{"projectId":93914,"project":{"projectId":93914,"title":"Heat Transfer Mechanisms for Flow Boiling in Microgravity using Fluorescing Materials as Temperature Sensors","startDate":"2016-08-01","startYear":2016,"startMonth":8,"endDate":"2020-07-31","endYear":2020,"endMonth":7,"programId":69,"program":{"ableToSelect":false,"acronym":"STRG","isActive":true,"description":"<p> \tThe Space Technology Research Grants Program will accelerate the development of &quot;push&quot; technologies to support the future space science and exploration needs of NASA, other government agencies and the commercial space sector. Innovative efforts with high risk and high payoff will be encouraged. The program is composed of two competitively awarded components.</p> ","parentProgram":{"ableToSelect":false,"isActive":true,"description":"Catalyst is a portfolio of early stage programs that specialize in different innovation constituencies and mechanisms to push the state of the art in aerospace technology development","programId":92327,"responsibleMd":{"canUserEdit":false,"locationEdit":false,"organizationRolePretty":"","organizationTypePretty":""},"title":"Catalyst","acronymOrTitle":"Catalyst"},"parentProgramId":92327,"programId":69,"responsibleMd":{"organizationId":4875,"organizationName":"Space Technology Mission Directorate","acronym":"STMD","organizationType":"NASA_Mission_Directorate","canUserEdit":false,"locationEdit":false,"organizationRolePretty":"","organizationTypePretty":"NASA Mission Directorate"},"responsibleMdOffice":4875,"stockImageFileId":36658,"title":"Space Technology Research Grants","acronymOrTitle":"STRG"},"acronym":"","description":"I propose an experiment to study two-phase flow boiling in microgravity. 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Ground-based experiments will be tested first in order to confirm the validity of this method with respect to current flow-boiling correlations. The experiment apparatus will be optimized by mass and volume in order to increase feasibility of being able to run on either a parabolic flight or the International Space Station. Performing the temperature acquisition in either of these environments will allow correlations to be made for flow-boiling in microgravity environments. The resulting data from this experiment will help develop more accurate correlations for space-based heat exchangers, allowing spacecraft to distribute heat and power more consistently.","benefits":"The resulting data from this experiment will help develop more accurate correlations for space-based heat exchangers, allowing spacecraft to distribute heat and power more consistently.","releaseStatus":"Released","status":"Completed","viewCount":668,"destinationType":["Sun","Earth","Moon_and_Cislunar"],"trlBegin":2,"trlCurrent":3,"trlEnd":3,"lastUpdated":"12/18/25","favorited":false,"detailedFunding":false,"projectContacts":[{"contactId":232572,"canUserEdit":false,"firstName":"John","lastName":"Mcquillen","fullName":"John B Mcquillen","fullNameInverted":"Mcquillen, John 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Innovative efforts with high risk and high payoff will be encouraged. The program is composed of two competitively awarded components.</p> ","parentProgram":{"ableToSelect":false,"isActive":true,"description":"Catalyst is a portfolio of early stage programs that specialize in different innovation constituencies and mechanisms to push the state of the art in aerospace technology development","programId":92327,"responsibleMd":{"canUserEdit":false,"locationEdit":false,"organizationRolePretty":"","organizationTypePretty":""},"title":"Catalyst","acronymOrTitle":"Catalyst"},"parentProgramId":92327,"programId":69,"responsibleMd":{"organizationId":4875,"organizationName":"Space Technology Mission Directorate","acronym":"STMD","organizationType":"NASA_Mission_Directorate","canUserEdit":false,"locationEdit":false,"organizationRolePretty":"","organizationTypePretty":"NASA Mission Directorate"},"responsibleMdOffice":4875,"stockImageFileId":36658,"title":"Space Technology Research Grants","acronymOrTitle":"STRG"},"acronym":"","description":"I propose an experiment to study two-phase flow boiling in microgravity. Obtaining a fundamental understanding of the nature of flow boiling fluid mechanics and heat transfer in space environments will allow more compact and efficient heat exchangers to be used in space. The experiment will be conducted using high-speed CCD cameras to record HFE 7100 flowing through a transparent sapphire tube test section. The inner wall of the tube will be lined with a transparent conducting polymer film that can be electrically heated. Quantum dots will be dispersed along the bottom half of the polymer film. Quantum dots fluoresce when excited with blue or UV light, and the intensity of their emission decreases with increasing temperature. The goal of this experiment is to track the intensity changes of the quantum dots with the CCD cameras in order to obtain a temperature distribution along the inner wall of the test section while the polymer film is heating the fluid. This temperature data can be used to obtain values for local heat transfer for the test section. Ground-based experiments will be tested first in order to confirm the validity of this method with respect to current flow-boiling correlations. The experiment apparatus will be optimized by mass and volume in order to increase feasibility of being able to run on either a parabolic flight or the International Space Station. Performing the temperature acquisition in either of these environments will allow correlations to be made for flow-boiling in microgravity environments. 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Results were used to identify dominant heat transfer mechanisms and refine conventions that will be used for space-based flow boiling heat exchangers. Obtaining a fundamental understanding of the nature of flow boiling fluid mechanics and heat transfer in space environments allows more compact and efficient heat exchangers to be implemented for future space-flight missions and/or satellites. The experiment was conducted using high-speed CMOS cameras to record HFE 7000 flowing through a transparent sapphire tube (6 mm inner diameter, 8 mm outer diameter). A novel technique using temperature sensitive paint (TSP) was used to measure wall temperature along the inside of the tube. TSP fluoresces when excited with blue or UV light, and the intensity of its emission decreases with increasing temperature. This experiment was designed to track simultaneous intensity changes of the temperature sensitive paint and flow visualization with CMOS cameras in order to obtain a temperature distribution along the inner wall of the test section tube. A transparent conducting polymer film was laminated onto the outside of the tube so it couldbe electrically heated to initiate flow boiling. The temperature data were used to obtain values for local and averaged heat transfer within the test section. Ground-based experiments have validated this method by reproducing single-phase heated flow correlations. Local data provided insight into the dominant heat transfer mechanisms in microgravity and aided understanding of flow conditions which are gravity independent. It was found that single-phase liquid convective heat transfer is the dominant mechanism in microgravity flow boiling. The effect of increasing void fraction within the flow can be accounted for by incorporating flow acceleration, but the effects of flow regime transition and annular flow film thickness have yet to be determined. The resulting data from this experiment will help develop more accurate correlations for space-based heat exchangers, allowing spacecraft to distribute heat and power more consistently.","infoText":"Closed out","infoTextExtra":"Project closed out","isIndirect":false,"technologyOutcomeRationalePretty":"","infusionPretty":"","isBiDirectional":false,"technologyOutcomeDateString":"Jul 2020","technologyOutcomeDateFullString":"July 2020","technologyOutcomePartnerPretty":"","technologyOutcomePathPretty":"Closed Out"}],"libraryItems":[{"files":[],"libraryItemId":367603,"title":"Project Website","libraryItemType":"Link","url":"https://www.nasa.gov/strg#.VQb6T0jJzyE","projectId":93914,"internalOnly":false,"publishedDateString":"","entryDateString":"01/22/25 01:10 AM","libraryItemTypePretty":"Link","modifiedDateString":"10/25/24 02:23 PM"}],"states":[{"abbreviation":"MD","country":{"abbreviation":"US","countryId":236,"name":"United States"},"countryId":236,"name":"Maryland","stateTerritoryId":3,"isTerritory":false}],"endDateString":"Jul 2020","startDateString":"Aug 2016"}}