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完整後設資料紀錄
DC 欄位 | 值 | 語言 |
---|---|---|
dc.contributor.advisor | 陳右人 | zh_TW |
dc.contributor.advisor | Iou-Zen Chen | en |
dc.contributor.author | 唐佳惠 | zh_TW |
dc.contributor.author | Chia-Hui Tang | en |
dc.date.accessioned | 2021-05-20T00:52:05Z | - |
dc.date.available | 2023-11-10 | - |
dc.date.copyright | 2020-08-07 | - |
dc.date.issued | 2020 | - |
dc.date.submitted | 2002-01-01 | - |
dc.identifier.citation | 第一章 參考文獻
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A new pineapple cultivar, ‘Tainung No. 23', with improved fruit quality in summer. HortScience 54:2262-2266. https://doi.org/10.21273/HORTSCI1425 2-19 | - |
dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/8323 | - |
dc.description.abstract | 摘要-果梗創口污斑(Peduncle detachment surface discoloration, PDSD)是鳳梨採收後易發生的症狀,且影響品質甚鉅。為解決鳳梨PDSD之問題,本研究探討‛台農17號’鳳梨果實於採收前或採收後採用防範措施之效果。在PDSD之影響因子探討方面,調查品種、收穫季節、果實大小和採收成熟度之影響。其次,在採前利用亞磷酸鉀水溶液(Potassium phosphite, KPhi)探討濃度、使用次數及施用方法等,對鳳梨果實外觀特性及PDSD之影響。第三部分則是針對可能適合未來栽培、生理失調程度較低的新品種之選育過程。
結果顯示,鳳梨的PDSD常於採收後3至4天顯現,之後嚴重程度迅速加重,尤其是當鳳梨果實置於室溫(25°C)下,且環境相對濕度較高時變色更快,此與微生物快速滋長可能有關。果實採收前噴灑亞磷酸鉀(KPhi)水溶液,則果實PDSD之嚴重程度可較對照者(僅噴水)大幅降低。如施用濃度達10 g·L-1,雖較早轉色,然採收當天的果實冠葉及外觀,均較其他處理者差,此結果顯示,KPhi可有效降低PDSD,但使用時需考慮濃度、施用頻率及次數。此外,PDSD與果梗基部切面內側變色(Proximal end of fruit core discoloration; PEFCD)之間呈同時增加之關係,而採前施用KPhi水溶液可減輕PDSD和PEFCD之症狀。 最後,亦調查鳳梨新品種‘台農23號’ (TNG.23,農民稱為芒果鳳梨),包括PDSD發生狀況等特性。本品種係由農業試驗所嘉義農業試驗分所,自1991年至2018年進行選育而獲得,該品種重要園藝性狀為植株矮、葉片短,適合機械化輔助管理,果實大小適中,且果實之生理失調發生率低,PDSD亦較輕微,與台灣目前廣泛栽培之品種不同,可生產果實品質佳之夏果。 | zh_TW |
dc.description.abstract | Abstract-In this study, I investigated the fruit appearance characteristics and quality changes of pineapple fruit stored at different store temperatures, and also the occurrence, development of pineapple peduncle detachment surface discoloration (PDSD). In order to solve PDSD problem of ‘Tainung No.17 (TNG.17, also known as ‘Golden Diamond’) by pre- and post- harvest treatment, different preventive measures against PDSD were treated. To begin with the understanding of causes and factors behind pineapple PDSD, I analyzed the development of PDSD of different varieties, harvest seasons, fruit sizes, and maturity stages at harvest. Then, effects on fruit appearance characteristics and PDSD were measured under different potassium phosphite (KPhi) concentration, frequency of application, and methods of application. Finally, I focused on the research of new variety ‘Tainung No.23’ (TNG.23, also known as mango pineapple) which was with less physiological disorders, and may be suitable for the future of pineapple production.
Pineapple PDSD often appeared 3 to 4 days after harvest at room temperature (25°C), and became more serious in the conditions of higher relative humidity and higher microbes growth rate. I has found out that with pre-harvest treatment of spraying KPhi, PDSD degree and index declined and significantly lower than those of fruits with water-only spraying. However, when the concentration of KPhi reached 10 g·L-1, the color change in pineapple fruit skin color was earlier, but with worse appearance of crown leaves and shells at harvest. As a result, KPhi could effectively reduce pineapple PDSD in adequate KPhi concentrations, frequency of application, and methods of application. Furthermore, percentage discoloration of proximal end of the fruit core discoloration (PEFCD) increased when PDSD increase, and both PDSD and PEFCD symptoms reduced with KPhi treatment. Last, we described the new breeding variety named ‘Tainung No.23’ was selective breedings at Chiayi Agricultural Experiment Station, Taiwan Agricultural Research Institute (CAES-TARI) pineapple breeding orchard from 1991 to 2018. This new cultivar was characterized by very short plant height, short leaf length, and suitable for management system for auxiliary mechanization operations. The fruit of ‘TNG.23’ with moderate size and less physiological disorders, and different from the current and widespread cultivars, was with good quality at harvest in summer. | en |
dc.description.provenance | Made available in DSpace on 2021-05-20T00:52:05Z (GMT). No. of bitstreams: 1 U0001-0408202022114600.pdf: 6413107 bytes, checksum: 8bbd243927b7dac9e6ae85e8207d0e37 (MD5) Previous issue date: 2020 | en |
dc.description.tableofcontents | 目錄
口試委員會審定書 0 誌謝 i 摘要 iii Abstract v 目錄 vii 第一章 前言與前人研究 1 壹、前言 3 貳、前人研究 7 一、鳳梨種源與傳播 7 二、鳳梨的發展及栽培品種之演變 8 三、鳳梨在臺灣之發展及栽培品種之演變 11 四、鳳梨栽培 21 五、鳳梨採收後處理流程及問題 27 六、鳳梨國際貿易 35 第二章 貯藏溫度與‘台農17號’鳳梨果實採收後品質變化之關係 51 摘要 53 壹、前言(Introduction) 53 貳、材料與方法 55 一、鳳梨果實貯藏試驗 55 二、鳳梨果實外觀劣變之調查 57 三、鳳梨果實品質變化之調查 60 參、結果 61 一、貯藏溫度對鳳梨果實重量變化之影響 61 二、貯藏溫度對鳳梨果實外觀之影響 62 三、貯藏溫度對果實糖酸度變化之影響 67 肆、討論 68 伍、結論 71 參考文獻 73 第三章 鳳梨果梗創口污斑原因之探討 91 摘要 93 壹、前言 93 貳、影響PDSD等級因子之探討 95 一、鳳梨果梗創口污斑調查 95 二、與鳳梨PDSD等級增加有關之果實狀況 98 三、鳳梨果梗基部離子滲漏率之測定 102 四、鳳梨果梗基部高光譜影像 103 五、鳳梨果梗內側基部微生物分離 104 參、討論 108 肆、結論 111 參考文獻 113 第四章 果梗創口污斑防護技術與果實低果梗創口污斑品種選育 137 摘要 139 壹、前言 139 貳、材料與方法 141 一、減輕鳳梨果梗創口污斑處理試驗 141 二、減輕果梗創口污斑處理後品質變化之調查 145 三、減輕果梗創口污斑處理對果實失重與糖酸之影響 146 四、貯後低果梗創口污斑品種之選育 147 參、結果 153 一、減輕‘台農17號’鳳梨果梗創口污斑之研究 153 二、低果梗創口劣變品種之選育 157 肆、討論 161 伍、結論 164 參考文獻 167 附錄 205 附錄說明 203 | - |
dc.language.iso | zh_TW | - |
dc.title | 鳳梨果梗創口污斑發生之研究 | zh_TW |
dc.title | Studies on the Occurrence of Peduncle Detachment Surface Discoloration in Pineapples | en |
dc.type | Thesis | - |
dc.date.schoolyear | 108-2 | - |
dc.description.degree | 博士 | - |
dc.contributor.oralexamcommittee | 李堂察;謝慶昌;張哲瑋;阮素芬 | zh_TW |
dc.contributor.oralexamcommittee | Tan-Cha Lee;Ching-Chang Shiesh;Jer-Way Chang;Su-Feng Roan | en |
dc.subject.keyword | 變色,採後損耗,品質劣化,鳳梨,果實貯藏,亞磷酸鉀, | zh_TW |
dc.subject.keyword | abnormal color,post-harvest losses,quality deterioration,pineapple,fruit storage,potassium phosphite, | en |
dc.relation.page | 218 | - |
dc.identifier.doi | 10.6342/NTU202002420 | - |
dc.rights.note | 同意授權(限校園內公開) | - |
dc.date.accepted | 2020-08-06 | - |
dc.contributor.author-college | 生物資源暨農學院 | - |
dc.contributor.author-dept | 園藝暨景觀學系 | - |
dc.date.embargo-lift | 2025-08-05 | - |
顯示於系所單位: | 園藝暨景觀學系 |
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