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Water chemistry of headwater streams under stormflow conditions in catchments covered by evergreen broadleaved forest and by coniferous plantation

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Abstract

It is important to determine the effects of vegetation on the water chemistry of headwater streams to ensure appropriate water resource management and landscape planning, particularly because vegetation is known to be one of the primary determinants of the chemistry in such streams and is easily altered by silvicultural operations. Previous studies of headwater stream water chemistry have investigated primarily the effects on baseflow. However, the sources and processes involved vary considerably between baseflow and stormflow due to rainfall. Stormflow water is supplied primarily through soil; accordingly, its chemistry is influenced by vegetation. The present study investigates the water chemistry of streams of headwater catchments, six with coniferous plantations and six with evergreen broadleaved forests, under four stormflow events and three times under baseflow conditions. The studied catchments were located in a hilly region in southwestern Japan and covered relatively small areas (0.7–3.6 ha). Inorganic ions, pH, and dissolved organic carbon were analyzed. A higher concentration of dissolved organic carbon and a lower concentration of Cl were found in the broadleaved catchments compared to the coniferous catchments under stormflow conditions, but no differences were detected under baseflow conditions. For catchments with older forests, the NO3 concentration was higher in the coniferous catchments than the broadleaved catchments under stormflow conditions. These results indicate that these three constituents were not diluted during stormflow and that their presence in soil water may be affected by the type of vegetation. The observed increased NO3 concentration under stormflow conditions may result in higher loading downstream.

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References

  • Brauman KA, Daily GC, Duarte TK, Mooney HA (2007) The nature and value of ecosystem services: an overview highlighting hydrologic services. Annu Rev Environ Resour 32:67–98

    Article  Google Scholar 

  • Chiwa M, Ide J, Maruno R, Higashi N, Otsuki K (2010a) Effects of storm flow samplings on the evaluation of inorganic nitrogen and sulfate budgets in a small forested watershed. Hydrol Process 24:631–640

    Article  CAS  Google Scholar 

  • Chiwa M, Maruno R, Ide J, Miyano T, Higashi N, Otsuki K (2010b) Role of stormflow in reducing N retention in a suburban forested watershed, western Japan. J Geophys Res 115:G02004. doi:10.1029/2009JG000944

    Google Scholar 

  • Creed IF, Band LE (1998) Exploring functional similarity in the export of nitrate-N from forested catchments: a mechanistic modeling approach. Water Resour Res 34:3079–3093

    Article  CAS  Google Scholar 

  • De Schrijver A, Geudens G, Augusto L, Staelens J, Mertens J, Wuyts K, Gielis L, Verheyen K (2007) The effect of forest type on throughfall deposition and seepage flux: a review. Oecologia 153:663–674

    Article  PubMed  Google Scholar 

  • Goodale CL, Aber JD, Vitousek PM (2003) An unexpected nitrate decline in New Hampshire streams. Ecosystems 6:75–86

    Article  CAS  Google Scholar 

  • Inagaki Y, Miura S, Kohzu A (2004) Effects of forest type and stand age on litterfall quality and soil N dynamics in Shikoku district, southern Japan. For Ecol Manage 202:107–117

    Article  Google Scholar 

  • Ishihara MI, Suzuki SN, Nakamura M, Enoki T, Fujiwara A, Hiura T, Homma K, Hoshino D, Hoshizaki K, Ida H, Ishida K, Itoh K, Kaneko T, Kubota K, Kuraji K, Kuramoto S, Makita A, Masaki T, Nakajima K, Niiyama K, Noguchi M, Nomiya H, Ohkubo T, Saito S, Sakai T, Sakimoto M, Sakio H, Sato T, Shibano H, Sugita H, Suzuki M, Takashima A, Tanaka N, Tashiro N, Tokuchi N, Yoshida T, Yoshida Y (2011) Forest stand structure, composition, and dynamics in 34 sites over Japan. Ecol Res 26:1007–1008

    Article  Google Scholar 

  • Japan Environmental Laboratories Association (2010) Acid deposition survey in Japan, Phase 4 (H20) (2). J Environ Lab Assoc 35: 179–199. (http://db.cger.nies.go.jp/dataset/acidrain/ja/04/)

  • Katsuyama M, Ohte N, Uchida T, Asano Y, Kimoto A (2000) Effects of the difference of hydrological processes on the streamwater chemistry. J Jpn Soc Hydrol Water Resour 13:227–239 (in Japanese with English summary)

    Article  Google Scholar 

  • Knops JMH, Bradley KL, Wedin DA (2002) Mechanisms of plant species impacts on ecosystem nitrogen cycling. Ecol Lett 5:454–466

    Article  Google Scholar 

  • Konohira E, Yoshioka T (2005) Dissolved organic carbon and nitrate concentrations in streams: a useful index indicating carbon and nitrogen availability in catchments. Ecol Res 20:359–365

    Article  CAS  Google Scholar 

  • Konohira E, Shindo J, Yoshida T, Toda T (2006) Stream water chemistry in Japan. J Jpn Assoc Hydrol Sci 36:145–149 (in Japanese with English summary)

    Google Scholar 

  • Koshikawa MK, Watanabe M, Takamatsu T, Hayashi S, Nohara S, Satake K (2011) Relationships between stream water chemistry and watershed geology and topography in the Miomote River System, Niigata, Japan. Jpn J Limnol 72:71–80 (in Japanese with English summary)

    Article  CAS  Google Scholar 

  • Lovett GM, Weathers KC, Arthur MA (2002) Control of nitrogen loss from forested watersheds by soil carbon:nitrogen ratio and tree species composition. Ecosystems 5:712–718

    Article  CAS  Google Scholar 

  • Mitchell MJ, Iwatsubo G, Ohrui K, Nakagawa Y (2001) Nitrogen saturation in Japanese forest: an evaluation. For Ecol Manag 97:39–51

    Article  Google Scholar 

  • Mulholland PJ, Wilson GV, Jardine PM (1990) Hydrogeochemical response of a forested watershed to storm: effects of preferential flow along shallow and deep pathways. Water Resour Res 26:3021–3036

    Article  CAS  Google Scholar 

  • Oda T, Ohte N, Suzuki M (2011) Importance of frequent storm flow data for evaluating changes in stream water chemistry following clear-cutting in Japanese headwater catchments. For Ecol Manag 262:1305–1317

    Article  Google Scholar 

  • Ogawa A, Shibata H, Suzuki K, Mitchell MJ, Ikegami Y (2006) Relationship of topography to surface water chemistry with particular focus on nitrogen and organic carbon solutes within a forested watershed in Hokkaido, Japan. Hydrol Process 20:251–265

    Article  CAS  Google Scholar 

  • Ohrui K, Mitchell MJ (1997) Nitrogen saturation in Japanese forested watersheds. Ecol Appl 7:391–401

    Article  Google Scholar 

  • Ohrui K, Mitchell MJ (1998) Stream water chemistry in Japanese forested watersheds and its variability on a small regional scale. Water Resour Res 34:1553–1561

    Article  CAS  Google Scholar 

  • Ohrui K, Mitchell MJ (1999) Hydrological flow paths controlling stream chemistry in Japanese forested watersheds. Hydrol Process 13:877–888

    Article  Google Scholar 

  • Ohte N, Mitchell MJ, Shibata H, Tokuchi N, Toda H, Iwatsubo G (2001a) Comparative evaluation on nitrogen saturation of forest catchments in Japan and northeastern United States. Water Air Soil Pollut 130:649–654

    Article  Google Scholar 

  • Ohte N, Tokuchi N, Shibata H, Tsujimura M, Tanaka T, Mitchell MJ (2001b) Hydrobiogeochemistry of forest ecosystems in Japan: major themes and research issues. Hydrol Process 15:1771–1789

    Article  Google Scholar 

  • Peters NE, Ratcliffe EB, Tranter M (1998) Tracing solute mobility at the Panola Mountain Research Watershed, Georgia, USA: variations in Na+, Cl, and H4SiO4 concentrations. IAHS Publ 248:483–490

    CAS  Google Scholar 

  • Piatek KB, Mitchell MJ, Silva SR, Kendall C (2005) Sources of nitrate in snowmelt discharge: evidence from water chemistry and stable isotopes of nitrate. Water Air Soil Pollut 165:13–35

    Article  CAS  Google Scholar 

  • Piatek KB, Christopher SF, Mitchell MJ (2009) Spatial and temporal dynamics of stream chemistry in a forested watershed. Hydrol Earth System Sci 13:423–439

    Article  CAS  Google Scholar 

  • Reynolds B, Ormerod SJ, Gee AS (1994) Spatial patterns in stream nitrate concentrations in upland Wales in relation to catchment forest cover and forest age. Environ Pollut 84:27–33

    Article  CAS  PubMed  Google Scholar 

  • Rothe A, Mellert KH (2004) Effects of forest management on nitrate concentrations in seepage water of forests in Southern Bavaria, Germany. Water Air Soil Pollut 156:337–355

    Article  CAS  Google Scholar 

  • Rusjan S, Brilly M, Mikoš M (2008) Flushing of nitrate from a forested watershed: an insight into hydrological nitrate mobilization mechanisms through seasonal high-frequency stream nitrate dynamics. J Hydrol 354:187–202

    Article  Google Scholar 

  • Sidle RC, Tsuboyama Y, Noguchi S, Hosoda I, Fujieda M, Shimizu T (2000) Stormflow generation in steep forested headwaters: a linked hydrogeomorphic paradigm. Hydrol Process 14:369–385

    Article  Google Scholar 

  • Staelens J, Rütting T, Huygens D, De Schrijver A, Müller C, Verheyen K, Boeckx P (2012) In situ gross nitrogen transformations differ between temperate deciduous and coniferous forest soils. Biogeochemistry 108:259–277

    Article  CAS  Google Scholar 

  • Stevens PA, Norris DA, Sparks TH, Hodgson AL (1994) The impacts of atmospheric N inputs on throughfall, soil and stream water interactions for different aged forest and moorland catchments in Wales. Water Air Soil Pollut 73:297–317

    Article  CAS  Google Scholar 

  • Tabayashi Y, Koba K (2011) Heterogeneous atmospheric nitrogen deposition effects upon the nitrate concentration of stream waters in a forested mountain area. Water Air Soil Pollut 216:105–115

    Article  CAS  Google Scholar 

  • Takagi M, Nogami K, Nakagawa Y (2004) Storm solute behavior of a small forested catchments in southern Kyushu. J Jpn For Soc. 86:279–282 (in Japanese with English summary)

    Google Scholar 

  • Tanaka M, Suzuki K (2005) Effects of watershed characteristics on chemistry of stream water. J Jpn Assoc Hydrol Sci 36:3–14 (in Japanese with English summary)

    Google Scholar 

  • Tobari Y, Koba K, Fukushima K, Tokuchi N, Ohte N, Tateno R, Toyoda S, Yoshioka T, Yoshida N (2010) Contribution of atmospheric nitrate to stream-water nitrate in Japanese coniferous forests revealed by the oxygen isotope ratio of nitrate. Rapid Commun Mass Spectrom 24:1281–1286

    Article  CAS  PubMed  Google Scholar 

  • van Verseveld WJ, McDonnell JJ, Lajtha K (2009) The role of hillslope hydrology in controlling nutrient loss. J Hydrol 367:177–187

    Article  Google Scholar 

  • Vitousek PM (1977) The regulation of element concentrations in mountain streams in the northeastern United States. Ecol Monogr 47:65–87

    Article  Google Scholar 

  • Welsch DL, Kroll CN, McDonnell JJ, Burns DA (2001) Topographic controls on the chemistry of subsurface stormflow. Hydrol Proces 15:1925–1938

    Article  Google Scholar 

  • Williard KWJ, Dewalle DR, Edwards PJ (2005) Influence of bedrock geology and tree species composition on stream nitrate concentrations in mid-Appalachian forested watersheds. Water Air Soil Pollut 160:55–76

    Article  CAS  Google Scholar 

  • Yoh M, Konohira E, Yagi K (2001) Regional distribution of natural stream nitrate in central Japan. Water Air Soil Pollut 130:655–660

    Article  Google Scholar 

  • Zhang Z, Fukushima T, Shi P, Tao F, Onda Y, Gomi T, Mizugaki S, Asano Y, Kosugi K, Hiramatsu S, Kitahara H, Kuraji K, Terajima T, Matsushige K (2008a) Seasonal changes of nitrate concentrations in baseflow headwaters of coniferous forests in Japan: a significant indicator for N saturation. Catena 76:63–69

    Article  CAS  Google Scholar 

  • Zhang Z, Fukushima T, Shi P, Tao F, Onda Y, Gomi T, Mizugaki S, Asano Y, Kosugi K, Hiramatsu S, Kitahara H, Kuraji K, Terajima T, Matsushige K (2008b) Baseflow concentrations of nitrogen and phosphorus in forested headwaters in Japan. Sci Total Environ 402:113–122

    Article  CAS  PubMed  Google Scholar 

Download references

Acknowledgments

I would like to express my gratitude to Dr. Sadatoshi Meguro for the analysis of DOC and two anonymous reviewers for their valuable comments. This study was supported by the Sumitomo Foundation and Grants-in-Aid for Scientific Research from the JSPS (no. 25252029). The vegetation survey was conducted as part of the Monitoring Sites 1000 Project of the Ministry of Environment, Japan.

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Correspondence to Masahiro Takagi.

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Takagi, M. Water chemistry of headwater streams under stormflow conditions in catchments covered by evergreen broadleaved forest and by coniferous plantation. Landscape Ecol Eng 11, 293–302 (2015). https://doi.org/10.1007/s11355-014-0269-4

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  • DOI: https://doi.org/10.1007/s11355-014-0269-4

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