Author
Abstract
In the past decades the decline of Masson pine (Pinus massoniana) forest caused by soil acidification due to excess sulphur (S) and nitrogen (N) input has become common in Chongqing, China. Schima superba, an excellent shade-tolerant and fire-resistant species, is believed to be more resistant to soil acidification than Masson pine. Accordingly, its saplings were often grown in acidified and declining Masson pine stands to transform them and enhance prevention and control of forest fires and, in fact, cultivating S. superba saplings under canopies of Masson pine stands growing on acidified soil may be an important measure of forest transformation in the future. But on the other hand, liming is an effective practice to alleviate damage of soil acidification to Masson pine forests. In 2004, we established permanent plots limed with 0 (unlimed control), 1, 2, 3, and 4 t ha−1 limestone powder in an acid-damaged (>25 % defoliation) Masson pine stand mixed with S. superba saplings in Chongqing, and observed positive responses of Masson pine growth 8 years after liming. In 2015 we conducted an investigation to assess the effects of liming on the health and growth of young S. superba trees under the canopy of this stand. The results showed that compared to the unlimed control, liming increased pH, exchangeable calcium (Ca), and Ca/Al molar ratio, but decreased exchangeable aluminum (Al) in the 0–20 cm mineral soil layer. As a result, length densites of living fine roots of the young S. superba trees increased, while their defoliation decreased. Over 11 years, mean height increment of the S. superba trees increased from 3.7 m in the unlimed control to 3.8, 4.0, 4.7, and 5.9 m in the 1, 2, 3, and 4 t ha−1 lime treatments, and their mean basal diameter (5 cm above the ground) increment increased from 2.4 to 2.7, 3.2, 3.9, and 4.9 cm, respectively. Liming favored the transformation of the Masson pine stand. These effects rose with increasing dose
References
For further details log on website :
http://link.springer.com/article/10.1007/s11056-016-9545-5
- Zhiyong Li
- , Panfeng Dai
- , Yanhui Wang
- , Tao Li
- , Ashley A. Webb
- , Yihao Wang
- , Zhenhua Li
- , Taiji Kou
- , Guoan Shi
- and 1 more
Abstract
In the past decades the decline of Masson pine (Pinus massoniana) forest caused by soil acidification due to excess sulphur (S) and nitrogen (N) input has become common in Chongqing, China. Schima superba, an excellent shade-tolerant and fire-resistant species, is believed to be more resistant to soil acidification than Masson pine. Accordingly, its saplings were often grown in acidified and declining Masson pine stands to transform them and enhance prevention and control of forest fires and, in fact, cultivating S. superba saplings under canopies of Masson pine stands growing on acidified soil may be an important measure of forest transformation in the future. But on the other hand, liming is an effective practice to alleviate damage of soil acidification to Masson pine forests. In 2004, we established permanent plots limed with 0 (unlimed control), 1, 2, 3, and 4 t ha−1 limestone powder in an acid-damaged (>25 % defoliation) Masson pine stand mixed with S. superba saplings in Chongqing, and observed positive responses of Masson pine growth 8 years after liming. In 2015 we conducted an investigation to assess the effects of liming on the health and growth of young S. superba trees under the canopy of this stand. The results showed that compared to the unlimed control, liming increased pH, exchangeable calcium (Ca), and Ca/Al molar ratio, but decreased exchangeable aluminum (Al) in the 0–20 cm mineral soil layer. As a result, length densites of living fine roots of the young S. superba trees increased, while their defoliation decreased. Over 11 years, mean height increment of the S. superba trees increased from 3.7 m in the unlimed control to 3.8, 4.0, 4.7, and 5.9 m in the 1, 2, 3, and 4 t ha−1 lime treatments, and their mean basal diameter (5 cm above the ground) increment increased from 2.4 to 2.7, 3.2, 3.9, and 4.9 cm, respectively. Liming favored the transformation of the Masson pine stand. These effects rose with increasing dose
References
- Anonymous (2004) Manual on methodologies and criteria for harmonized sampling, assessment, monitoring and analysis of the effects of air pollution on forests, UNECE, Hamburg, Geneva. http://www.icp-forests.org/Manual.htm. Accessed 15 Apr 2015
- Bakker MR, Nys C (1999) Effects of lime-induced differences in site fertility on fine roots of oak. Ann For Sci 56:599–606CrossRef
- Bakker MR, Kerisit R, Verbist K, Nys C (1999) Effects of liming on rhizosphere chemistry and growth of fine roots and of shoots of sessile oak (Quercus petraea). Plant Soil 217:243–255CrossRef
- Burke MK, Raynal DJ (1998) Liming influences growth and nutrient balances in sugar maple (Accer saccharum) seedlings on an acidic forest soil. Environ Exp Bot 39:105–115CrossRef
- Chinese Society of Forestry (1989) Acid rain and agriculture. China Forestry Press, Beijing (in Chinese)
- Cronan CS, Grigal DF (1995) Use of calcium/aluminum ratios as indicators of stress in forest ecosystems. J Environ Qual 24:209–226CrossRef
- Du XM, Tian RS (1996) The relation between aluminium poisoning and decline of Masson pine forest in Nanshan Mountain, Chongqing. Res Environ Sci 9:21–25 (in Chinese)
- Fischer R, Mues V, Ulrich E, Becher G, Lorenz M (2007) Monitoring of atmospheric deposition in European forests and an overview on its implication on forest condition. Appl Geochem 22:1129–1139CrossRef
- Frank J, Stuanes AO (2003) Short-term effects of liming and vitality fertilization on forest soil and nutrient leaching in a Scots pine ecosystem in Norway. For Ecol Manage 176:371–386CrossRef
- Gao JX, Cao HF (1991) Effects of ionic strength, pH and Ca/Al ratio on aluminum toxicity of Masson pine seedlings. Acta Sci Circumst 11:194–198 (in Chinese)
- Gao JX, Cao HF, Shu JM (1991) Experimental study on influence of aluminum in forest soil on Pinus massonianagrowth. Sci Silv Sin 27:649–651 (in Chinese)
- Gaudio N, Belyazid S, Gendre X, Mansat A, Nicolas M, Rizzetto S, Sverdrup H, Probst A (2015) Combined effect of atmospheric nitrogen deposition and climate change on temperate forest soil biogeochemistry: a modeling approach. Ecol Model 306:24–34CrossRef
- Guckland A, Ahrends B, Paar U, Dammann I, Evers J, Meiwes KJ, Schönfelder E, Ullrich T, Mindrup M, König N, Eichhorn J (2012) Predicting depth translocation of base cations after forest liming: results from long-term experiments. Eur J For Res 131:1869–1887CrossRef
- Guo JH, Zhang XS, Vogt RD, Xiao JS, Zhao DW, Xiang RJ, Luo JH (2007) Evaluating main factors controlling aluminum solubility in acid forest soils, southern and southwestern China. Appl Geochem 22:388–396CrossRef
- Hahn G, Marschner H (1998) Effect of acid irrigation and liming on root growth of Norway spruce. Plant Soil 199:11–22CrossRef
- Hao JM, Wang SX, Liu BJ, He KB (2000) Control strategy for sulfur dioxide and acid rain pollution in China. J Environ Sci 12:385–393
- He ZN, Gao YH, Tan BQ, Tang XP (2009) Acid rain change in Chongqing in recent 15 years. Plateau Mt Meteorol Res 29:59–62 (in Chinese)
- Helmisaari HS, Hallbäcken L (1999) Fine-root biomass and necromass in limed and fertilized Norway spruce (Picea abies (L.) Karst.) stands. For Ecol Manag 119:99–110CrossRef
- Henrikson L, Brodin YW (1995) Liming of acidified surface waters—a Swedish synthesis. Springer, BerlinCrossRef
- Huang YM, Duan L, Jin T, Yang YS, Hao JM (2006) Effect of limestone and magnesite applications on Masson pine (Pinus massoniana) forest growing on acidified soil. Acta Ecol Sin 26:786–792 (in Chinese) CrossRef
- Huettl RF, Zoettl HW (1993) Liming as a mitigation tool in Germany’s declining forests—reviewing results from former and recent trials. For Ecol Manag 61:325–338CrossRef
- Ingerslev M (1997) Effects of liming and fertilization on growth, soil chemistry and soil water chemistry in a Norway spruce plantation on a nutrient-poor soil in Denmark. For Ecol Manag 92:55–66CrossRef
- Jiang WH, Zhang S, Chen GC, Xiong HQ, Ding Y, Li XG (2002) Effect of acid deposition on soil and vegetation of forest ecosystem in Nanshan of Chongqing. Res Environ Sci 15:8–11 (in Chinese)
- Jin L, Shao M, Zeng LM, Zhao DW, Tang DG (2006) Estimation of dry deposition fluxes of major inorganic species by canopy throughfall approach. Chin Sci Bull 51:1818–1823CrossRef
- Jonard M, André F, Giot P, Weissen F, Van der Perre R, Ponette Q (2010) Thirteen-year monitoring of liming and PK fertilization effects on tree vitality in Norway spruce and European beech stands. Eur J For Res 129:1203–1211CrossRef
- Kakei M, Clifford PE (2002) Short-term of lime application on soil properties and fine-root characteristics for a 9-year-old Sitka spruce plantation growing on a deep peat soil. Forestry 75:37–50CrossRef
- Kreutzer K, Weiss T (1998) The Höglwald field experiments—aims, concept and basic data. Plant Soil 199:1–10CrossRef
- Li ZY, Wang YH (2009) Forest health under acidification stress—a case study of Tieshanping in Chongqing. China Agriculture Press, Beijing (in Chinese)
- Li ZY, Wang YH, Yu PT, Zhang ZJ (2007) A comparative study of resistance to soil acidification and growth of fine roots between pure stands of Pinus massoniana and Cinnamomum camphora. Acta Ecol Sin 27:5245–5253 (in Chinese)
- Li ZY, Chen JJ, Wang YH, Yu PT, Du SC, He P, Duan J (2008) Effects of Schima superba plantations on soil chemical properties in the acid rain region of Chongqing, southwestern China. J Plant Ecol 32:632–638 (in Chinese)
- Li ZY, Liu GJ, Wang YH, Yu PT, Zhang ZJ, Li ZH, Du SC, Liu Y (2011) Influence of limestone powder doses on growth of Schima superba in Pinus massoniana plantation in the acid rain region of Chongqing, China. For Res 24:263–266 (in Chinese)
- Li ZY, Wang YH, Liu Y, Guo H, Li T, Li ZH, Shi GA (2014) Long-term effects of liming on health and growth of a Masson pine stand damaged by soil acidification in Chongqing, China. PLoS One 9(e94230):1–9
- Liao LP, Chen CY (1992) Relationships between simulated acid rain, soil acidification and root growth of Chinese fir and Schima superba. Chin J Eco 11:23–28 (in Chinese)
- Liu HT, Tian RS (1992) Relationship between decline of a Masson pine forest and aluminum activation in Nanshan, Chongqing. Acta Sci Circumst 12:297–305 (in Chinese)
- Liu JX, Zhou GY, Zhang DQ (2003) The cumulative effects of acid rain on the soil and responses of Schima superba at Dinghushan. China Environ Sci 23:90–94 (in Chinese)
- Liu KH, Fang YT, Yu FM, Liu Q, Li FR, Peng SL (2010) Soil acidification in response to acid deposition in three subtropical forests of subtropical China. Pedosphere 20:399–408CrossRef
- Ljungström M, Nihlgård B (1995) Effects of lime and phosphate additions on nutrient status and growth of beech (Fagus sylvatica L.) seedlings. For Ecol Manag 74:133–148CrossRef
- Lundström US, Bain DC, Taylor AFS, van Hees PAW (2003) Effects of acidification and its mitigation with lime and wood ash on forest soil processes: a review. Water Air Soil Pollut Focus 3:5–28CrossRef
- Ma LQ (1993) Forests in Chongqing and effects of air pollution on them. Sichuan For Sci Technol 14:40–50 (in Chinese)
- Marschner H (1991) Mechanisms of adaptation of plants to acid soils. Plant Soil 134:1–20
- Matzner E, Murach D (1995) Soil changes induced by air pollutant deposition and their implication for forests in central Europe. Water Air Soil Pollut 85:63–76CrossRef
- Moore JD, Ouimet R, Duchesne L (2012) Soil and sugar maple response 15 years after dolomitic lime application. For Ecol Manag 281:130–139CrossRef
- Mosquera-Losada MR, Cuiña-Cotarelo R, Rigueiro-Rodríguez A (2011) Effect of understory vegetation management through liming and sewage sludge fertilisation on soil fertility and Pinus radiata D. Don growth after reforestation. Eur J For Res 130:997–1008CrossRef
- Nilssen JP, Wærvågen SB (2003) Ecological distribution of pelagic copepods and species relationship to acidification, liming and natural recovery in a boreal area. J Limnol 62:97–114CrossRef
- Nowotny I, Dähne J, Klingelhöfer D, Rothe GM (1998) Effect of artificial soil acidification and liming on growth and nutrient status of mycorrhizal roots of Norway spruce (Picea abies (L.) Karst.). Plant Soil 199:29–40CrossRef
- Ok YS, Chang SX, Feng YS (2007) Sensitivity to acidification of forest soils in two watersheds with contrasting hydrological regimes in the oil sands region of Alberta. Pedosphere 17:747–757CrossRef
- Persson H, Ahlström K (1990/1991) The effects of forest liming and fertilization on fine-root growth. Water Air Soil Pollut 54:365–375
- Prietzel J, Rehfuess KE, Stetter U, Pretzsch H (2008) Changes of soil chemistry, stand nutrition, and stand growth at two Scots pine (Pinus sylvestris L.) sites in Central Europe during 40 years after fertilization, liming, and lupine introduction. Eur J For Res 127:43–61CrossRef
- Purdon M, Cienciala E, Metelka V, Beranová J, Hunová I, Cerny M (2004) Regional variation in forest health under long-term air pollution mitigated by lithological conditions. For Ecol Manag 195:355–371CrossRef
- Rizvi SH, Gauquelin T, Gers C, Guérold F, Pagnout C, Baldy V (2012) Calcium–magnesium liming of acidified forested catchments: effects on humus morphology and functioning. Appl Soil Ecol 62:81–87CrossRef
- Rodhe H, Herrera R (1988) Acidification in tropical countries. Wiley, New York
- Saarsalmi A, Tamminen P, Kukkola M, Levula T (2011) Effects of liming on chemical properties of soil, needle nutrients and growth of Scots pine transplants. For Ecol Manag 262:278–285CrossRef
- Šebesta J, Šamonil P, Lacina J, Oulehle F, Houška J, Buček A (2011) Acidification of primeval forests in the Ukraine Carpathians: vegetation and soil changes over six decades. For Ecol Manag 262:1265–1279CrossRef
- Seftigen K, Moldan F, Linderholm HW (2013) Radial growth of Norway spruce and Scots pine: effects of nitrogen deposition experiments. Eur J For Res 132:83–92CrossRef
- Shen WJ, Ren HL, Jenerette GD, Hui DF, Ren H (2013) Atmospheric deposition and canopy exchange of anions and cations in two plantation forests under acid rain influence. Atmos Environ 64:242–250CrossRef
- Teng XR (2005) Status quo of forest resources and management strategy in Chongqing city. For Invent 30:73–76 (in Chinese)
- Tian XR, Shu LF, He QT (2001) Selection of fire-resistant tree species for southwestern China. For Stud Chin 3:32–38
- Tveite B, Abrahamsen G, Stuanes AO (1990/1991) Liming and wet acid deposition effects on tree growth and nutrition: experimental results. Water Air Soil Pollut 54:409–422
- Ulrich B (1990) Waldsterben: forest decline in West Germany. Environ Sci Technol 24:436–441CrossRef
- Valois A, Keller WB, Ramcharan C (2010) Abiotic and biotic processes in lakes recovering from acidification: the relative roles of metal toxicity and fish predation as barriers to zooplankton re-establishment. Freshw Biol 55:2585–2597CrossRef
- Van der Perre R, Jonard M, André F, Nys C, Legout A, Ponette Q (2012) Liming effect on radial growth depends on time since application and on climate in Norway spruce stands. For Ecol Manag 281:59–67CrossRef
- Vogt RD, Guo JH, Luo JH, Peng XY, Xiang RJ, Xiao JS, Zhang XS, Zhao DW, Zhao Y (2007) Water chemistry in forested acid sensitive sites in sub-tropical Asia receiving acid rain and alkaline dust. Appl Geochem 22:1140–1148CrossRef
- Wang R, Guo ZH (2007) Photosynthetic responses of Schima superba grown in different light regimes of subtropical evergreen broadleaf forest. For Res 20:688–693 (in Chinese)
- Wang YH, Solberg S, Yu PT, Myking T, Vogt RD, Du SC (2007) Assessments of tree crown condition of two Masson pine forests in the acid rain region in south China. For Ecol Manag 242:530–540CrossRef
- Zhao DW, Seip HM (1991) Assessing effects of acid deposition in southwestern China using the magic model. Water Air Soil Pollut 60:83–97CrossRef
- Zhao DW, Larssen T, Zhang DB, Gao SD, Vogt RD, Seip HM, Lund OJ (2001) Acid deposition and acidification of soil and water in the Tie Shan Ping Area, Chongqing, China. Water Air Soil Pollut 130:1733–1738CrossRef
For further details log on website :
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