Northeastern Colorado Foundation Repair
Commercial Push Pier Installation in Loveland

Commercial Push Pier Systems

The FSI Push Pier System utilizes high-strength round steel tubes and a load transfer bracket (retrofit foundation repair bracket) to stabilize and/or lift sinking or settling foundations. The foundation bracket is secured against the existing footing and pier sections are driven hydraulically through the foundation bracket and into the soil below using the combined structural weight and any contributory soil load as resistance. Pier sections are continuously driven until a suitable load-bearing stratum is encountered. At that point, the structure either begins to lift or the target pressure/load is achieved. The weight of the structure is then transferred from the unstable soil, to the foundation brackets, through the piers, and to firm load-bearing soil or bedrock.

The FSI Push Pier System develops a factor of safety against pier settlement by the pier installation methods used and the sequence with which multiple piers are driven and then re-loaded. Piers are first driven individually using the maximum weight of the structure and any contributory soil load. After all of the piers are driven, the piers are re-loaded simultaneously, and the total reaction load is distributed over the multiple pier locations. Since the average load on each pier during the load transfer operation is less than the load during pier installation/driving, a factor of safety against settlement is achieved. Typical factors of safety against pier settlement range from about 1.5 to 3.0, with higher values generally achieved for structures with greater rigidity. These factors of safety conservatively ignore any additional long-term frictional component to the pier's capacity (see below for more information).

Foundation Supportworks™ Model 288 Pier System Specifications

  • Bracket: Weldment manufactured from 0.25", 0.375", and 0.50"-thick steel plate. Yield strength = 36 ksi (min.), tensile strength = 58 ksi (min.).
  • External Sleeve: 3.50" OD x 0.216" wall x 30" or 48" long with sleeve collar welded to one end. Yield strength = 50 ksi (min.), tensile strength = 62 ksi (min.).
  • Pier Starter Tube: 2.875" OD x 0.165" wall x 50" long, triple-coated in-line galvanized. Yield strength = 50 ksi (min.), tensile strength = 55 ksi (min.). 3.375" OD x 0.188" wall x 1" long friction reducing collar welded to one end.
  • Pier Tube: 2.875" OD x 0.165" wall x 36" long, triple-coated in-line galvanized. Yield strength = 50 ksi (min.), tensile strength = 55 ksi (min.). 2.50" OD x 0.180" wall x 6" long internal coupler at one end with 3" extending out of pier tube.
  • Pier Cap: 5.0" wide x 9.0" long x 1" thick plate with confining ring welded to one side. Yield strength = 50 ksi (min.), tensile strength = 65 ksi (min.).
  • All-Thread Rod: 0.75" diameter x 16" long, zinc plated, Grade B7, tensile strength = 125 ksi [min.].
Push Pier Capacity Chart

Design Considerations

Push piers are installed directly adjacent to the existing structure utilizing side-load brackets. This introduces eccentricity into the system. The Model 288 Push Pier System incorporates an external sleeve at the top of the pier to aid in resisting the bending forces generated by this loading condition. This helps preserve the axial compressive capacity of the pier shaft. The external sleeve extends through and below the foundation bracket to essentially create a bracket that is 48 inches tall.

The moment or bending force is localized within a relatively short distance below the bracket. Although the bending force is dissipated quickly by the pier bearing against the confining soil, it is significant and cannot be ignored. The depth or length of sleeve and pier over which the bending force dissipates is a function of the soil stiffness near the surface. The depth is greater in soft clay and loose sand, and less in stiff clay and dense sand. In soft or loose soils, a small portion of the bending force may be transferred to the pier below the sleeve, thereby reducing the pier's allowable axial compressive capacity. A modified, lower capacity system is also available with a shorter, 30-inch long sleeve for low headroom applications.

Friction Reducing Collar

The first pier section advanced into the ground includes a larger-diameter "friction reducing collar" welded to the lead end. This collar, being larger in diameter than the pier tube, effectively creates annular space around the pier as it is advanced through most clayey soils. In soft clay or clean sand and gravel, an annular space may only temporarily be created. However, the larger diameter collar causes soil disturbance or remolding to occur, which also significantly reduces frictional resistance on the outside surface of the pier during driving. The result is a driven pier that generates most of its capacity in end bearing. Over time, the soils surrounding the pier relax back into the annular space and against the pier shaft. This provides an additional frictional component to the pier's capacity. Even though this frictional capacity may be significant, it is conservatively ignored in the determination of the pier's factor of safety against pier settlement.

Serving CO including the Greater Denver area
Our Colorado Service Area
Cities in Adams County, CO
Aurora
Bennett
Brighton
Commerce City
Denver
Dupont
Eastlake
Henderson
Strasburg
Thornton
Watkins
Westminster

Cities in Arapahoe County, CO
Aurora
Byers
Deer Trail
Denver
Englewood
Littleton
Centennial
Greenwood Village
Columbine Valley
Bow Mar
Cherry Hills Village
Sheridan

Cities in Boulder County, CO
Allenspark
Boulder
Eldorado Springs
Erie
Hygiene
Jamestown
Lafayette
Longmont
Louisville
Lyons
Nederland
Niwot
Pinecliffe
Ward
Superior

Cities in Broomfield County, CO
Broomfield

Cities in Denver County, CO
Denver

Cities in Douglas County, CO
Castle Rock
Littleton
Lone Tree
Parker
Highlands Ranch

Cities in Elbert County, CO
Agate

Cities in Gilpin County, CO
Black Hawk
Central City
Rollinsville

Cities in Jefferson County, CO
Arvada
Broomfield
Buffalo Creek
Conifer
Denver
Evergreen
Golden
Idledale
Indian Hills
Kittredge
Littleton
Morrison
Pine
Wheat Ridge

Cities in Larimer County, CO
Bellvue
Berthoud
Drake
Estes Park
Fort Collins
Glen Haven
Laporte
Livermore
Loveland
Masonville
Red Feather Lakes
Timnath
Wellington

Cities in Logan County, CO
Atwood
Merino
Padroni
Sterling

Cities in Morgan County, CO
Brush
Fort Morgan
Hillrose
Log Lane Village
Orchard
Snyder
Weldona
Wiggins

Cities in Washington County, CO
Akron
Anton
Cope
Lindon
Woodrow

Cities in Weld County, CO
Ault
Briggsdale
Brighton
Carr
Dacono
Eaton
Evans
Firestone
Fort Lupton
Frederick
Galeton
Gilcrest
Gill
Greeley
Grover
Hereford
Hudson
Johnstown
Keenesburg
Kersey
La Salle
Longmont
Lucerne
Mead
Milliken
New Raymer
Nunn
Pierce
Platteville
Roggen
Severance
Stoneham
Windsor

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