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木本植物氣穴壓力儀

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北京易科泰生態(tài)技術(shù)有限公司成立于2002年,為國(guó)家*,致力于生態(tài)-農(nóng)業(yè)-健康研究監(jiān)測(cè)技術(shù)推廣、研發(fā)與服務(wù),特別是在光譜成像技術(shù)(高光譜成像技術(shù)、葉綠素?zé)晒獬上窦夹g(shù)、紅外熱成像技術(shù)、無(wú)人機(jī)遙感等)、植物表型分析技術(shù)、呼吸與能量代謝測(cè)量技術(shù)等方面,與企業(yè)PSI、Specim、Sable等合作,致力于植物科學(xué)、土壤與地球科學(xué)、動(dòng)物能量代謝、水體與藻類及生態(tài)環(huán)境領(lǐng)域*儀器技術(shù)的引進(jìn)推廣和技術(shù)研發(fā)集成,為植物/作物表型分析、生態(tài)修復(fù)及生態(tài)保護(hù)、能量代謝測(cè)量等提供規(guī)劃設(shè)計(jì)、技術(shù)方案與系統(tǒng)集成、技術(shù)咨詢與科技服務(wù)。公司技術(shù)團(tuán)隊(duì)80%以上具備碩士或碩士以上學(xué)位,并與*研究生院、中科院植物研究所、中科院動(dòng)物所、中科院地理科學(xué)與資源研究所、中國(guó)農(nóng)科院、中國(guó)林科院、中國(guó)環(huán)科院、中國(guó)水科院、清華大學(xué)、中國(guó)農(nóng)業(yè)大學(xué)、北京林業(yè)大學(xué)、北京大學(xué)、中國(guó)海洋大學(xué)、陜西師范大學(xué)、內(nèi)蒙古大學(xué)等建立了*的技術(shù)合作交流關(guān)系。 公司下設(shè)有葉綠素?zé)晒饧夹g(shù)與植物表型業(yè)務(wù)部、EcoLab?實(shí)驗(yàn)室、光譜成像與無(wú)人機(jī)遙感事業(yè)部及無(wú)人機(jī)遙感研究中心(與陜西師范大學(xué)合作建立)、動(dòng)物能量代謝實(shí)驗(yàn)室、內(nèi)蒙古阿拉善蒙古牛生態(tài)牧業(yè)研究院及青島分公司。實(shí)驗(yàn)室擁有葉綠素?zé)晒獬上?、葉綠素?zé)晒鈨x、水體藻類熒光儀、SPECIM高光譜儀、WORKSWELL紅外熱成像儀、EasyChem*、MicroMac1000水質(zhì)在線監(jiān)測(cè)系統(tǒng)、ACE土壤呼吸自動(dòng)監(jiān)測(cè)系統(tǒng)、SoilBox便攜式土壤氣體通量測(cè)量系統(tǒng)、動(dòng)物呼吸測(cè)量系統(tǒng)、LCpro+光合作用測(cè)量?jī)x、Hood土壤入滲儀、年輪分析儀等各種儀器設(shè)備,可以進(jìn)行實(shí)驗(yàn)研究分析、實(shí)驗(yàn)培訓(xùn)等,歡迎與易科泰生態(tài)研究室開(kāi)展合作研究。 易科泰公司與歐洲PSI公司(葉綠素?zé)晒饧夹g(shù)與表型分析技術(shù))、美國(guó)SABLE公司(動(dòng)物能量代謝技術(shù))、歐洲SPECIM公司(高光譜成像技術(shù))、歐洲WORKSWELL公司(紅外熱成像技術(shù))、歐洲Lightigo公司(LIBS元素分析技術(shù))、歐洲BCN無(wú)人機(jī)遙感中心、歐洲ITRAX公司(樣芯密度掃描與元素分析)、美國(guó)VERIS公司、英國(guó)ADC公司、德國(guó)UGT公司、歐洲SYSTEA公司等*生態(tài)儀器技術(shù)領(lǐng)域的研發(fā)機(jī)構(gòu)和廠商建立了密切的合作關(guān)系,在FluorCam葉綠素?zé)晒獬上衽c熒光測(cè)量技術(shù)、PlantScreen植物表型分析技術(shù)、高光譜成像技術(shù)、紅外熱成像技術(shù)、光合作用與植物生態(tài)研究監(jiān)測(cè)、土壤呼吸與碳通量研究監(jiān)測(cè)、動(dòng)物呼吸代謝測(cè)量、水質(zhì)分析與藻類研究監(jiān)測(cè)、CoreScanner樣芯密度CT與元素分析技術(shù)、LIBS元素分析技術(shù)、無(wú)人機(jī)生態(tài)遙感技術(shù)等生態(tài)儀器技術(shù)及其系統(tǒng)方案集成有著豐富的經(jīng)驗(yàn),成為我國(guó)農(nóng)業(yè)、林業(yè)、地球科學(xué)、生態(tài)環(huán)境研究等領(lǐng)域科技進(jìn)步的重要研究力量。由公司研制生產(chǎn)的EcoDrone?無(wú)人機(jī)遙感平臺(tái)、SoilTron?多功能小型蒸滲儀技術(shù)、SoilBox?土壤呼吸測(cè)量技術(shù)、PhenoPlot?輕便型作物表型分析系統(tǒng)、SCG-N土壤剖面CO2/O2梯度監(jiān)測(cè)系統(tǒng)、植物生態(tài)監(jiān)測(cè)技術(shù)、動(dòng)物能量代謝測(cè)量技術(shù)等,在中科院修購(gòu)項(xiàng)目、*學(xué)科群項(xiàng)目、CERN網(wǎng)絡(luò)(生態(tài)系統(tǒng)監(jiān)測(cè)網(wǎng)絡(luò))等項(xiàng)目中發(fā)揮重要作用 “工欲善其事,必先利其器”,易科泰公司將秉承“利其器,善其事”的經(jīng)營(yíng)理念,為國(guó)內(nèi)生態(tài)-農(nóng)業(yè)-健康研究與發(fā)展提供的技術(shù)方案和服務(wù)。
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木本植物氣穴壓力儀 產(chǎn)品信息

應(yīng)用:

在植物根系吸收水分速度不能滿足植物蒸騰需水速度的時(shí)候(如土壤水分嚴(yán)重缺乏、蒸騰強(qiáng)度過(guò)大、冷凍脅迫或者土壤水勢(shì)過(guò)低),植物導(dǎo)管內(nèi)水柱中溶解的空氣逸出,水分子間的內(nèi)聚力失效,水柱發(fā)生斷裂或抽空,在導(dǎo)管內(nèi)形成氣泡或氣柱,這些氣泡或氣柱被稱為氣穴。該儀器可利用高壓將空氣或氮?dú)馔ㄟ^(guò)植物枝條表面的皮孔和射線組織滲入到導(dǎo)管中,使得植物枝條的導(dǎo)管內(nèi)產(chǎn)生氣泡或氣柱,模擬脅迫產(chǎn)生氣穴。不同的壓力和壓力持續(xù)時(shí)間可以在枝條內(nèi)部產(chǎn)生不用數(shù)量的氣穴。通過(guò)其他儀器(如植物導(dǎo)水率高壓測(cè)試儀)測(cè)定不同壓力和壓力持續(xù)時(shí)間下枝條的導(dǎo)水率,建立植物導(dǎo)水率——?dú)鈮海鈮号c產(chǎn)生的氣穴量正相關(guān))曲線,可以獲知?dú)庋▽?duì)該植物率的影響,從而評(píng)估該樣品導(dǎo)水能力的抗脅迫性。

圖片1.png

該儀器裝置適用于同種植物(木本)不同條件處理(如不同生境)或者不同狀態(tài)下的抗脅迫能力研究,獲得植物導(dǎo)水率的脆弱曲線。

儀器描述:

1.中間的氣室大約長(zhǎng)3.20英寸。

2.橡膠墊圈套在樣品上,并一起深入氣室。

3.金屬塞擋住墊圈,可以增加密封性。

4.螺絲帽可以增強(qiáng)密封并固定樣品。

5.樣品必須要達(dá)到4.25英寸,保證可以*通過(guò)氣室。

儀器包括:

1. 可以控制到100bar的壓力表

2. 3 英尺連接氣穴的管子

3. 氣穴氣室

4. 2個(gè)金屬堵頭尺寸為(5/8", 3/8", 3/16")

5. 每個(gè)金屬堵頭帶5個(gè)橡膠墊圈尺寸為(自己打口, 1/16", 1/8", 3/16")

6. 6英尺連接儀器到氣罐的管子

7. 便攜式氣瓶(可選)

在導(dǎo)水率測(cè)定方面,*使用植物導(dǎo)水率高壓測(cè)試儀。

產(chǎn)地:

美國(guó)

下面是兩篇關(guān)于氣穴與導(dǎo)水率關(guān)系的文章,用戶可以參考并試驗(yàn)自己的樣品

參考1

Relationships between Hydraulic Conductance, Xylem Cavitation, and Stomatal Regulation of Transpiration Sperry, John

There is increasing evidence that avoidance of critical levels of xylem cavitation caused by dynamic (transpiration-induced) water stress is one major adaptive advantage of stomatal closure. The minimum negative xylem pressure recorded for 37 species strongly correlated with the negative pressure inducing * loss of hydraulic conductance in stems from xylem cavitation. The minimum safety margin from complete cavitation ranged from a few tenths of a megapascal in drought-susceptable plants to several megapascals in more drought-tolerant plants. Safety margins were even smaller for root xylem. Small safety margins from cavitation could not be explained by a trade-off between cavitation vulnerability and conducting efficiency.

Although avoidance of complete cavitation is achieved by stomatal closure, partial cavitation and loss of hydraulic conductance appears to be promoted, particularly in the more vulnerable root system. Field studies showed significant cavitation in root xylem of woody plants during drought, and reversal following rain. Stem xylem showed much less dramatic response to drought. Loss of hydraulic conductance in the root system may be the primary hydraulic limitation for gas exchange.

Partial cavitation during drought may be advantageous; particularly in roots where it is most readily replaced after the drought either by refilling embolized conduits, or growth of new roots. Studies with Betula occidentalis have shown that stomata close in response to a loss of hydraulic conductance because they sense the reduction in leaf water status. Thus, loss of hydraulic conductance by cavitation leads to reduced transpiration for the same drop in xylem pressure. As a drought progresses, cavitation superimposed on stomatal regulation moderates the rate of soil water extraction more than stomatal regulation alone. Reduced water use during drought prolongs its availability in soil and may allow more to be extracted by minimizing the drop in soil-to-root hydraulic conductance.

Key words: xylem cavitation, hydraulic conductance, stomatal regulation, water stress, drought tolerance.

Correspondence: John Sperry, Department of Biology, University of Utah, Salt Lake City, UT 84112, USA

參考2

Susceptibility to Xylem Embolism as an Index of Drought Tolerance in Chaparral Shrubs of California (USA) Davis, Stephen

There are two genera of chaparral shrubs in California (Arctostaphylos and Ceanothus) that contain species with very different life history characteristics ?sprouters and non-sprouters after wildfire. Non-sprouters were hypothesized to be more tolerant of the first summer drought after wildfire and thus more resistant to water stress-induced embolism of their xylem tissue. This hypothesis was tested by comparing three pairs of co-occurring sprouters and non-sprouters of Ceanothus. In all cases, non-sprouters had significantly greater resistance to water stress-induced embolism than sprouters (differences ranged between 2.5 and 3.7 MPa in water potential were 50% embolism occurred). When vulnerability to xylem embolism was compared among four dominant species of a mixed chaparral stand, susceptibility to water stress-induced embolism varied between ?1 MPa for Ceanothus megacarpus to ?.9 MPa for Malsoma laurina. Adenostoma fasciculatum (?.3 MPa) and A. sparsifolium (?.9 MPa) were intermediate. The increasing order of susceptibility to embolism (C. megacarpus < A. fasciculatum < A. sparsifolium < M. laurina) corresponded to the order in which post-fire seedlings were susceptible to summer drought: C. megacarpus (63% survival), A. fasciculatum (21% survival), A. sparsifolium (8% survival), and M. laurina (1.1% survival). A comparison of the vulnerability of xylem to embolism among 22 species of chaparral shrubs indicated that susceptibility corresponds to minimum seasonal water potentials but is weakly correlated with vessel diameter or area specific conductivity. This is consistent with the hypothesis that susceptibility to water stress-induced embolism is a function of pore size in pit membranes of vessel and tracheid cell walls and not vessel size.

Key words: xylem embolism, drought tolerance, chaparral.

Correspondence: Stephen D. Davis, Natural Science Division, Pepperdine University, Malibu, California 90263 , USA

關(guān)鍵詞:壓力表
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