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A soil temperature control system for sapling study in alpine region

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Abstract

A soil temperature control system was designed for sapling study in alpine region and tested in summer, 2009. The system consisted of a power switch, voltage regulator, microcomputer timer, safety relays, temperature control device, temperature sensors, heating cables, fireproofing plastic pipes (PVC), 108 heavy-duty plastic containers and seedlings. The heating cables were held in six 2-layer PVC frames with 25 cm wide, 320 cm long and 25 cm high and three 1-layer frames with 25 cm wide and 320 cm long for 15°C soil temperature treatment, half of the 2-layer frames were used for 20°C and 25°C soil temperature treatments, respectively. Each of the frames was installed at each of ditches with 30 cm wide, 330 cm long and 30 cm deep in size. 12 seedling containers with 20 cm top diameter, 18cm bottom diameter and 25 cm high were homogenously placed at each of the ditches, and spaces between the containers were filled with natural soil. The system was economic, and could increase soil temperatures obviously and uniformly, the maximal and minimal standard errors of soil temperatures were ±0.28 and ±0.05°C at 10cm depth in the containers within each of all the ditches. In the system, aboveground environment was natural, diurnal and monthly soil temperatures varied with changing air temperature, the research results may be better to know the ecophysiological and growth responses of alpine saplings/seedlings to soil warming than that in greenhouse, laboratory, infrared heat lamp and open top chamber.

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References

  • Apostol KG, Jacobs DF, Wilson BC, Salifu KF, Dumroese RK (2007) Growth, gas exchange, and root respiration of Quercus rubra seedlings exposed to low root zone temperatures in solution culture. Forest Ecology and Management 253: 89–96.

    Article  Google Scholar 

  • Aronso EL, McNulty SG (2009) Appropriate experimental ecosystem warming methods by ecosystem, objective, and practicality. Agricultural and Forest Meteorology 149: 1791–1799.

    Article  Google Scholar 

  • Avanzato D, Tamponi G (1988) The effect of heating of walnut graft unions on grafting success. Acta Horticulturae 227: 79–83.

    Google Scholar 

  • Bergh J, Linder S (1999) Effects of soil warming during spring on photosynthetic recovery in boreal Norway spruce stands. Global Change Biology 5: 245–253.

    Article  Google Scholar 

  • Bijoor NS, Czimczik CI, Patak DE, Billings SA (2009) Effects of temperature and fertilization on nitrogen cycling and community composition of an urban lawn. Global Change Biology 14: 2119–2131.

    Article  Google Scholar 

  • Borges R, Chaney W (1989) Root temperature affects mycorrhizal efficacy in Fraxinus pennylvanica Marsh. New Physiologist 112: 411–417.

    Article  Google Scholar 

  • Cheng S, Dang QL, Cai TB (2000) A soil temperature control system for ecological research in greenhouses. Journal of Forest Research 5: 205–208.

    Article  Google Scholar 

  • Cheng S (2009) Determining thresholds of low soil temperature for ecophysiological traits of black spruce and jack pine seedlings. Forestry Studies in China 11: 139–147.

    Article  Google Scholar 

  • Christ MJ, David MB, McHale PJ, McLaughlin JW, Mitchell MJ, Rustad LE, Fernandez IJ (1997) Microclimatic control of microbial C, N, and P pools in Spodosol Oa horizons. Canadian Journal of Forest Research 27: 1914–1921.

    Article  Google Scholar 

  • Dang QL, Cheng S (2004) Effects of soil temperature on ecophysiological traits in seedlings of four boreal tree species. Forest Ecology and Management 194: 379–387.

    Article  Google Scholar 

  • Engel EC, Weltzin JF, Norby RJ, Classen AT (2009) Responses of an old-field plant community to interacting factors of elevated CO2, warming, and soil moisture. Journal of Plant Ecology 2: 1–11.

    Article  Google Scholar 

  • Finer L, Aphalo P, Kettunen U, Leinonen I, Mannerkoski H, Ohman J, Repo T, Ryyppo A (2001) The Joensuu dasotrons: A new facility for studying shoot, root, and soil processes. Plant and Soil 231: 137–149.

    Article  Google Scholar 

  • Fraser LH, Greenall A, Carlyle C, Turkington R, Friedman CR (2009) Adaptive phenotypic plasticity of Pseudoroegneria spicata: response of stomatal density, leaf area and biomass to changes in water supply and increased temperature. Annals of Botany 103: 769–775.

    Article  Google Scholar 

  • Harper GJ, Camm EL (1993) Effects of frozen storage duration and soil temperature on the stomatal conductance and net photosynthesis of Picea glauca seedlings. Canadian Journal of Forest Research 23: 2459–2466.

    Article  Google Scholar 

  • Huber E, Wanek W, Gottfried M, Pauli H, Schweiger P, Arndt SK, Reiter K, Richter A (2007) Shift in soil-plant nitrogen dynamics of an alpine-nival ecotone. Plant and Soil 301: 65–76.

    Article  Google Scholar 

  • Körner C, Hoch G (2006) A test of treeline theory on a montane permafrost island. Arctic, Antarctic, and Alpine Research 38: 113–119.

    Article  Google Scholar 

  • Landhaausser SM, Wein RW, Lange P (1996) Gas exchange and growth of three arctic tree-line tree species under different soil temperature and drought preconditioning regime. Canadian Journal of Botany 74: 686–1693.

    Article  Google Scholar 

  • Landhaausser SM, Lieffers VJ (1998) Growth of Populus tremuloides in association with between Calamagrostis canadensis. Canadian Journal of Forest Research 28: 396–401.

    Article  Google Scholar 

  • Lawrence WT, Oechel WC (1983) Effects of soil temperature on the carbon exchange of taiga seedlings. II. Photosynthesis, respiration and conductance. Canadian Journal of Forest Research 13: 850–859.

    Article  Google Scholar 

  • Lopushinsky W, Max TA (1990) Effects of soil temperature on root and shoot growth and on budburst timing in conifer seedling transplants. New Forests 4: 107–124.

    Article  Google Scholar 

  • Lorenzen B, Brix H, Schieup HH, Madson TV (1998) Design and performance of the Phyto-Nutri-Tron: a system for controlling the root and shoot environment for whole-plant ecophysiological studies. Environmental and Experimental Botany 39: 141–157.

    Article  Google Scholar 

  • National Research Council (2000) Global Change Ecosystems Research. Washington, DC: National Academy Press.

    Google Scholar 

  • Peng YY, Dang QL (2003) Effects of soil temperature on biomass production and allocation in seedlings of four boreal tree species. Forest Ecology and Management 180: 1–9.

    Article  Google Scholar 

  • Rinnan R, Rousk J, Yergeau E, Kowalchuk GA, Baath E (2009) Temperature adaptation of soil bacterial communities along an Antarctic climate gradient: predicting responses to climate warming. Global Change Biology 15: 2615–2625.

    Article  Google Scholar 

  • Running SW, Reid CP (1980) Soil temperature influences on root resistance of Pinus contorta seedlings. Plant Physiology 65: 635–640.

    Article  Google Scholar 

  • Shen HH, Klein JA, Zhao XQ, Tang YH (2009) Leaf photosynthesis and simulated carbon budget of Gentiana straminea from a decade-long warming experiment. Journal of Plant Ecology 2: 207–216.

    Article  Google Scholar 

  • Verbury PSJ, Loon VWKP, Lukewille A, van Loon WKP (1999) The CLIMEX soil-heating experiment: soil response after 2 years of treatment. Biology and Fertility of Soils 28: 271–276.

    Article  Google Scholar 

  • Weltzin JF, Pastor J, Harth C, Bridgham SD, Updegraff K Chapin CT (2000) Response of bog and fen plant communities to warming and water-table manipulations. Ecology 81: 3464–3478.

    Article  Google Scholar 

  • Weltzin JF, Bridgham SD, Pastor J, Chen JQ, Harth C (2003) Potential effects of warming and drying on peatland plant community composition. Global Change Biology 9: 141–151.

    Article  Google Scholar 

  • Xu ZF, Hu TX, Wang KY, Chen JQ, Harth C (2009) Short-term responses of phenology, shoot growth and leaf traits of four alpine shrubs in a timberline ecotone to simulated global warming, Eastern Tibetan Plateau, China. Plant Species Biology 24: 27–34.

    Article  Google Scholar 

  • Ziska LH (1998) The influence of root zone temperature on photosynthetic acclimation to elevated carbon dioxide concentrations. Annals of Botany 81: 717–721.

    Article  Google Scholar 

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Correspondence to Li Zhang.

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Cheng, S., Zhang, L., Song, H. et al. A soil temperature control system for sapling study in alpine region. J. Mt. Sci. 8, 739–749 (2011). https://doi.org/10.1007/s11629-011-1037-7

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  • DOI: https://doi.org/10.1007/s11629-011-1037-7

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