of the 2011 International Conference on Management, Manufacturing &amp; Materials Engineering<\/em>, Henan, China, 2011.<\/p>\n<p>1. F. Song, Z. Wang, <strong>L. Li<\/strong>, and M. Guo, \u201cThermal field and performance analysis of brush seal.\u201d <em>Proceedings of the 7th China-Japan International Conference on History of Mechanical Technology and Mechanical Design<\/em>, Beijing, China, 2008.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n","protected":false},"excerpt":{"rendered":"Google Scholar Citations ResearchGate Profile * Corresponding author\u00a0 Patents 1. J.F. Klausner , K. Randhir , N. AuYueng , L. Li, N. Rhodes, A. Barde, R. Mei, D.W. Hahn, \u201cMethod for the Generation of Power\u201d Patent No.: US 10,266,420 B2, (2019). Book Chapters 3. D. Korba, L. Li*, \u201cMesoscale Dendritic Solidification Modeling with a Coupled&hellip;","protected":false},"author":3,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_acf_changed":false,"footnotes":""},"class_list":["post-71","page","type-page","status-publish","hentry"],"acf":[],"_links":{"self":[{"href":"https:\/\/mae.ucf.edu\/TESD\/wp-json\/wp\/v2\/pages\/71","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/mae.ucf.edu\/TESD\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/mae.ucf.edu\/TESD\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/mae.ucf.edu\/TESD\/wp-json\/wp\/v2\/users\/3"}],"replies":[{"embeddable":true,"href":"https:\/\/mae.ucf.edu\/TESD\/wp-json\/wp\/v2\/comments?post=71"}],"version-history":[{"count":12,"href":"https:\/\/mae.ucf.edu\/TESD\/wp-json\/wp\/v2\/pages\/71\/revisions"}],"predecessor-version":[{"id":171,"href":"https:\/\/mae.ucf.edu\/TESD\/wp-json\/wp\/v2\/pages\/71\/revisions\/171"}],"wp:attachment":[{"href":"https:\/\/mae.ucf.edu\/TESD\/wp-json\/wp\/v2\/media?parent=71"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}