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dc.creatorCosta, Raissa Marielle da
dc.date.accessioned2026-08-21T20:53:12Z
dc.date.available2027-12-20
dc.date.available2026-08-21T20:53:12Z
dc.date.issued2026-07-20
dc.identifier.citationCOSTA, Raissa Marielle Ferreira da. Valorização das cascas de pitaya vermelha: caracterização da farinha obtida em diferentes temperaturas e aplicações em biscoitos amanteigados. Orientador: Dyego da Costa Santos. 2026. 39 f. Trabalho de Conclusão de Curso (Graduação em Agroindústria) – Instituto Federal de Educação, Ciência e Tecnologia do Rio Grande do Norte, Pau dos Ferros, 2026.pt_BR
dc.identifier.urihttp://memoria.ifrn.edu.br/handle/1044/3288
dc.description.abstractPitaya processing generates large quantities of peels that are usually discarded. To add value to this waste product, it can be transformed into flour via convective drying and used as an ingredient in bakery products. In this context, the study aimed to characterize a mass of dried pitaya peel dehydrated by convection at different temperatures and to use it in the production of butter cookies. The byproduct was dehydrated at 70, 80, and 90 °C for subsequent physicochemical characterization. Based on the results, the best sample was incorporated into the cookies at proportions of 0%, 3%, 6%, and 9%, which were then subjected to nutritional evaluation. Increasing the drying temperature significantly reduced (p<0.05) moisture content, thereby enhancing stability and concentrating various constituents of the waste. Drying at 80 °C resulted in the highest ascorbic acid retention and the best overall physicochemical characteristics, leading to its selection for cookie production. In the cookies, the addition of the flour increased mineral and carbohydrate content but reduced lipid and protein levels as well as caloric value. Furthermore, increasing the proportion of the waste intensified browning and imparted slightly reddish tones to the cookies. The results indicate that pitaya peel flour is a viable ingredient for producing shortbread cookies with improved nutritional quality.pt_BR
dc.description.sponsorshipCNPqpt_BR
dc.languageporpt_BR
dc.publisherInstituto Federal de Educação, Ciência e Tecnologia do Rio Grande do Nortept_BR
dc.rightsAcesso Abertopt_BR
dc.subjectHylocereus polyrhizuspt_BR
dc.subjectAproveitamento agroindustrialpt_BR
dc.subjectDesidratação convectivapt_BR
dc.subjectBiscoito amanteigadopt_BR
dc.subjectAgro-industrial utilizationpt_BR
dc.subjectConvective dryingpt_BR
dc.subjectButter cookiept_BR
dc.titleVALORIZAÇÃO DAS CASCAS DE PITAYA VERMELHA: CARACTERIZAÇÃO DA FARINHA OBTIDA EM DIFERENTES TEMPERATURAS E APLICAÇÃO EM BISCOITOS AMANTEIGADOSpt_BR
dc.typeTrabalho de Conclusão de Cursopt_BR
dc.creator.Latteshttp://lattes.cnpq.br/8127478991617620pt_BR
dc.contributor.advisor1Santos, Dyego da Costa
dc.contributor.advisor1Latteshttp://lattes.cnpq.br/0152993913229076pt_BR
dc.contributor.advisor-co1Oliveira, Emanuel Neto Alves de
dc.contributor.advisor-co1Latteshttp://lattes.cnpq.br/8785951951414869pt_BR
dc.contributor.referee1Santos, Dyego da Costa
dc.contributor.referee1Latteshttp://lattes.cnpq.br/0152993913229076pt_BR
dc.contributor.referee2Oliveira, Emanuel Neto Alves de
dc.contributor.referee2Latteshttp://lattes.cnpq.br/8785951951414869pt_BR
dc.contributor.referee3Oliveira, Gleison Silva
dc.contributor.referee3Latteshttp://lattes.cnpq.br/6955385499342071pt_BR
dc.contributor.referee4Alves, Jânio Eduardo de Araújo
dc.contributor.referee4Latteshttp://lattes.cnpq.br/4760647645649145pt_BR
dc.publisher.countryBrasilpt_BR
dc.publisher.departmentPau dos Ferrospt_BR
dc.publisher.initialsIFRNpt_BR
dc.subject.cnpqCNPQ::CIÊNCIAS AGRÁRIAS::CIÊNCIA E TECNOLOGIA DE ALIMENTOSpt_BR
dc.description.resumoO processamento da pitaya gera grandes quantidades de cascas que, na maioria das vezes, são descartadas. Com o intuito de agregar valor a esse resíduo, ele pode ser transformado em farinha por secagem convectiva e utilizado como insumo em produtos de panificação. Nessa perspectiva, objetivou-se caracterizar a pasta de casca de pitaya vermelha desidratada por convecção em diferentes temperaturas, bem como aplicá-la no processamento de biscoitos amanteigados. O subproduto foi desidratado nas temperaturas de 70, 80 e 90 °C para posterior caracterização físico-química. Com base nos resultados, a melhor amostra foi incorporada aos biscoitos nas proporções de 0, 3, 6 e 9%, os quais passam por avaliação nutricional. O aumento da temperatura de secagem reduziu significativamente (p<0,05) a umidade, o que elevou a estabilidade e concentrou diversos constituintes do resíduo. A secagem a 80 °C proporcionou a maior retenção de ácido ascórbico e o melhor conjunto de características físico-químicas, sendo selecionada para a aplicação no processado dos biscoitos. Nestes, a adição da farinha promoveu o enriquecimento mineral e de carboidratos, mas reduziu os teores de lipídeos, proteínas e o valor energético. Além disso, o aumento da proporção do resíduo intensificou o escurecimento e conferiu tons levemente avermelhados aos biscoitos. Os resultados permitem concluir que a farinha da casca de pitaya é um ingrediente viável para o processamento de biscoitos amanteigados com melhor qualidade nutricional.pt_BR
dc.relation.referencesAKTER, Z.; MAHIN, M. I.; MREDUL, A. R. Effects of incorporating dragon fruit peel powder into cookies on their nutritional composition, microbial quality, and sensory properties. Food Agricultural Sciences and Technology, v.11, n.3, p.257-271, 2025. https://doi.org/10.14456/fast.20 25.1 ALBUQUERQUE JUNIOR, N. M.; SILVA, W. P.; LIMA, D. A.; SILVA, R. S.; MOURA, H. V.; SILVA, A. P. F.; CARVALHO, R. O.; ANDRADE, F. S.; AMADEU, L. T. S. Thermodynamic, bioactive, and antioxidant potential of green acerola residue as influenced by convective drying. Journal of Thermal Analysis and Calorimetry, v.150, n.7, p.5213-5226, 2025. https://doi.org/10.1007/s10973-025-14057-3 ALIBAS, I.; IPEK, S. S. Effects of major drying methods on the stability and retention of vitamin C, B group vitamins, fat-soluble vitamins, and carotenoids in kiwifruits. Journal of Food Composition and Analysis, v.150, p.108880, 2026. https://doi.org/10.1016/j.jfca.2026.108880 AOAC. Association of Official Analytical Chemists. Official Methods of Analysis. USA, 14a ed, Arlington, 1997. 1041p. AOAC. Association of Official Analytical Chemists. Official Methods of Analysis. USA, 18a ed, 3ª Review, Washington, 2010. 1094p. ARAÚJO, K. T. A.; QUEIROZ, A. J. M.; FIGUEIRÊDO, R. M. F.; SILVA, R. C.; SARAIVA, M. M. T.; GOMES, J. P.; SILVA, W. P. Germinated melon seed flours: Physical and physicochemical characteristics, bioactive compounds and technological properties. Journal of Food Measurement and Characterization, v.19, n.1, p.467-479, 2025. https://doi.org/10.1007/s11694-024-02982-0 BAKAR, J.; EE, S.C.; MUHAMMAD, K.; HASHIM, D. M.; ADZAHAN, N. Spray-drying optimization for red pitaya peel (Hylocereus polyrhizus). Food and Bioprocess Technology, v.6, p.1332-1342, 2013. https://doi.org/10.1007/s11947-012-0842-5 BELKHIR, S.; ABDESSEMED, D.; REFAS, I. Impact of drying methods on physicochemical properties, bioactive content, and antioxidant activity of Opuntia ficus-indica fruits. Journal of Food Quality and Hazards Control, v.12, p.46-60, 2025. https://doi.org/10.18502/jfqhc.12.1.18366 BENASSI, M. T.; ANTUNES, A. J. A. Comparison of meta-phosphoric and oxalic acids as extractant solutions for determination of vitamin C in selected vegetables. Arquivos de Biologia e Tecnologia, v.31, n.4, p.507-503, 1998. BISWAS, M.; ALAM, M.; AKHTARUZZAMAN, MD.; AHMED, S.; UDDIN, M. S.; TALUKDER, A. R.; ALAM, A.; BISWAS, B. Valorization of red dragon fruit peel (Hylocereus polyrhizus) as a functional ingredient for fortified biscuits: Physicochemical, nutritional, and sensory implications. Future Foods, v.12, p.100768, 2025. https://doi.org/10.1016/j.fufo.2025.100768 BOBBIO, P. A.; BOBBIO, F. O. Introdução à química de alimentos. 3. ed. São Paulo: Varela, 2003. 238p. BRASIL. Ministério da Saúde. Agência Nacional de Vigilância Sanitária. Resolução RDC n° 54, de 12 de novembro de 2012. Dispõe sobre o regulamento técnico sobre informação nutricional complementar. Diário Oficial da União, Brasília, DF, 2012. BRASIL. Ministério da Saúde. Agência Nacional de Vigilância Sanitária. Instrução Normativa Nº 75, de 8 de outubro de 2020. Estabelece os requisitos técnicos para declaração da rotulagem nutricional nos alimentos embalados. Diário Oficial da União, Brasília, DF, 2020. BRASIL. Ministério da Saúde. Instrução Normativa Nº 75, de 8 de outubro de 2020. Estabelece os requisitos técnicos para declaração da rotulagem nutricional nos alimentos embalados. Diário Oficial da União, 2020. CHAIWONG, N.; PHIMOLSIRIPOL, Y.; GAVAHIAN, M. Emerging thermal and non-thermal technologies and their integrations to innovate Maillard reactions in sustainable food processing: Comparative analysis, challenges, and research needs. Trends in Food Science & Technology, v.172, p.105727, 2026. https://doi.org/10.1016/j.tifs.2026.105727 CHAN, A. C.; MOKHTAR, S. U.; HONG, P. K. A systematic review on the determination and analytical methods for furanic compounds in caramel models. Journal of Food Science and Technology, v.62, n.11, p.1999-2012, 2025. https://doi.org/10.1007/s13197-025-06419-4 CHEN, C.; XIE, F.; SHAH, K.; HUA, Q.; CHEN, J.; ZHANG, Z.; ZHAO, J.; HU, G.; QIN, Y. Genome-wide identification of WRKY Gene family in pitaya reveals the involvement of HmoWRKY42 in betalain biosynthesis. International Journal of Molecular Sciences, v.23, n.18, p.10568, 2022. https://doi.org/10.3390/ijms231810568 CHEN, R.; LUO, S.; WANG, C.; BAI, H.; LU, J.; TIAN, L.; GAO, M.; WU, J.; BAI, C.; SUN, H. Effects of ultra-high pressure enzyme extraction on characteristics and functional properties of red pitaya (Hylocereus polyrhizus) peel pectic polysaccharides. Food Hydrocolloids, v.121, n.1, p.1-14, 2021. CHOUDHARY, A.; SINGH, J.; SOOD, M. Waste utilization of mango peel as powder into biscuits using oat and wheat flour. Plant Archives, v.23, n.2, p.149-157, 2023. https://doi.org/10.51470/PLANTARCHIVES.2023.v23.no2.025 EJAZ, U.; ALI, T. M.; IMAM, S.; SHAHABUDDIN, S.; ALI, H.; SOHAIL, M. Transforming banana peel waste into functional cookies: A comprehensive evaluation. Journal of Food Measurement and Characterization, 2026. https://doi.org/10.1007/s11694-026-04584-4 ESQUIVEL, P.; STINTZING, F. C.; CARLE, R. Phenolic compound profiles and their corresponding antioxidant capacity of purple pitaya (Hylocereus sp.) genotypes. Zeitschrift für Naturforschung C, v.62, n.9-10, p.636-644, 2007. https://doi.org/10.1515/znc-2007-9-1003 FATHIMAH, R. N.; HERBERG, J.; MAJCHRZAK, T. Impact of extended wort cooking on the formation of volatile Maillard reaction products in jopejskie beer (Jopenbier). Food Chemistry, v.519, p.149372, 2026. https://doi.org/10.1016/j.foodchem.2026.149372 FERREIRA, M. D. (Ed.). Instrumentação pós-colheita em frutas e hortaliças. Brasília, DF: Embrapa, 2017. 284p. FRANCO, B. D. G. M.; LANDGRAF, M. Microbiologia dos alimentos. São Paulo: Atheneu, 2008. 196p. GALINDO-CORONA, C. E.; MARTINEZ-MEDINA, G. A.; GÓMEZ-GARCÍA, R.; HERNÁNDEZ-ALMANZA, A. Y.; MEZA-VELÁZQUEZ, J. A.; QUINTANA-BURCIAGA, M. L.; MESTA-CORRAL, M.; TORRES-LEÓN, C.; RAMÍREZ-GUZMÁN, N. Grape pomace flour as a sustainable ingredient in cookie formulation for fiber, free, and bound phenols improvement. Processes, v.14, n.3, p.410, 2026. https://doi.org/10.3390/pr14030410 HACHEM, H.; TOUATI, J.; MIHOUBI, D. Thermal and energy analysis of intermittent strawberry drying. Heat and Mass Transfer, v.62, n.5, p.44, 2026. https://doi.org/10.1007/s00231-026-03675-8 HE, N.; XIA, M.; ZHANG, X.; HE, M.; LI, L.; LI, B. Quality attributes and functional properties of whole wheat bread baked from frozen dough with the addition of enzymes and hydrocolloids. Journal of the Science of Food and Agriculture, v.104, n.4, p.1928-1941, 2024. https://doi.org/10.1002/jsfa.13077 HU, D.; LIU, X.; QIN, Y.; YAN, J.; LI, R.; YANG, Q. The impact of different drying methods on the physical properties, bioactive components, antioxidant capacity, volatile components and industrial application of coffee peel. Food Chemistry: X, v.19, p.100807, 2023. https://doi.org/10.1016/j.fochx.2023.100807 IAL. Instituto Adolfo Lutz. Normas analíticas, métodos químicos e físicos para análises de alimentos. 4ª ed., 1ª ed. Digital, São Paulo: IAL, 2008. 1020p. JA’AFAR, H.; QUAN, T. H.; SEOW, E. K. Impact of mango kernel flour incorporation on the physicochemical and sensory properties of balady flatbread. Exploration of Foods and Foodomics, v.4, p.1010113, 2026. https://doi.org/10.37349/eff.2026.1010113 JAMILAH, B.; SHU, C. E.; KHARIDAH, M.; DZULKIFLY, M. A.; NORANIZAN, A. Physico-chemical characteristics of red pitaya (Hylocereus polyrhizus) peel. International Food Research Journal, v.18, p.279-286, 2011. JIANG, H.; ZHANG, W.; LI, X.; SHU, C.; JIANG, W.; CAO, J. Nutrition, phytochemical profile, bioactivities and applications in food industry of pitaya (Hylocereus spp.) peels: A comprehensive review. Trends in Food Science & Technology, v.116, p.199-217, 2021. https://doi.org/10.1016/j.tifs.2021.06.040 JIDEANI, V. A.; MPOTOKWANA, S. M. Modeling of water absorption of botswana bambara varieties using Peleg's equation. Journal of Food Engineering, v.92, n.2, p.182-188, 2009. https://doi.org/10.1016/j.jfoodeng.2008.10.040 JOSE, M.; HIMASHREE, P.; SENGAR, A. S.; SUNIL, C. K. Valorization of food industry by-product (pineapple pomace): A study to evaluate its effect on physicochemical and textural properties of developed cookies. Measurement: Food, v.6, p.100031, 2022. https://doi.org/10.1016/j.meafoo.2022.100031 KABA, B.; YIKILKAN, Y.; PASHAZADEH, H.; ALI REDHA, A.; KOCA, I. Production of cornelian cherry (Cornus mas L.) pulp powder by foam-mat drying: Analysis of physicochemical and antioxidant properties. Biomass Conversion and Biorefinery, v.15, n.3, p.3663-3678, 2025. https://doi.org/10.1007/s13399-023-05234-1 KAMAL, M. M.; CHOWDHURY, M. G. F.; SHISHIR, M. R. I.; SABUZ, A. A.; ISLAM, M. M.; KHAN, M. H. H. Impacts of drying on physicochemical properties, bioactive compounds, antioxidant capacity, and microstructure of jackfruit seed flour. Biomass Conversion and Biorefinery, v.14, n.23, p.29337-29352, 2024. https://doi.org/10.1007/s13399-023-04763-z KANG, S.; JIANG, S.; WANG, M.; WANG, Z.; DING, Y.; YANG, Z.; WEI, S.; TANG, H. Mecanismo molecular da formação da cor da casca da pitaya com base na análise combinada do transcriptoma e do metaboloma. Plantas Tropicais, v.5, p.e016, 2026. https://doi.org/10.48130/tp-0026-0013 KAUSAR, T.; SAEED, E.; HUSSAIN, A.; FIRDOUS, N.; BIBI, B.; KABIR, K.; UL AN, Q.; ALI, M. Q.; NAJAM, A.; AHMED, A.; YAQUB, S.; ELKHEDIR, A. E. Development and quality evaluation of cookies enriched with various levels of grapefruit pomace powder. Discover Food, v.4, n.1, p.65, 2024. https://doi.org/10.1007/s44187-024-00148-x KIANI, A. K.; DHULI, K.; DONATO, K.; AQUILANTI, B.; VELLUTI, V.; MATERA, G.; IACONELLI, A.; CONNELLY, S. T.; BELLINATO, F.; GISONDI, P.; BERTELLI, M. Main nutritional deficiencies. Journal of Preventive Medicine and Hygiene, v.63 n.2S3, p.E93-E101, 2022. https://doi.org/10.15167/2421-4248/JPMH2022.63.2S3.2752 KRAJEWSKA, A.; DZIKI, D. Enrichment of cookies with fruits and their by-products: Chemical composition, antioxidant properties, and sensory changes. Molecules, v.28, n.10, p.4005, 2023b. https://doi.org/10.3390/molecules28104005 KRAJEWSKA, A.; DZIKI, D. Physical properties of shortbread biscuits enriched with dried and powdered fruit and their by-products: A review. International Agrophysics, v.37, n.3, p.245-264, 2023a. https://doi.org/10.31545/intagr/165803 LEAL-ALCAZAR, M. C.; BAUTISTA-PALESTINA, F.; ROCHA-PIZAÑA, M. D. R.; MOJICA, L.; HERNÁNDEZ-ÁLVAREZ, A. J.; LUNA-VITAL, D. A. Extraction, stabilization, and health application of betalains: An update. Food Chemistry, v.481, p.144011, 2025. https://doi.org/10.1016/j.foodchem.2025.144011 LEE, J.; ROUX, S.; ROUX, E. L.; KELLER, S.; REGA, B.; BONAZZI, C. Unravelling caramelization and Maillard reactions in glucose and glucose + leucine model cakes: Formation and degradation kinetics of precursors, α-dicarbonyl intermediates and furanic compounds during baking. Food Chemistry, v.376, p.131917, 2022. https://doi.org/10.1016/j.foodchem.2021.131917 LEITE, D. D. F.; FIGUEIRÊDO, R. M. F.; QUEIROZ, A. J. M.; LIMA, L. S. L.; PAIVA, Y. F.; SANTOS, D. C.; SILVA, S. N.; SANTOS SILVA, R.; C. COSTA, C. Citron melon peel flours: Drying kinetics and physicochemical evaluation. Notulae Botanicae Horti Agrobotanici Cluj-Napoca, v.51, n.1, p.12833, 2023. https://doi.org/10.15835/nbha51112833 LIAO, H.; ZHU, W.; ZHONG, K.; LIU, Y. Evaluation of colour stability of clear red pitaya juice treated by thermosonication. LWT - Food Science and Technology, v.121, 108997, p.2020. https://doi.org/10.1016/j.lwt.2019.108997 LIMA, T. L. B.; FIGUEIRÊDO, R. M. F.; QUEIROZ, A. J. M.; SANTOS, F. S.; FERREIRA, J. P. L.; PAIVA, Y. F.; SANTOS, N. C.; MADRUGA, M. S.; SANTOS, D. C.; GOMES, J. P.; CARVALHO, A. J. B. A.; LIMA, M. D. S. Thermal processing as a key to valorizing yellow and sweet passion fruit peels: Impact of temperature on nutritional attributes, bioactive retention, and antioxidant capacity. Waste and Biomass Valorization, v.17, n.4, p.1973-1987, 2026. https://doi.org/10.1007/s12649-025-03226-y LIN, X.; LI, B.; WEN, J.; WU, J.; TANG, D.; YU, Y.; XU, Y.; XU, B. Storage stability and in vitro bioaccessibility of liposomal betacyanins from red pitaya (Hylocereus polyrhizus). Molecules, v.27, n.4, p.1193, 2022. https://doi.org/10.3390/molecules27041193 LIU, Y.; MU, X.; WANG, H.; WANG, M.; ZHANG, L.; CHEN, G.; WANG, S. Extraction of betalaine from red pitaya peel using deep eutectic solvent and its research in films. Food and Bioproducts Processing, v.149, p.16-24, 2025. https://doi.org/10.1016/j.fbp.2024.11.005 LIU, Y.; TU, X.; LIN, L.; DU, L.; FENG, X. Analysis of lipids in pitaya seed oil by ultra-performance liquid chromatography–time-of-flight tandem mass spectrometry. Foods, v.11, n.19, p.2988, 2022. https://doi.org/10.3390/foods11192988 LODI, K. Z.; ROTINI, A. C. F. L.; RICHETTI, B.; CASSINI, C.; BRIDI, R.; BRANCO, C. S. Valorization of pitaya (Selenicereus monacanthus) peels: Proof of concept for food formulation. Plant Foods for Human Nutrition, v.81, n.2, p.58, 2026. https://doi.org/10.1007/s11130-026-01507-y MACHADO, F. G. A. Densidades de plantio e ciclos de cultivo na produção e qualidade de frutos e fenologia reprodutiva da pitaia vermelha. 2019. 97 f. Tese (Doutorado em Agronomia/Fitotecnia) - Universidade Federal do Ceará, Fortaleza, 2019. MAKHZANGY, A. E.; HUSSEIN, A. M.; NEHAD, A.; A, E.-S. tilization of tomato pomace and orange peel powders with wheat flour for the production of biscuits. Mathews Journal of Nutrition & Dietetics, v.7, n.3, p.1-12, 2024. https://doi.org/10.30654/MJND.10039 MALLEK‐AYADI, S.; BAHLOUL, N. Improvement of rheological, textural and sensorial properties of dough and enriched cakes by addition of cucumis melo L. peels powder. Food Science & Nutrition, v.14, n.6, p.e71313, 2026. https://doi.org/10.1002/fsn3.71313 MANÇANO, L. F.; MARTINS, E. M. F.; BAPTESTINI, F. M.; OLIVEIRA, G. H. H. D. Mathematical modeling and physicochemical characterization of foam-mat drying of acerola (Malpighia emarginata) pulp. Foods, v.15, n.3, p.492, 2026. https://doi.org/10.3390/foods15030492 MARTÍNEZ-GIRALDO, J.; ROA-ACOSTA, D. F.; AGUDELO-LAVERDE, L. M. Physicochemical, thermal, and structural properties of cocoa pod husk: An analysis of the convective drying effect as a valorization strategy. Frontiers in Sustainable Food Systems, v.10, p.1764336, 2026. https://doi.org/10.3389/fsufs.2026.1764336 MARTÍNEZ‐RAMOS, A. R.; ABADÍA‐GARCÍA, L.; MENDOZA, S.; ALONZO‐MACÍAS, M.; CARDADOR‐MARTÍNEZ, A.; AMAYA‐LLANO, S. L. Instant controlled pressure drop‐assisted extraction of betalains from dragon fruit (Hylocereus undatus) peel. Journal of Food Process Engineering, v.49, n.3, p.e70395, 2026. https://doi.org/10.1111/jfpe.70395 MIERZWA, D.; ZEMBRZUSKA, J.; KOLIMECZKOW, K.; MISIAK, P.; MUSIELAK, G. Convective drying of apple peel as a preservation procedure in fruit waste valorization. Applied Sciences, v.16, n.11, p.5622 2026. https://doi.org/10.3390/app16115622 MIESZCZAKOWSKA-FRĄC, M.; CELEJEWSKA, K.; PŁOCHARSKI, W. Impact of innovative technologies on the content of vitamin c and its bioavailability from processed fruit and vegetable products. Antioxidants, v.10, n.1, p.54, 2021. https://doi.org/10.3390/antiox10010054 NGA, T. T. H.; THUY, N. T.; CONG, L. T. N.; VAN, N. N. K Bio-activities and application of avocado seed powder in soft biscuits. VNU Journal of Science: Natural Sciences and Technology, v.42, n.2, p.18-28, 2026. https://doi.org/10.25073/2588-1140/vnunst.5807 NWOSU, A. N.; NWEZE, B. C.; ONWUCHEKWA, A. I. Chemical composition of biscuits supplemented with orange peel and pulp flours. Agro-Science, v.21, n.2, p.24-32, 2022. https://doi.org/10.4314/as.v21i2.3 OLIVEIRA, G.; LIMA COSTA, I. H.; LIMA, M. S.; DANTAS, A. M.; DIAS, A. R. G.; BORGES, G. S. C. Pitaya (Hylocereus polyrhizus) peel powder: A source of pigments, phenolic and antioxidants activity for use in food hydrocolloids. Food Bioscience, v.68, p.106512, 2025. https://doi.org/10.1016/j.fbio.2025.106512 PAIVA, Y. F.; FIGUEIRÊDO, R. M. F.; QUEIROZ, A. J. M.; AMADEU, L. T. S.; REIS, C. G.; SANTOS, F. S.; LIMA, A. G. B.; SILVA, W. P.; GOMES, J. P.; LEITE, D. D. F.; LIMA, T. L. B. Tropical red fruit blend foam mat drying: Effect of combination of additives and drying temperatures. Foods, v.12, n.13, p.2508, 2023. https://doi.org/10.3390/foods12132508 PARAMITASARI, D.; PRAMANA, Y. S.; PUDJIANTO, K.; MUSA, M.; PUTRA, O. N.; SUPRIYANTI, A.; YASSAROH, Y.; RUSTIATY, B. Transforming banana peel waste into fiber-enriched biscuits with reduced glycemic index: A sustainable approach. IOP Conference Series: Earth and Environmental Science, v.1584, n.1, p.012094, 2026. https://doi.org/10.1088/1755-1315/1584/1/012094 POTTER, N. N.; HOTCHKISS, J. H. Food Science. 5th ed. New York: Springer, 1995. 608p. https://doi.org/10.1007/978-1-4615-4985-7 QI, T.; SONG, Y.; HE, X.; YANG, S.; REN, J.; PAN, S.; FAN, G.; LI, Z.; HU, Z. Non‐enzymatic browning kinetics and browning factor path analysis of navel orange peel fillings under different sterilization and storage conditions. Journal of the Science of Food and Agriculture, v.106, n.10, p.5851-5867, 2026. https://doi.org/10.1002/jsfa.70649 QIN, Y.; LIU, Y.; ZHANG, X.; LIU, J. Development of active and intelligent packaging by incorporating betalains from red pitaya (Hylocereus polyrhizus) peel into starch/polyvinyl alcohol films. Food Hydrocolloids, v.100, p.105410, 2020. https://doi.org/10.1016/j.foodhyd.2019.105410 RAMASHIA, S. E.; NTSANWISI, M. D.; ONIPE, O. O.; MASHAU, M. E.; OLAMITI, G. Nutritional, functional, and microbial quality of wheat biscuits enriched with malted pearl millet and orange peel flours. Food Science & Nutrition, v.12, n.12, p.10477-10493, 2024. https://doi.org/10.1002/fsn3.4562 REIS, C. G.; FIGUEIRÊDO, R. M. F.; QUEIROZ, A. J. M.; PAIVA, Y. F.; AMADEU, L. T. S.; SANTOS, F. S.; FERREIRA, J. P. L.; LIMA, T. L. B.; ANDRADE, F. S.; GOMES, J. P.; SILVA, W. P.; SANTOS, D. C. Pineapple peel flours: Drying kinetics, thermodynamic properties, and physicochemical characterization. Processes, v.11, n.11, p.3161, 2023. https://doi.org/10.3390/pr11113161 REIS, R. C.; VIANA, E. S.; SILVA, S. C. S.; MAMEDE, M. E. O.; ARAÚJO, I. M. S. Stability and sensory quality of dried papaya. Food and Nutrition Sciences, v. 9, n. 5, p. 489-501, 2018. https://doi.org/10.4236/fns.2018.95038 RORIZ, C. L.; HELENO, S. A.; ALVES, M. J.; OLIVEIRA, M. B. P. P.; PINELA, J.; DIAS, M. I.; CALHELHA, R. C.; MORALES, P.; FERREIRA, I. C. F. R.; BARROS, L. Red pitaya (Hylocereus costaricensis) peel as a source of valuable molecules: Extraction optimization to recover natural colouring agents. Food Chemistry, 372, 131344, 2022. https://doi.org/10.1016/j.foodchem.2021.131344 RUDY, S.; DZIKI, D.; BIERNACKA, B.; POLAK, R.; KRZYKOWSKI, A.; DOMIN, M.; RUDZKI, G.; KACHEL-GÓRECKA, M. Drying kinetics and physicochemical characteristics of dehydrated jerusalem artichoke (Helianthus tuberosus L.). Processes, v.13, n.8, p.2553, 2025. https://doi.org/10.3390/pr13082553 RUMICHA, T. D.; HIRKO, F.; FORSIDO, S. F.; TOLA, Y. B.; YIMER, A.; KUYU, C. G.; TEKA, T. A.; HAILU, A. Drying temperature and storage duration for the retention of bioactive compounds of selected wild edible plants from ethiopia. Food Science & Nutrition, v.13, n.8, p.e70782, 2025. https://doi.org/10.1002/fsn3.70782 SANTOS, A. L. Efeito da radiação gama nas características físico-químicas e compostos bioativos da farinha da casca de pitaya vermelha (Hylocereus costaricensis). 2020. 64 f. Dissertação (Mestrado em Ciência e Tecnologia de Alimentos) - Universidade Federal do Tocantins, Palmas, 2020. SANTOS, N. C.; ALMEIDA, R. L. J.; PEREIRA, T. S.; QUEIROGA, A. P. R.; SILVA, V. M. A.; AMARAL, D. S.; ALMEIDA, R. D.; RIBEIRO, V. H. A.; BARROS, E. R.; SILVA, L. R. I. Mathematical modeling applied to the drying kinetics of pitomba bark (Talisia esculenta). Research, Society and Development, v.9, n.2, p.e46921986, 2020. https://doi.org/10.33448/rsd-v9i2.1986 SAYEM, A. S. M.; TALUKDER, S.; AKTER, S. S.; ALAM, M.; RANA, MD. R.; ALAM, M. M. Utilization of fruits and vegetables wastes for the dietary fiber enrichment of biscuits and its quality attributes. Journal of Agriculture and Food Research, v.15, p.101077, 2024. https://doi.org/10.1016/j.jafr.2024.101077 SELLAMI, D.; HACHEM, H.; KOOLI, S.; SELMANI, L.; MIHOUBI, D. Drying kinetics and quality assessment of lemon peel using convective and infrared methods. Journal of Food Process Engineering, v.49, n.3, p.e70429, 2026. https://doi.org/10.1111/jfpe.70429 SILVA, A. B. S.; SILVA, E. G.; RIGO, L.; OLIVEIRA, M. P.; LOSS, R. A.; GUEDES, S. F.; PAULA, J. M.; GERALDI, C. A. Q. Techniques of drying fruits: A review. Scientific Electronic Archives, v.14, n.10, p.85-105, 2021. https://doi.org/10.36560/141020211424 SILVA, J. S.; ORTIZ, D. W.; GARCIA, L. G. C.; ASQUIERI, E. R.; BECKER, F. S.; DAMIANI, C. Effect of drying on nutritional composition, antioxidant capacity and bioactive compounds of fruits co-products. Food Science and Technology, v.40, n.4, p.810-816, 2020. https://doi.org/10.1590/fst.21419 SILVA, J. V. M.; MACHADO, A. M. R.; BASEGGIO, A. M.; CHISTÉ, R. C.; MARIUTTI, L. R. B. Sustainable valorization of peach palm (Bactris gasipaes kunth) peel flour to improve nutritional properties and carotenoid bioaccessibility in gluten-free cookies. Sustainable Food Technology, v.4, n.3, p.2657-2667, 2026. https://doi.org/10.1039/D5FB00751H SONKAR, N.; MOBIN, S. A.; SONKAR, C. Studies on effects of drying methods on quality characteristics of tomato pulp leather. BIO Web of Conferences, v.178, p.03002, 2025. https://doi.org/10.1051/bioconf/202517803002 SU, J.; XIONG, X.; XU, X.; WANG, Y.; CAO, X. The impact of nonthermal pretreatment methods on the drying of fruits and vegetables. Comprehensive Reviews in Food Science and Food Safety, v.25, n.3, p.e70488, 2026. https://doi.org/10.1111/1541-4337.70488 TEPE, F. B.; TEPE, T. K. Comparative study of refractance window and hot air drying of apple pomace: Kinetics, modeling, and utilization in pancakes. Journal of Food Process Engineering, v.49, n.3, p.e70431, 2026. https://doi.org/10.1111/jfpe.70431 VAILLANT, F.; PÉREZ, A.; DAVILA, I.; DORNIER, M.; REYNES, M. Colorant and antioxidant properties of red-purple pitahaya (Hylocereus sp.). Fruits, v. 60, n. 1, p. 3-12, 2005. https://doi.org/10.1051/fruits:2005007 WANDERLEY, R. D. O. S.; FIGUEIRÊDO, R. M. F.; QUEIROZ, A. J. M.; SANTOS, F. S.; PAIVA, Y. F.; FERREIRA, J. P. L.; LIMA, A. G. B.; GOMES, J. P.; COSTA, C. C.; SILVA, W. P.; SANTOS, D. C.; MARACAJÁ, P. B. The temperature influence on drying kinetics and physico-chemical properties of pomegranate peels and seeds. Foods, v.12, n.2, p.286, 2023. https://doi.org/10.3390/foods12020286 WEI, L.; LI, P.; LIU, Y.; XIE, Y. Effects of drying methods, temperature, and initial moisture content on drying characteristics, nutritional quality, texture, and oxidative stability of peanuts. Foods, v.15, n.7, p.1248, 2026. https://doi.org/10.3390/foods15071248 WU, Z.; DENG, H.; LIANG, G.; YE, X.; QIN, Y.; HUANG, L. Construction of a high-density genetic map for pitaya using the whole genome resequencing approach. Horticulturae, v.7, n.12, p.534, 2021. https://doi.org/10.3390/horticulturae7120534 XIANG, J.; CHEN, S.; TAN, S. A comprehensive review of the Maillard reaction in solid pharmaceutical dosage forms: A focus on lactose. Expert Opinion on Drug Delivery, v.23, n.4, p.697-716, 2026. https://doi.org/10.1080/17425247.2026.2613921 XIE, F.; CHEN, C.; CHEN, J.; YUAN, Y.; HUA, Q.; ZHANG, Z.; ZHAO, J.; HU, G.; CHEN, J.; QIN, Y. Metabolic profiling of sugars and organic acids, and expression analyses of metabolism-associated genes in two yellow-peel pitaya species. Plants, v.11, n.5, p.694, 2022. https://doi.org/10.3390/plants11050694 YIKILKAN, Y.; ALI REDHA, A.; KABA, B.; PASAZADEH, H.; KOCA, I. Production of chokeberry pulp powder by convective and freeze-drying foam-mat techniques: Effects on physicochemical properties, bioactive content, and antioxidant activity. Sustainable Food Technology, v.3, n.5, p.1329-1340, 2025. https://doi.org/10.1039/D5FB00150Apt_BR


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