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移動式葉綠素?zé)晒獬上裣到y(tǒng)

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移動式葉綠素?zé)晒獬上裣到y(tǒng)PlantExplorerXS是由慧諾瑞德和荷蘭PhenoVation公司聯(lián)合推出的專門針對大田、溫室、氣候室和實(shí)驗(yàn)室場景的可以移動的葉綠素?zé)晒鉁y量系統(tǒng)

詳細(xì)信息 在線詢價(jià)

 

移動式葉綠素?zé)晒獬上裣到y(tǒng)PlantExplorerXS是由慧諾瑞德和荷蘭PhenoVation公司聯(lián)合推出的專門針對大田、溫室、氣候室和實(shí)驗(yàn)室場景的可以移動的葉綠素?zé)晒鉁y量系統(tǒng)。配備移動式升降平臺車、內(nèi)置電腦的葉綠素?zé)晒獬上駟卧?、移動電源、顯示單元和操作單元。葉綠素?zé)晒獬上駟卧梢陨岛托D(zhuǎn),既可以測量不同高度的植物冠層,也可以傾斜或水平角度測量穗(麥穗、稻穗、谷穗等)、莢果(大豆、油菜等)、果實(shí)(番茄、黃瓜、葡萄、柑橘等)、葉片或冠層。

 

該系統(tǒng)成像面積為18x18cm,具備500萬像素高清成像,同時(shí)具備“調(diào)制”和“非調(diào)制”葉綠素?zé)晒獬上駵y量功能,既可以測量光合生理,也可以測量形態(tài)結(jié)構(gòu),同時(shí)配備功能強(qiáng)大的控制和分析軟件,且可以對大量數(shù)據(jù)進(jìn)行批處理分析。該系統(tǒng),無論室內(nèi)還是大田,都是進(jìn)行植物表型、光合生理、植物抗逆、植物病理、育種、功能基因組、突變株篩選、種子生理/病理等研究的利器。
 

 

功能特性

  • 大田、溫室、氣候室、實(shí)驗(yàn)室進(jìn)行移動式測量
  • 葉綠素?zé)晒獬上駟卧梢陨?、旋轉(zhuǎn)
  • 葉綠素?zé)晒獬上窈捅硇头治鐾綔y量
  • 同時(shí)具備調(diào)制和非調(diào)制葉綠素?zé)晒鉁y量功能
  • 出色的高清相機(jī)(500萬像素)、高信噪比成像
  • 16位圖像格式,的成像質(zhì)量
  • 光源、相機(jī)、濾光片、電腦一體化設(shè)計(jì)
  • 無可見鏡頭畸變,無需圖像校正
  • 成像范圍18 x 18cm
  • 多種測量protocol可選,允許用戶編輯設(shè)定自己的protocol,包括但不限于Fv/Fm測量、標(biāo)準(zhǔn)誘導(dǎo)曲線測量、暗弛豫測量、OJIP快速誘導(dǎo)動力學(xué)測量等等。
  • 可進(jìn)行功能強(qiáng)大的延時(shí)成像測量
  • 自動計(jì)算熒光參數(shù)和表型參數(shù)
  • 具備圖像數(shù)據(jù)批處理分析功能
  • 提供多種功能強(qiáng)大的圖像分割功能
  • 對所有圖像數(shù)據(jù)均提供數(shù)據(jù)分級(用戶自定義范圍)并進(jìn)行圖像化顯示,并允許對分級篩選后的數(shù)據(jù)疊加到可見光圖像上展示
  • 圖像背景、偽彩色標(biāo)尺均有多種選擇
  • 允許用戶自定義多種ROI(性狀、數(shù)目、分布等)并對ROI的數(shù)據(jù)自動分析
  • 嵌入式電腦進(jìn)行精確的成像、時(shí)間控制、光強(qiáng)控制和數(shù)據(jù)存儲
  • 功能強(qiáng)大的控制和分析軟件
  • 特別適合突變株篩選、育種材料/組合篩選、抗逆研究、病理研究、種子研究、果實(shí)研究、功能基因組學(xué)等

主要技術(shù)參數(shù)

  • 基本組成:移動式升降平臺、葉綠素?zé)晒獬上駟卧?、移動電源、顯示單元、操作單元等
  • 葉綠素?zé)晒獬上穹绞剑?ldquo;調(diào)制”測量 +“費(fèi)調(diào)制”測量
  • 調(diào)制測量光:藍(lán)色LED, 450nm,半峰全寬20nm,光強(qiáng)4000 umol m-2 s-1 ,獨(dú)立觸發(fā)
  • Kautsky測量光:藍(lán)色LED, 450nm,半峰全寬20nm,光強(qiáng)4000 umol m-2 s-1
  • 飽和脈沖:藍(lán)色LED, 450nm,半峰全寬20nm,光強(qiáng)4000 umol m-2 s-1,獨(dú)立觸發(fā)
  • 時(shí)間分辨動力學(xué)光化光:紅光LED,660nm,光強(qiáng)800 umol m-2 s-1
  • 遠(yuǎn)紅光:LED,735nm,半峰全寬20nm,35W
  • 相機(jī):CMOS傳感器,500萬像素
  • 顏色深度:12bit
  • 標(biāo)準(zhǔn)幀率:37.5 FPS
  • 圖像格式:16bit
  • 相機(jī)光譜范圍:400~1000 nm
  • 接口:3個(gè)USB3.0,1個(gè)以太網(wǎng)口,1個(gè)HDMI接口
  • 嵌入式電腦:4核處理器,8G內(nèi)存,256G固態(tài)硬盤
  • 成像面積:18cm x 18cm
  • 升降高度:0-1200mm(高度可定制)
  • 旋轉(zhuǎn)角度:-90° ~ 90°
  • 顯示單元:15.6寸觸摸顯示屏
  • 供電:35萬mAh移動電源,額定容量1260Wh,峰值功耗1000W,待機(jī)功耗35W
  • 系統(tǒng)尺寸:600mm x 720mm x 2000mm(長x寬x高)

 

 

測量參數(shù)

  • 調(diào)制葉綠素?zé)晒鈪?shù):Fo、Fm、Fv/Fm、dFq/Fm=DF/Fm、Fs’、Fm’、Fo’、Fq’/Fm’=Fv’/Fm’、rETR、NPQ、Y(NO)、Y(NPQ)、qN、qP、qL、1-qP和1-qL等;
  • 非調(diào)制葉綠素?zé)晒鈪?shù):Fo、Fi、Fm、1-Fi/Fm、IC-Area、IC-Area/Fv、PI、Rfd、dRfd、RfdFm和RfdFt等;
  • 表型參數(shù):(植物、種子、果實(shí)的)數(shù)目、輪廓面積、長度、寬度、凸包點(diǎn)數(shù)、凸包面積、凸包面積/輪廓面積、最小外接圓(質(zhì)心、半徑、面積)、最小外接矩形(長、寬、面積、角度、alpha)和骨架等。

 

 

 

 

 

利用PhenoVation葉綠素?zé)晒獬上窦夹g(shù)發(fā)表的部分文獻(xiàn)

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  3. Farooq M, van Dijk A D J, Nijveen H, et al. (2021) Prior Biological Knowledge Improves Genomic Prediction of Growth-Related Traits in Arabidopsis thaliana. Frontiers in Genetics, 11:609117. doi: 10.3389/fgene.2020.609117
  4. He Y, Li Y, Yao Y et al. (2021) Overexpression of watermelon m6A methyltransferase ClMTB enhances drought tolerance in tobacco by mitigating oxidative stress and photosynthesis inhibition and modulating stress-responsive gene expression. Plant Physiology and Biochemistry, 168: 340-352.
  5. Wang W, Liu D, Qin M et al. (2021) Effects of Supplemental Lighting on Potassium Transport and Fruit Coloring of Tomatoes Grown in Hydroponics. International Journal of Molecular Sciences, 22(5): 2687 https://doi.org/10.3390/ijms
  6. Singh R R, Pajar J A, Audenaert K, et al. (2021) Induced Resistance by Ascorbate Oxidation Involves Potentiating of the Phenylpropanoid Pathway and Improved Rice Tolerance to Parasitic Nematodes. Frontiers in Plant Science, 12:713870. doi: 10.3389/fpls.2021.713870
  7. Vidak M, Lazarevic B, Petek M, et al. (2021) Multispectral Assessment of Sweet Pepper (Capsicum annuum L.) Fruit Quality Affected by Calcite Nanoparticles. Biomolecules, 11(6), 832; https://doi.org/10.3390/biom
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  9. Romero-Perez A, Ameye M, Audenaert K, et al. (2021) Overexpression of F-Box Nictaba Promotes Defense and Anthocyanin Accumulation in Arabidopsis thaliana After Pseudomonas syringae Infection. Frontiers in Plant Science, 12:692606. doi: 10.3389/fpls.2021.692606
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  20. Zhang H, Chen Y, Niu Y, Zhang X, Zhao J, Sun L, Wang H, Xiao J, Wang X. (2020) Characterization and fine mapping of a leaf yellowing mutant in common wheat. Plant Growth Regulation, https://doi.org/10.1007/s10725-020-00633-0
  21. Jin X, Zarco-Tejada P, Schmidhalter U, Reynolds M P et al. (2020) High-throughput estimation of crop traits: A review of ground and aerial phenotyping platforms. IEEE Geoscience and Remote Sensing Magazine, DOI: 10.1109/MGRS.2020.2998816
  22. Sheng X-G, Branca F, Zhao Z-Q et al. (2020) Identification of Black Rot Resistance in a Wild Brassica Species and Its Potential Transferability to Cauliflower. Argonomy, 10: 1400. doi:10.3390/agronomy
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  30. Prinzenberg A E, Viquez-Zamora M, Harbinson J, Lindhout P, van Heusden S. (2018) Chlorophyll fluorescence imaging reveals genetic variationand loci for a photosynthetic trait in diploid potato. Physiologia Plantarum, 164: 163-175.
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