服務(wu)熱(re)線
產(chan)品(pin)展示(shi)PRODUCTS
| 產(chan)地類別(bie) | 進(jin)口(kou) |
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PlantPen葉(ye)夾(jia)式(shi)PRI&NDVI測(ce)量(liang)儀(yi)是壹(yi)種(zhong)快速測(ce)量(liang)植(zhi)物(wu)反(fan)射(she)光(guang)譜指數(shu)的(de)野外便(bian)攜(xie)式儀(yi)器。PlantPen的(de)兩(liang)種(zhong)標(biao)準(zhun)版配(pei)置分別(bie)測(ce)量(liang)NDVI和PRI這兩(liang)種(zhong)應用的(de)植(zhi)被指數(shu)。用戶也可以定(ding)制(zhi)其(qi)他參數(shu)。
PlantPen PRI 210:PRI (Photochemical Reflectance Index) 光(guang)化(hua)學反(fan)射(she)指數(shu)是(shi)通過計算(suan)植(zhi)物(wu)葉(ye)片(pian)對(dui)531nm和570nm兩(liang)個波(bo)長光(guang)反(fan)射(she)而得(de)到的(de)參數(shu)。該(gai)參(can)數(shu)對(dui)類胡(hu)蘿蔔(bu)素(su)極(ji)為(wei)敏感(gan),反(fan)應(ying)植(zhi)物(wu)的(de)光(guang)合(he)作(zuo)用中的(de)光(guang)能(neng)利(li)用效率和CO2同化(hua)速(su)率(lv),並可(ke)作(zuo)為(wei)植(zhi)物(wu)水脅迫(po)的(de)可靠(kao)指數(shu)。因(yin)此廣泛用於(yu)植(zhi)物(wu)產(chan)量和(he)脅迫(po)研究(jiu)。
PlantPen NDVI 310:NDVI (Normalized Difference Vegetation Index)歸壹(yi)化植(zhi)被指數(shu)是(shi)通過計算(suan)植(zhi)物(wu)葉(ye)片(pian)對(dui)紅光(guang)和(he)近紅外兩(liang)個波(bo)長光(guang)反(fan)射(she)而得(de)到的(de)參數(shu),是(shi)反(fan)映(ying)植(zhi)物(wu)葉(ye)綠(lv)素(su)含(han)量(liang)的(de)壹(yi)個重要(yao)參(can)數(shu)。葉(ye)綠(lv)素(su)會(hui)強(qiang)烈(lie)吸(xi)收紅光(guang)用於(yu)光(guang)合(he)作(zuo)用,而葉(ye)片(pian)細(xi)胞(bao)結(jie)構(gou)會(hui)強(qiang)烈(lie)反(fan)射(she)近紅(hong)外光(guang)。因(yin)此,NDVI與(yu)光(guang)合(he)能(neng)力(li)直(zhi)接相(xiang)關(guan),從而反(fan)映(ying)植(zhi)物(wu)冠層(ceng)的(de)能(neng)量(liang)吸收狀況(kuang)。

應用領域(yu)
葉(ye)綠(lv)素(su)含(han)量(liang)快速檢測(ce)
植(zhi)物(wu)光(guang)合(he)研究(jiu)
早期(qi)脅迫(po)檢測(ce)
氮素(su)利(li)用效率研究(jiu)
功(gong)能(neng)特(te)點(dian)
攜(xie)帶(dai)方便、操作(zuo)簡單(dan)。
直接(jie)無(wu)損(sun)測(ce)量(liang)得(de)到NDVI和PRI值。
內置藍(lan)牙(ya)與(yu)USB雙(shuang)通(tong)訊(xun)模塊(kuai),GPS模塊(kuai),輸出(chu)帶(dai)時間戳(chuo)的(de)地理(li)位(wei)置
軟件可(ke)導出(chu)數(shu)據(ju)為(wei)Excel格式(shi),具(ju)備實時控制(zhi)和(he)遙(yao)控功(gong)能(neng)。
可用於(yu)農業、林業以及(ji)植(zhi)物(wu)學中光(guang)合(he)作(zuo)用、逆境(jing)脅迫(po)等的(de)研究(jiu)和(he)教學。
技術(shu)參(can)數(shu)
測(ce)量(liang)參(can)數(shu):PlantPen PRI 210:光(guang)化(hua)學反(fan)射(she)系(xi)數(shu)PRI = (R531 - R570)/(R531 + R570);PlantPen NDVI 310:歸壹(yi)化植(zhi)被指數(shu)NDVI = (RNIR – RRED) / (RNIR + RRED)
測(ce)量(liang)光(guang):內(nei)置雙(shuang)波(bo)長光(guang)源,PlantPen PRI 210:531nm和570nm;PlantPen NDVI 310:635nm和760nm
檢測(ce)波(bo)長:PlantPen PRI 210:500 – 600 nm;PlantPen NDVI 310:620-750 nm
通訊(xun):藍(lan)牙1.1,USB
存儲:16M
數(shu)據(ju)存儲:100,000個
顯示(shi):圖形(xing)顯示(shi)
鍵盤(pan):密(mi)封防(fang)水設(she)計2鍵
電(dian)源:可充(chong)電(dian)鋰電(dian)池,USB充(chong)電(dian),連(lian)續工(gong)作(zuo)70小時,低電(dian)報(bao)警(jing)
自動(dong)關(guan)機(ji):5分鐘(zhong)無(wu)操作(zuo)
尺(chi)寸:135×65×33 mm
重量(liang):188g
操作(zuo)環境(jing):溫(wen)度: 0 ~ 55 ºC; 相(xiang)對(dui)濕(shi)度: 0 ~95 % (無(wu)冷凝(ning))
存儲條(tiao)件:溫(wen)度:-10 ~ 60 ºC;相(xiang)對(dui)濕(shi)度:0 ~ 95 % (無(wu)冷凝(ning))

用戶定制(zhi)
描述(shu)植(zhi)物(wu)結(jie)構(gou)和葉(ye)綠(lv)素(su)含(han)量(liang)的(de)參數(shu)種(zhong)類很(hen)多(duo),應用測(ce)量(liang)光(guang)波(bo)長各異(yi),計算(suan)方法(fa)也各(ge)不(bu)相(xiang)同(tong)。為(wei)了滿(man)足(zu)不(bu)同(tong)客(ke)戶(hu)的(de)需求(qiu),可以定(ding)制(zhi)適(shi)合(he)各(ge)種(zhong)類似參數(shu)的(de)掌上(shang)植(zhi)物(wu)測(ce)量(liang)儀(yi)。或購買PolyPen RP410光(guang)譜儀(yi)測(ce)量(liang)植(zhi)物(wu)全反(fan)射(she)光(guang)譜。

應用案例(li)


使用PlantPen NDVI 和SpectroSense 2+植(zhi)被指數(shu)測(ce)量(liang)儀(yi)分別(bie)測(ce)量(liang)水(shui)稻葉(ye)片(pian)和(he)冠層(ceng)的(de)NDVI(Y Fenghua, et al. 2016)
產(chan)地:捷(jie)克
參考(kao)文(wen)獻(xian)
1. K Jabran, et al. 2018. High carbon dioxide concentration and elevated temperature impact the growth of weeds but do not change the efficacy of glyphosate. Pest Management Science 74(3): 766-771
2. K Trnková, et al. 2017. Desiccation‐induced changes in photochemical processes of photosynthesis and spectral reflectance in Nostoc commune (Cyanobacteria, Nostocales) colonies from polar regions. Phycological Research 65(1): 44-50
3. V Leemans , et al. 2017. Estimation of leaf nitrogen concentration on winter wheat by multispectral imaging. SPIE Commercial + Scientific Sensing and Imaging
4.Y Fenghua, et al. 2016. Models for estimating the leaf NDVI of japonica rice on a canopy scale by combining canopy NDVI and multisource environmental data in Northeast China. International Journal of Agricultural and Biological Engineering 9(5): 132-142
5.C Zhang, et al. 2016. Affecting Factors and Recent Improvements of the Photochemical Reflectance Index (PRI) for Remotely Sensing Foliar, Canopy and Ecosystemic Radiation-Use Efficiencies. Remote Sensing 8(9): 1-33
6.LLR Mendonçaa, et al. 2016. Management of Meloidogyne javanica with biological pesticides and oils in a lettuce field. Nematoda 3: e152015
7.R Calderón, et al. 2016. Soil temperature determines the reaction of olive c*rs to Verticillium dahliae pathotypes. PLOS ONE 9(10): e110664
8.M Barták, et al. 2015. Effect of dehydration on spectral reflectance and photosynthetic efficiency in Umbilicaria arctica and U. hyperborean. Biologia Plantarum 59(2): 357-365






