{"id":{"repo_id":"uiuc","oai_identifier":"oai:www.ideals.illinois.edu:2142/50660"},"canonical_url":"https://search.dev.ndltd.org/etd/uiuc/oai:www.ideals.illinois.edu:2142/50660","repository":{"repo_id":"uiuc","name":"University of Illinois - Urbana-Champaign","base_url":"https://www.ideals.illinois.edu/oai-pmh"},"display":{"title":"Heat transfer and pressure drop in the condensing superheated region with visualization and film thickness measurement","abstract":"Traditionally, condensation has been characterized by division into three zones: desuperheating, two-phase, and subcooled regions. According to this characterization, heat transfer and pressure drop in condensers are modeled separately for the single-phase and two-phase regions. When plotted as a function of enthalpy, the correlations show a discontinuity between the single-phase and two-phase zones because the three-zone approach implicitly assumes thermodynamic equilibrium throughout the condensation process. In reality, the refrigerant is not at equilibrium, and condensation occurs outside the conventionally defined two-phase zone. Condensation actually starts when the wall temperature reaches saturation, even in the presence of superheated vapor. Similarly, condensation continues if some vapor remains even when the bulk refrigerant enthalpy is indicating a subcooled state. These two situations make a fourth and fifth zone in the condenser, classified as the condensing superheated and condensing subcooled zones. The effects of these zones on heat transfer have been described previously, but the effects on pressure drop have received less attention, and confirmation of the physical processes thought to be occurring has not yet been provided. This paper presents experimental results verifying the presence of liquid in the condensing superheated region. Flow visualization experiments with R134a revealed that condensate began to appear when the bulk refrigerant enthalpy was above saturation, as droplets and rivulets on the tube wall and then as an annular film with mist entrained in the vapor core. Liquid film thickness measurements further confirmed the growth of a condensate film at bulk enthalpies greater than saturation. The heat transfer coefficient followed the same trend seen in earlier experiments, rising sharply in the condensing superheated region for a smooth transition between the single-phase and two-phase zones. The pressure drop gradient also increased significantly above the single-phase prediction once the wall temperature fell below the saturation temperature, as shown by prior experimental results for R32. In the condensing superheated region, shear interactions between the liquid film and vapor increase the pressure drop compared to vapor alone. As condensation continues, the shear increases due to a thicker and wavier liquid layer, but friction and momentum losses decrease as the refrigerant velocity decreases. These competing factors cause a peak and subsequent decrease in the pressure drop gradient and are corroborated by the flow visualization.","abstract_html":"Traditionally, condensation has been characterized by division into three zones: desuperheating, two-phase, and subcooled regions. According to this characterization, heat transfer and pressure drop in condensers are modeled separately for the single-phase and two-phase regions. When plotted as a function of enthalpy, the correlations show a discontinuity between the single-phase and two-phase zones because the three-zone approach implicitly assumes thermodynamic equilibrium throughout the condensation process. In reality, the refrigerant is not at equilibrium, and condensation occurs outside the conventionally defined two-phase zone. Condensation actually starts when the wall temperature reaches saturation, even in the presence of superheated vapor. Similarly, condensation continues if some vapor remains even when the bulk refrigerant enthalpy is indicating a subcooled state. These two situations make a fourth and fifth zone in the condenser, classified as the condensing superheated and condensing subcooled zones. The effects of these zones on heat transfer have been described previously, but the effects on pressure drop have received less attention, and confirmation of the physical processes thought to be occurring has not yet been provided. This paper presents experimental results verifying the presence of liquid in the condensing superheated region. Flow visualization experiments with R134a revealed that condensate began to appear when the bulk refrigerant enthalpy was above saturation, as droplets and rivulets on the tube wall and then as an annular film with mist entrained in the vapor core. Liquid film thickness measurements further confirmed the growth of a condensate film at bulk enthalpies greater than saturation. The heat transfer coefficient followed the same trend seen in earlier experiments, rising sharply in the condensing superheated region for a smooth transition between the single-phase and two-phase zones. The pressure drop gradient also increased significantly above the single-phase prediction once the wall temperature fell below the saturation temperature, as shown by prior experimental results for R32. In the condensing superheated region, shear interactions between the liquid film and vapor increase the pressure drop compared to vapor alone. As condensation continues, the shear increases due to a thicker and wavier liquid layer, but friction and momentum losses decrease as the refrigerant velocity decreases. These competing factors cause a peak and subsequent decrease in the pressure drop gradient and are corroborated by the flow visualization.","abstract_has_math":false,"creators":["Meyer, Melissa"],"institution":"University of Illinois at Urbana-Champaign","degree_name":"M.S.","degree_level":"Thesis","degree_discipline":"Mechanical Engineering","degree_department":null,"school":null,"contributors":["Hrnjak, Predrag S."],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2014,"date_issued":"2014-08","date_published":"2014-08","updated_at":"2026-07-22T22:25:40Z","subjects":["Condensing superheated","condensation","film thickness","pressure drop","flow regimes"],"languages":["en"],"rights":["Copyright 2014 Melissa Meyer"],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"http://hdl.handle.net/2142/50660","outbound_label":"Handle","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Hrnjak, Predrag S."]},{"key":"dc:creator","label":"Author","values":["Meyer, Melissa"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2014-08","2014-09-16","2014-09-16T17:24:59Z"]},{"key":"dc:type","label":"Dc Type","values":["text"]},{"key":"thesis:degree_discipline","label":"Discipline","values":["Mechanical Engineering"]},{"key":"thesis:degree_level","label":"Degree Level","values":["Thesis"]},{"key":"thesis:degree_name","label":"Degree Name","values":["M.S."]},{"key":"thesis:institution_name","label":"Thesis Institution Name","values":["University of Illinois at Urbana-Champaign"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Condensing superheated","condensation","film thickness","pressure drop","flow regimes"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["en"]},{"key":"dc:rights","label":"Dc Rights","values":["Copyright 2014 Melissa Meyer"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["http://hdl.handle.net/2142/50660"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description","label":"Description","values":["Traditionally, condensation has been characterized by division into three zones: desuperheating, two-phase, and subcooled regions. According to this characterization, heat transfer and pressure drop in condensers are modeled separately for the single-phase and two-phase regions. When plotted as a function of enthalpy, the correlations show a discontinuity between the single-phase and two-phase zones because the three-zone approach implicitly assumes thermodynamic equilibrium throughout the condensation process. In reality, the refrigerant is not at equilibrium, and condensation occurs outside the conventionally defined two-phase zone. Condensation actually starts when the wall temperature reaches saturation, even in the presence of superheated vapor. Similarly, condensation continues if some vapor remains even when the bulk refrigerant enthalpy is indicating a subcooled state. These two situations make a fourth and fifth zone in the condenser, classified as the condensing superheated and condensing subcooled zones. The effects of these zones on heat transfer have been described previously, but the effects on pressure drop have received less attention, and confirmation of the physical processes thought to be occurring has not yet been provided. This paper presents experimental results verifying the presence of liquid in the condensing superheated region. Flow visualization experiments with R134a revealed that condensate began to appear when the bulk refrigerant enthalpy was above saturation, as droplets and rivulets on the tube wall and then as an annular film with mist entrained in the vapor core. Liquid film thickness measurements further confirmed the growth of a condensate film at bulk enthalpies greater than saturation. The heat transfer coefficient followed the same trend seen in earlier experiments, rising sharply in the condensing superheated region for a smooth transition between the single-phase and two-phase zones. The pressure drop gradient also increased significantly above the single-phase prediction once the wall temperature fell below the saturation temperature, as shown by prior experimental results for R32. In the condensing superheated region, shear interactions between the liquid film and vapor increase the pressure drop compared to vapor alone. As condensation continues, the shear increases due to a thicker and wavier liquid layer, but friction and momentum losses decrease as the refrigerant velocity decreases. These competing factors cause a peak and subsequent decrease in the pressure drop gradient and are corroborated by the flow visualization.","Item withdrawn by Mark Zulauf (zulauf@illinois.edu) on 2014-07-23T20:15:19Z Item was in collections: University of Illinois Theses & Dissertations (ID: 1) No. of bitstreams: 1 Meyer_Melissa.pdf: 14271710 bytes, checksum: 0738f6f89e392ddf3e00ec7e1e1f7e77 (MD5)","Made available in DSpace on 2014-09-16T17:24:59Z (GMT). No. of bitstreams: 2 Melissa_Meyer.pdf: 14248118 bytes, checksum: 4c0ccde87ad81339e73d20516e232478 (MD5) license.txt: 4063 bytes, checksum: 8db10e9d9d0beacc4dc9e5845edc445a (MD5)"]},{"key":"dc:title","label":"Title","values":["Heat transfer and pressure drop in the condensing superheated region with visualization and film thickness measurement"]}]}],"canonical_facts":{"dc:contributor":["Hrnjak, Predrag S."],"dc:creator":["Meyer, Melissa"],"dc:date":["2014-08","2014-09-16","2014-09-16T17:24:59Z"],"dc:description":["Traditionally, condensation has been characterized by division into three zones: desuperheating, two-phase, and subcooled regions. According to this characterization, heat transfer and pressure drop in condensers are modeled separately for the single-phase and two-phase regions. When plotted as a function of enthalpy, the correlations show a discontinuity between the single-phase and two-phase zones because the three-zone approach implicitly assumes thermodynamic equilibrium throughout the condensation process. In reality, the refrigerant is not at equilibrium, and condensation occurs outside the conventionally defined two-phase zone. Condensation actually starts when the wall temperature reaches saturation, even in the presence of superheated vapor. Similarly, condensation continues if some vapor remains even when the bulk refrigerant enthalpy is indicating a subcooled state. These two situations make a fourth and fifth zone in the condenser, classified as the condensing superheated and condensing subcooled zones. The effects of these zones on heat transfer have been described previously, but the effects on pressure drop have received less attention, and confirmation of the physical processes thought to be occurring has not yet been provided. This paper presents experimental results verifying the presence of liquid in the condensing superheated region. Flow visualization experiments with R134a revealed that condensate began to appear when the bulk refrigerant enthalpy was above saturation, as droplets and rivulets on the tube wall and then as an annular film with mist entrained in the vapor core. Liquid film thickness measurements further confirmed the growth of a condensate film at bulk enthalpies greater than saturation. The heat transfer coefficient followed the same trend seen in earlier experiments, rising sharply in the condensing superheated region for a smooth transition between the single-phase and two-phase zones. The pressure drop gradient also increased significantly above the single-phase prediction once the wall temperature fell below the saturation temperature, as shown by prior experimental results for R32. In the condensing superheated region, shear interactions between the liquid film and vapor increase the pressure drop compared to vapor alone. As condensation continues, the shear increases due to a thicker and wavier liquid layer, but friction and momentum losses decrease as the refrigerant velocity decreases. These competing factors cause a peak and subsequent decrease in the pressure drop gradient and are corroborated by the flow visualization.","Item withdrawn by Mark Zulauf (zulauf@illinois.edu) on 2014-07-23T20:15:19Z Item was in collections: University of Illinois Theses & Dissertations (ID: 1) No. of bitstreams: 1 Meyer_Melissa.pdf: 14271710 bytes, checksum: 0738f6f89e392ddf3e00ec7e1e1f7e77 (MD5)","Made available in DSpace on 2014-09-16T17:24:59Z (GMT). No. of bitstreams: 2 Melissa_Meyer.pdf: 14248118 bytes, checksum: 4c0ccde87ad81339e73d20516e232478 (MD5) license.txt: 4063 bytes, checksum: 8db10e9d9d0beacc4dc9e5845edc445a (MD5)"],"dc:identifier":["http://hdl.handle.net/2142/50660"],"dc:language":["en"],"dc:rights":["Copyright 2014 Melissa Meyer"],"dc:subject":["Condensing superheated","condensation","film thickness","pressure drop","flow regimes"],"dc:title":["Heat transfer and pressure drop in the condensing superheated region with visualization and film thickness measurement"],"dc:type":["text"],"thesis:degree_discipline":["Mechanical Engineering"],"thesis:degree_level":["Thesis"],"thesis:degree_name":["M.S."],"thesis:institution_name":["University of Illinois at Urbana-Champaign"]},"updated_at":"2026-07-22T22:25:40Z"}