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International Journal of Wildland Fire International Journal of Wildland Fire Society
Journal of the International Association of Wildland Fire
RESEARCH ARTICLE

Prescribed fire, soils, and stream water chemistry in a watershed in the Lake Tahoe Basin, California

Scott L. Stephens A F , Thomas Meixner B , Mark Poth C , Bruce McGurk D and Dale Payne E
+ Author Affiliations
- Author Affiliations

A Department of Environmental Science, Policy, and Management, University of California, Berkeley, CA 94720-3110, USA.

B Department of Environmental Sciences, University of California Riverside, Riverside, CA 92521, USA.

C USDA Forest Service, Pacific Southwest Research Station, Riverside, CA 92507, USA. Present address: Natural Resources and the Environment, United States Department of Agriculture, 1400 Independence Ave SW, Washington, D.C. 20250-2241, USA.

D United States Forest Service, Pacific Southwest Research Station, Albany, CA 94701, USA.

E Department of Environmental Studies, San Jose State University, San Jose, CA 95192, USA.

F Corresponding author. Telephone: +1 510 642 7304; email: stephens@nature.berkeley.edu

International Journal of Wildland Fire 13(1) 27-35 https://doi.org/10.1071/WF03002
Submitted: 10 January 2003  Accepted: 14 July 2003   Published: 8 April 2004

Abstract

Before Euro-American settlement fire was a common process in the forests of the Lake Tahoe Basin. The combination of drought, fire suppression, and past harvesting has produced ecosystems that are susceptible to high-severity wildfires. Consequently, a program of prescribed fire has been recommended but there is incomplete understanding of the ecological effects of fuels treatments, especially with regard to how treatments will affect the flow of nutrients to Lake Tahoe. Nitrogen and phosphorus are the most important nutrients affecting algal growth, and thus lake clarity. Existing data demonstrate a long-term shift from a co-limitation by both nitrogen and phosphorus to phosphorus limitation. Two high-consumption, moderate-intensity prescribed fires were conducted to determine their effects on soil and stream water chemistry. Stream water calcium concentrations increased in burned watersheds whereas soluble reactive phosphorus concentrations were not significantly different. Prescribed fires released calcium and raised soil pH and this may have resulted in the incorporation of phosphorus into insoluble forms. Stream monitoring data indicates water quality effects last for ~3 months. Prescribed fires did not significantly increase the amount of soluble reactive phosphorus in stream waters. However, additional research is needed to determine if prescribed fire increases erosion or movement of particulate P, particularly in areas with steep slopes.

Additional keywords: Sierra Nevada; mixed conifer forests; phosphorus; nutrients.


Acknowledgements

We sincerely thank Gary Walter for assisting us on this project. Discussions about this project with Mark Fenn, R.C. Graham, C. Amrhein, and Rowan Rowntree were very helpful.


References


Blanchard CL, Michaels H , Tannenbaum S (1996) Regional estimates of acid deposition fluxes in California for 1985–1994. California Air Resources Board, Final report 93–332 (Sacramento, CA)

Brown JK (1974) Handbook for inventorying downed wood material. USDA Forest Service, Intermountain Forest and Range Experimental Station General Technical Report INT-16 (Missoula, MT)

Byram GM (1959) Combustion of forest fuels. In Forest fire: control and use (Ed.  KP Davis )  pp. 61–89. (McGraw-Hill: New York)

Cade-Menum BJ, Berch SM, Preston CM , Lavkulich LM (2000) Phosphorus forms and related soil chemistry of Podzolic soils of northern Vancouver Island. II. The effects of clear-cutting and burning. Canadian Journal of Forest Research  30, 1726–1741.
Crossref | GoogleScholarGoogle Scholar |

Carlton D, Berger K, Holl S , Finney MA (2000) Wildland fire susceptibility analysis. Lake Tahoe Watershed Assessment: Volume II (Berkeley, CA)

Eaton AD (1995) Standard methods for the examination of water and wastewater (American Public Health Association: Washington, D.C.)  

Elliott-Fisk DL,  Cahill TC,  Davis OK,  Duan L,  Goldman CR,  Gruell GE,  Harris R,  Kattelmann R,  Lacey R,  Leisz D,  Lindstrom S,  Machida D,  Rowntree RA,  Rucks P,  Sharkey DA,  Stephens SL,  Ziegler DS (1997) Lake Tahoe Case Study. Sierra Nevada Ecosystem Project pp. 217–276. (University of California, Centers for Water and Wildland Resources: Davis)  Addendum

Fenn ME, Poth MA , Johnson DW (1996) Evidence for nitrogen saturation in the San Bernardino Mountains in southern California. Forest Ecology and Management  82, 211–230.
Crossref | GoogleScholarGoogle Scholar |

Goldman CR (1974) Eutrophication of Lake Tahoe, emphasizing water quality. United States Environmental Protection Agency, Report 660/3–74–034 (US Government Printing Office: Washington, D.C.)

Goldman CR (1988) Primary productivity, nutrients, and transparency during the early onset of eutrophication in ultra-oligotrophic Lake Tahoe, California-Nevada. Limnology and Oceanography  33, 1321–1333.


Goldman CR, Jassby AD , Hackly SH (1993) Decadal, interannual, and seasonal variability in enrichment bioassays at Lake Tahoe, California-Nevada. Canadian Journal of Fisheries and Aquatic Sciences  50, 1489–1496.


Hatch LK, Reuter JE , Goldman CR (1999) Daily phosphorus variation in a mountain stream. Water Resources Research  35, 3783–3791.
Crossref | GoogleScholarGoogle Scholar |

Heatherwaite AL, Johnes PJ , Peters NE (1996) Trends in nutrients. Hydrological Processes  10, 263–293.
Crossref | GoogleScholarGoogle Scholar |

Jassby AD, Goldman CR, Reuter JE , Richards RC (1999) Origins and scale dependence of temporal variability in the transparency of Lake Tahoe, California-Nevada. Limnology and Oceanography  44, 282–294.


Johnson DW , Curtis PS (2001) Effects of forest management on soil C and N storage: meta analysis. Forest Ecology and Management  140, 227–238.
Crossref | GoogleScholarGoogle Scholar |

Kennard DK , Gholz HL (2001) Effects of high and low-intensity fires on soil properties and plant growth in a Bolivian dry forest. Plant and Soil  234, 119–129.
Crossref | GoogleScholarGoogle Scholar |

Kerbavaz J (1989) Hydrology, soils, and resource inventory of Sugar Pine Point State Park. California Department of Parks and Recreation, unpublished report (Tahoe City, CA)

Laubhan MK (1995) Effects of prescribed fire on moist-soil vegetation and soil macronutrients. Wetlands  15, 159–166.


Leiberg JB (1902) Forest conditions in the northern Sierra Nevada, California. US Department of the Interior, US Geological Survey. Professional paper number 8, Series H, Forestry 5 194 pp.

Letey J (2001) Causes and consequences of fire-induced soil water repellency. Hydrological Processes  15, 2867–2875.
Crossref | GoogleScholarGoogle Scholar |

Likens GE,  Bormann FH (1995) Biogeochemistry of forested ecosystems 2nd edn. (Springer-Verlag: New York)  

Manley PN, Fites-Kaufman JA, Barbour MG, Schlesinger MD , Rizzo DM (2000) Biological integrity. Lake Tahoe Watershed Assessment: Volume 1 (Berkeley, CA)

Martin RE , Dell JD (1978) Planning for prescribed burning in the inland northwest. USDA Forest Service, Pacific Northwest Range and Experiment Station General Technical Report PNW-66 (Portland, OR)

Millar CI , Woolfenden WB (1999) The role of climate change in interpreting historical variability. Ecological Applications  9, 1207–1216.


Minshall GW, Robinson CT , Lawrence DE (1997) Postfire responses of lotic ecosystems in Yellowstone National Park, USA. Canadian Journal of Fisheries and Aquatic Sciences  54, 2509–2525.
Crossref | GoogleScholarGoogle Scholar |

Murphy DD , Knopp CM (2000) Lake Tahoe Watershed Assessment, Volume 1 USDA Forest Service, Pacific Southwest Forest and Range Experiment Station General Technical Report PSW-175 (Berkeley, CA) 735 pp.

Overby ST , Perry HM (1996) Direct effects of prescribed fire on available nitrogen and phosphorus in an Arizona chaparral watershed. Arid Soil Research and Rehabilitation  10, 347–357.


Parkhurst DL (1995) User's guide to PHREEQC: a computer program for speciation, reaction-path, advective-transport and inverse geochemical calculations. US Geological Service, Water Resources Investigations 95–4227  143 pp.

Riggan PJ, Lockwood RN, Jacks PM, Colver CG, Weirich F, DeBano LF , Brass JA (1994) Effects of fire severity on nitrate mobilization in watersheds subject to chronic atmospheric deposition. Environmental Science & Technology  28, 369–375.


Romanya J, Casals P , Vallejo VR (2001) Short-term effects of fire on soil nitrogen availability in Mediterranean grasslands and shrublands growing in old fields. Forest Ecology and Management  147, 39–53.
Crossref | GoogleScholarGoogle Scholar |

Rowntree RR (1998) Modeling fire and nutrient flux in the Lake Tahoe Basin. Journal of Forestry  96, 6–10.


Scheaffer RL,  McClave JT (1990) Probability and statistics for engineers (PWS-Kent Publishing Company: Boston, MA)  

Sposito G (1989) ‘The chemistry of soils.’ (Oxford University Press: New York)  

Sparks DL,  Page AL,  Helmke PA,  Loeppert RH,  Soltanpour PN,  Tabatabai MA,  Johnston CT,  Sumner ME (1996) Methods of soil analysis part 3—Chemical methods (Soil Science Society of America: Madison, WI)  

Stephens SL (1998) Effects of fuels and silvicultural treatments on potential fire behavior in mixed conifer forests of the Sierra Nevada, CA. Forest Ecology and Management  105, 21–34.
Crossref | GoogleScholarGoogle Scholar |

Stephens SL (2000) Mixed conifer and upper montane forest structure and uses in 1899 from the central and northern Sierra Nevada, CA. Madrono  47, 43–52.


Stephens SL (2001) Fire history of adjacent Jeffrey pine and upper montane forests in the Eastern Sierra Nevada. International Journal of Wildland Fire  10, 161–167.
Crossref | GoogleScholarGoogle Scholar |

Stephens SL , Finney MA (2002) Prescribed fire mortality of Sierra Nevada mixed conifer tree species: effects of crown damage and forest floor combustion. Forest Ecology and Management  162, 261–275.
Crossref | GoogleScholarGoogle Scholar |

Stephens SL, Skinner CN , Gill SJ (2003) Dendrochronology-based fire history of Jeffrey pine-mixed conifer forests in the Sierra San Pedro Martir, Mexico. Canadian Journal of Forest Research  33, 1090–1101.
Crossref | GoogleScholarGoogle Scholar |

Sudworth GB (1900) Stanislaus and Lake Tahoe Forest Reserves: California and adjacent territory. ‘Annual reports of the Department of the Interior for the fiscal year ended June 30, 1900.’ United States Geological Survey, 21st Annual Report. (US Government Printing Office: Washington, D.C.)

Tahoe Regional Planning Agency (1971) Soils of the Lake Tahoe region: a guide for planning (Tahoe Regional Planning Agency: South Lake Tahoe, CA)  

Tahoe Regional Planning Agency (1996) Water quality report for the water year 1995. (Tahoe Regional Planning Agency: South Lake Tahoe, CA)

Taylor AH (1998) Reconstruction of pre-Euroamerican forest structure, composition, and fire history in the Carson Range, Lake Tahoe Basin Management Unit. Final report, Cooperative agreement 0024-California-95 (USDA Forest Service, Pacific Southwest Research Station: Berkeley, CA.)

Townsend SA , Douglas MM (2000) The effect of three fire regimes on stream water quality, water yield and export coefficients in a tropical savanna (northern Australia). Journal of Hydrology  229, 118–137.
Crossref | GoogleScholarGoogle Scholar |

Ulery AL , Graham RC (1993) Forest-fire effects on soil color and texture. Soil Science Society of America Journal  57, 135–140.


Ulery AL, Graham RC , Amrhein C (1993) Wood-ash composition and soil-pH following intense burning. Soil Science  156, 358–364.


Ulery AL, Graham RC , Bowen LH (1996) Forest fire effects on soil phyllosilicates in California. Soil Science Society of America Journal  60, 309–315.


Upchurch DJ ,  Edmonds WJ (1991) Statistical procedures for specific objectives. In Spatial variabilities of soils and landforms (Eds  MJ Mausbach ,  LP Wilding )  pp. 49–72. (Soil Science Society of America: Madison, WI)

Van Lear DH, Douglass JE, Cox SK , Augspurger MK (1985) Sediment and nutrient export in runoff from burned and harvested pine watersheds in the South Carolina Piedmont. Journal of Environmental Quality  14, 169–174.


van Wagtendonk JW, Benedict JM , Sydoriak WS (1998) Fuel bed characteristics of Sierra Nevada conifers. Western Journal of Applied Forestry  13, 73–84.


Wan S, Hui D , Luo Y (2001) Fire effects on nitrogen pools and dynamics in terrestrial ecosystems: a meta-analysis. Ecological Applications  11, 1349–1365.


Wienhold BJ , Klemmedson JO (1992) Effect of prescribed fire on nitrogen and phosphorus in Arizona chaparral soil–plant systems. Arid Soil Research and Rehabilitation  6, 285–296.


Williams MR , Melack JM (1997) Effects of prescribed burning and drought on the solute chemistry of mixed-conifer forest streams of the Sierra Nevada, California. Biogeochemistry  39, 225–253.
Crossref | GoogleScholarGoogle Scholar |

Wright RJ , Hart SC (1997) Nitrogen and phosphorus status in a ponderosa pine forest after 20 years of interval burning. Ecoscience  4, 526–533.