March-April 2007

  • 1
  • 2

Compost and Tillage for Plant Establishment Researching Roadway Plots in San Jose

A Research Project on Roadway Plots in San Jose

Article Tools

Create a Link to this Article

By Karin Grobe

Comments

Vic Claassen, a soil scientist with the University of California–Davis Department of Land, Air, and Water Resources, is researching the effect of compost and tillage on plant establishment and growth in degraded roadside soils. Researchers from his soils and revegetation lab are gathering information on the potential for establishment of California native shrubs and grasses in arid climates without the aid of irrigation systems.

Vic Claassen researches the effect of compost and tillage on plant establishment under non-irrigated conditions.

Funding for the research, which is done in cooperation with the California Department of Transportation (Caltrans), is provided by the City of San Jose, CA. Compost was provided by BFI Newby Island Organics. The study will assist the department in California native revegetation and restoration work for California roadsides.

Claassen is testing the ability of compost to increase the water-holding capacity of soil through aggregation formation. Compost contains microorganisms and decomposing organic materials that aid in the formation of soil aggregates. Bacteria and fungi attach themselves to soil particles and bind them together, forming tiny aggregate crumbs. The spaces inside and between these aggregates allow excess water to percolate through the soil and allow air to reach plant roots. They form caves and voids that are reservoirs of water protected from evaporation. Plant roots penetrate these aggregates and utilize water reserves in times of drought.

The project, on a Caltrans right of way in San Jose, is sited on a southwest-facing slope that presents challenges for plant establishment. The coarse fraction (rock content) in the soil is about 70%, and there’s little water—the mean annual rainfall of San Jose is less than 15 inches and occurs primarily between October and April, leaving plants high and dry May through September. Plants at the project site have to contend with 15 hours a day of hot summer sun combined with the heat generated by a sea of asphalt.

Following a 1992 Environmental Impact Report on Caltrans Vegetation Control Practices, the department adopted an integrated vegetation management (IVM) program for its roadsides. A major component of the IVM program is the development of structural designs and construction methodologies that reduce the need for ongoing vegetation management.

Jack Broadbent, supervising landscape architect in Caltrans’ Office of Roadside Management, points out that water-delivery systems are a major expense for highway landscaping. “Irrigation systems are expensive to install and must be maintained against normal wear and tear as well as accidental damage,” says Broadbent. “If the irrigation system tubing is damaged, you typically find out too late, when the plants start to die.”

Water is a precious commodity and is growing more precious every day in the arid West as farmers, fish, and a burgeoning population compete for dwindling resources. “In case of an extended drought period, roadside landscaping will likely be the first to feel the pinch,” says Broadbent.

Claassen’s research involves evaluating the ability of compost and tillage treatments to increase water availability to the plants. The plants being used are coyote bush (Baccharis pilularis) and purple needlegrass (Nassella pulchra). Both plants are native to California.

The plant available water (PAW) in the fine-earth fraction of the soil at the San Jose research site is 9.5%. When a given volume of this soil is amended with 25% compost (volume to volume), the PAW becomes 12.5%. “Water resources within the volume of rootable soil are increased,” says Claassen, “and the compost addition improves root density, water infiltration, nutrient availability, and microbial activity, providing additional benefits for plant growth.”

There are eight research treatments:

  1. Control—no tillage, no compost
  2. Control—no tillage, 6 centimeters compost applied as surface mulch
  3. Till to 50 centimeters, no compost
  4. Till to 50 centimeters, 6 centimeters compost applied as surface mulch
  5. Till to 50 centimeters, incorporate 6 centimeters compost to a depth of 25 centimeters (25% volume to volume)
  6. Till to 50 centimeters, incorporate 12 centimeters compost to a depth of 50 centimeters (25% volume to volume)
  7. Till to 100 centimeters, incorporate 6 centimeters compost to a depth of 25 centimeters (25% volume to volume)
  8. Till to 100 centimeters, add 20% water-retentive clay to lower 50 centimeters, incorporate 6 centimeters compost in upper 25 centimeters (25% volume to volume)

Each treatment is 1.5 meters wide with a 50-centimeter buffer between different plots. Treatments are replicated three times in a random arrangement. All plots are covered with weed mat and 5 centimeters of chip bark mulch.

Treatments 1 and 2 test the effect of compost applied as surface mulch on untilled plots. If a surface mulch conserves moisture or keeps the soil cooler, the mulched plants should be larger.

Advertisement

Treatments 3 through 6 test a uniform tillage depth to 50 centimeters, but with differing amounts of compost added. Compost is applied as a surface mulch in treatment 4, whereas it is tilled to depth in treatments 5 and 6. Plant growth of these treatments will be compared to treatment 3 (till but no compost). Treatment 7 evaluates whether deep rooting is limited by the hard-packed gravels at this site. Compost loading is the same amount and depth as for treatment 5. Treatment 8 is an ultimate intensive treatment with deep tillage, a water-retentive clay added at depth, and a similar loading of compost in the top 25 centimeters.

The research plots will be monitored over a three-year period. Preliminary results (June 2006) show stunted plants in treatment areas 1 and 2, with bottom leaves dried out and small leaves at branch tips, indicating some tillage is essential when establishing plants without an irrigation system. Surface mulch has a negligible impact when used alone with no tillage. Plants in treatment area 3 fared somewhat better than plants in treatment areas 1 and 2 but were still generally stunted and dried out. Plants in treatment areas 4 and 5 were healthy but smaller in size than those in treatment areas 6, 7, and 8, which were healthy and had large leaves. The plots with deeper tillage (treatments 7 and 8) may begin to show treatment differences in future seasons as time allows for deep rooting. Next Page >

  • 1
  • 2

What Do You Think?

Post a Comment

Be the first to tell us what you think!

Post a Comment

Not a subscriber? Sign Up
 
 
*  
 




 

Get Erosion Control E-mail Updates!

Get weekly news and updates through our Erosion Control e-mail newsletter!