A combined rain shelter and free-air CO2 enrichment system to study climate change impacts on plants in the field

被引:11
作者
Erbs, Martin [1 ]
Manderscheid, Remy [1 ]
Weigel, Hans-Joachim [1 ]
机构
[1] Fed Res Inst Rural Areas Forestry & Fisheries, Johann Heinrich von Thunen Inst, Inst Biodivers, D-38116 Braunschweig, Germany
来源
METHODS IN ECOLOGY AND EVOLUTION | 2012年 / 3卷 / 01期
关键词
carbon dioxide; FACE; field experiment; microclimate; PAR; photosynthetic active radiation; rain exclusion; technical report; ATMOSPHERIC CO2; CARBON; DESIGN; DROUGHT; CROPS; PHOTOSYNTHESIS; PRODUCTIVITY; GENERATION; ECOSYSTEMS; RESPONSES;
D O I
10.1111/j.2041-210X.2011.00143.x
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
1. There is a clear need for field experiments to estimate the effects of global climate change like decreasing precipitation and rising atmospheric CO2 concentration. Adequate methods for controlled manipulations of these environmental parameters under field conditions are scarce, particularly in regard to multi-factor experiments. Here, we describe a new flexible rain shelter system, which can be assembled manually and easily be combined with further experimental treatments in field studies. 2. Frames of tents with a ground area of 12 m x 20 m were assembled on a field site after the sowing of the maize and sorghum crop and after the equipment for free-air CO2 enrichment has been set up. The tents were equipped with transparent tarpaulins, which were installed on the frames only in cases of high amounts of precipitations forecast. In autumn, the entire experimental equipment was removed from the field site. 3. The rain shelter tents were operated in the growing seasons 2008 and 2010 for 9 and 20 days with 54 mmand 176 mmof precipitation excluded, respectively. In the months with rain shelters in operation, pronounced reductions in precipitation were achieved 2008: 39 5%, 2010: 58 6%). The tent frames did not affect temperature or CO2 concentration, but slightly decreased incident photosynthetic active radiation PAR) by 6 6%. In times with tarpaulins installed, PAR decreased by 24 1%. Comparing times without and with tarpaulins installed, the fraction of time in which 1-min mean CO2 concentration was within similar to 20% limits of the setpoint was decreased from 99 7% to 97 8% in 2008 and from 99 0% to 96 7% in 2010, respectively. 4. The rain shelter tents provide a suitable and versatile tool for excluding precipitation from larger areas in the field without relevant disturbances to the soil and aerial environment except a slight decrease in incident radiation, which can be accounted for i. e. in the evaluation of plant growth data. Furthermore, they can be easily combined with further experimental treatments like free- air CO2 enrichment.
引用
收藏
页码:81 / 88
页数:8
相关论文
共 50 条
  • [21] Effects of free-air CO2 enrichment (FACE) on CH4 emission from a rice paddy field
    Inubushi, K
    Cheng, WG
    Aonuma, S
    Hoque, MM
    Kobayashi, K
    Miura, S
    Kim, HY
    Okada, M
    GLOBAL CHANGE BIOLOGY, 2003, 9 (10) : 1458 - 1464
  • [22] Maintenance of leaf N controls the photosynthetic CO2 response of grassland species exposed to 9 years of free-air CO2 enrichment
    Crous, Kristiney Y.
    Reich, Peter B.
    Hunter, Mark D.
    Ellsworth, David S.
    GLOBAL CHANGE BIOLOGY, 2010, 16 (07) : 2076 - 2088
  • [23] Minirhizotron imaging reveals that nodulation of field-grown soybean is enhanced by free-air CO2 enrichment only when combined with drought stress
    Gray, Sharon B.
    Strellner, Reid S.
    Puthuval, Kannan K.
    Ng, Christopher
    Shulman, Ross E.
    Siebers, Matthew H.
    Rogers, Alistair
    Leakey, Andrew D. B.
    FUNCTIONAL PLANT BIOLOGY, 2013, 40 (02) : 137 - 147
  • [24] Photosynthesis and conductance of spring-wheat leaves:: field response to continuous free-air atmospheric CO2 enrichment
    Garcia, RL
    Long, SP
    Wall, GW
    Osborne, CP
    Kimball, BA
    Nie, GY
    Pinter, PJ
    Lamorte, RL
    Wechsung, F
    PLANT CELL AND ENVIRONMENT, 1998, 21 (07) : 659 - 669
  • [25] Elevated CO2 significantly delays reproductive development of soybean under Free-Air Concentration Enrichment (FACE)
    Castro, Joseph C.
    Dohleman, Frank G.
    Bernacchi, Carl J.
    Long, Stephen P.
    JOURNAL OF EXPERIMENTAL BOTANY, 2009, 60 (10) : 2945 - 2951
  • [26] Responses of a grassland ecosystem to 17 years of free-air CO2 enrichment
    Andresen, L. C.
    Yuan, N.
    Luterbacher, J.
    Moser, G.
    Mueller, C.
    Gruenhage, L.
    Kammann, C.
    AGRICULTURE AND CLIMATE CHANGE - ADAPTING CROPS TO INCREASED UNCERTAINTY (AGRI 2015), 2015, 29 : 158 - 159
  • [27] Free-air CO2 enrichment modifies maize quality only under drought stress
    Martin Erbs
    Remy Manderscheid
    Liane Hüther
    Anke Schenderlein
    Herbert Wieser
    Sven Dänicke
    Hans-Joachim Weigel
    Agronomy for Sustainable Development, 2015, 35 : 203 - 212
  • [28] Effects of Elevated Atmospheric CO2 on Respiratory Rates in Mature Leaves of Two Rice Cultivars Grown at a Free-Air CO2 Enrichment Site and Analyses of the Underlying Mechanisms
    Noguchi, Ko
    Tsunoda, Tomonori
    Miyagi, Atsuko
    Kawai-Yamada, Maki
    Sugiura, Daisuke
    Miyazawa, Shin-Ichi
    Tokida, Takeshi
    Usui, Yasuhiro
    Nakamura, Hirofumi
    Sakai, Hidemitsu
    Hasegawa, Toshihiro
    PLANT AND CELL PHYSIOLOGY, 2018, 59 (03) : 637 - 649
  • [29] Yield and nitrogen accumulation and partitioning in winter wheat under elevated CO2: A 3-year free-air CO2 enrichment experiment
    Han, Xue
    Hao, Xingyu
    Lam, Shu Kee
    Wang, Heran
    Li, Yingchun
    Wheeler, Tim
    Ju, Hui
    Lin, Erda
    AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2015, 209 : 132 - 137
  • [30] Is there potential to adapt soybean (Glycine maxMerr.) to future [CO2]? An analysis of the yield response of 18 genotypes in free-air CO2 enrichment
    Bishop, Kristen A.
    Betzelberger, Amy M.
    Long, Stephen P.
    Ainsworth, Elizabeth A.
    PLANT CELL AND ENVIRONMENT, 2015, 38 (09) : 1765 - 1774