[ Solution ] Foundation Repair Est. 2009

Carbon Fiber Strap Installation: High-Strength Reinforcement with Minimal Disruption

For basement walls that haven't moved past the threshold where carbon fiber works, these straps provide strong lateral reinforcement with no exterior excavation required.

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Method Spec Carbon Fiber Strap Installation
Process
6 steps
Warranty
Workmanship Warranty
Inspection
Free, no obligation

On cost: $400–$700 per carbon fiber strap.

Overview

Carbon Fiber Strap Installation

Carbon fiber straps are high-tensile-strength composite straps bonded vertically to the face of a bowing basement wall to prevent further inward deflection. The straps are made from the same carbon fiber used in aerospace and structural engineering applications, rated at tensile strengths far exceeding steel by weight. When epoxy-bonded to a properly prepared wall surface from floor plate to sill plate, carbon fiber straps transfer the lateral soil pressure load into the top and bottom bearing points of the wall system rather than allowing the wall face to deflect. Carbon fiber reinforcement is best suited for walls that have deflected less than 2 inches and have not experienced significant cracking through the wall section. It is a hold-in-place system, not a restoration system, it prevents further movement but does not push the wall back toward its original position.

The wall surface at each strap location is cleaned of efflorescence, paint, and loose material. The strap channel is established by grinding a vertical groove from the top plate at the sill to the base at the floor slab. A two-part structural epoxy is applied to the channel, the carbon fiber strap is pressed into the epoxy, and the strap is rolled flat to ensure full bond coverage. A steel bracket is installed at the top of the strap anchoring into the floor framing above, and a base plate is installed at the bottom anchoring into the floor slab. The epoxy cures over 24 hours. The result is a continuous vertical reinforcement element that transfers soil pressure loads from the wall face into the structural floor system above and below.

Wondering if this is the right fix for what you are seeing? Learn more about the warning signs: Bouncing or Springy Floors and Bowing Basement Walls . Or browse the full Problem Signs library for foundation repair.

Installation Process

How we install carbon fiber strap installation

Wall Assessment and Strap Layout

Wall deflection is measured at multiple points. Strap locations are spaced based on wall height and deflection profile, typically 4 to 6 feet on center. We confirm the wall meets the deflection and condition criteria for carbon fiber reinforcement.

Wall Surface Preparation

Each strap location is cleaned of paint, efflorescence, and surface contaminants. The wall surface must provide adequate substrate for epoxy bonding. Severely deteriorated or painted surfaces may require additional preparation.

Epoxy Application

Structural two-part epoxy is applied in the prepared channel at each strap location. Coverage and thickness are controlled to ensure full bond across the strap width and length.

Strap Installation and Rolling

The carbon fiber strap is pressed into the epoxy bed and rolled from end to end to eliminate air pockets and ensure maximum contact. Strap alignment is checked for plumb.

Top and Bottom Bracket Installation

Steel brackets at the top and bottom of each strap anchor it to the floor framing above and the concrete floor slab below, completing the load transfer path from wall face to structural diaphragm.

Cure and Inspection

Epoxy is allowed to cure for 24 hours before full load is applied. The installation is inspected for bond continuity and bracket fastening. Documentation and warranty terms are provided.

Carbon fiber is strong, fast, and clean, no excavation, no digging in the yard, no wet concrete. For the right wall in the right condition, it's hard to beat. The important word there is 'right', we turn people away from carbon fiber every week because their wall has moved past where it works.
DV
Derek Veselich
Owner, Ground Up Foundation Repair

Why Ground Up

The difference is in the diagnosis

Get several quotes and you'll see a wide range of prices. The gap isn't luck. It's whether the contractor finds the actual cause and stands behind the work.

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Ground Up performing house lifting for foundation repair.

FAQ

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More Solutions

Other solutions we offer

Deep Foundation Systems

Deep foundation systems transfer structural loads from the ground surface to soil or rock at a depth where bearing capacity is reliable and unaffected by surface conditions. In Middle Tennessee, the primary driver for deep foundation work is the region's expansive clay geology: the top several feet of soil shrink in dry weather and swell in wet weather, making them unreliable bearing material for foundations that must remain stable year-round. Deep foundation elements including helical piers, push piers, and micropiles penetrate through this active zone and reach bedrock, dense gravels, or competent clay at depth where moisture variation has minimal effect. These systems are used for both new construction on difficult sites and for repair of existing foundations that have settled due to inadequate bearing in the near-surface soils. Ground Up designs and installs deep foundation systems for residential and light commercial applications throughout the Middle Tennessee region.

Epoxy Crack Injection

Epoxy crack injection is a structural repair method for concrete foundation walls, slabs, and beams that have developed cracks due to settlement, curing shrinkage, hydrostatic pressure, the outward force of water pushing against a foundation wall from saturated soil, or thermal movement. Low-viscosity epoxy resin is injected under low pressure through surface ports installed across the crack at regular intervals, filling the crack from its deepest point outward. As the epoxy cures, it bonds the two concrete faces together with tensile strength greater than the surrounding concrete. The result is a monolithic repair that restores the structural continuity of the cracked section. Epoxy injection is appropriate for dry or dormant cracks, cracks that are not actively wet and not in active movement. For cracks with active water seeping through them, polyurethane foam injection (which expands and seals in the presence of moisture) is often the appropriate first step, followed by epoxy once the wall has been dried out.

Expansion Joint Installation

Concrete is a rigid material that nonetheless moves with temperature, moisture, and loading. In Middle Tennessee's climate, with summer temperatures regularly exceeding 95 degrees and occasional hard freezes in winter, the thermal expansion and contraction of concrete slabs, driveways, sidewalks, and foundation walls is significant. When concrete cannot move freely, it builds up internal stress that is released suddenly as a crack. Expansion joints and control joints are planned gaps in the concrete that give it a place to move without cracking in the field of the slab or through a structural element. Ground Up installs expansion joints during new concrete work and cuts or installs retrofit joints in existing concrete to prevent crack propagation and protect adjacent structural elements from impact loading caused by slab movement.

Foundation Underpinning

Foundation underpinning is the process of extending the effective depth of a foundation's bearing capacity by installing structural support elements that bypass inadequate near-surface soils and transfer load to competent material at depth. In Middle Tennessee, where expansive clay soils lose and regain bearing capacity with every moisture cycle, underpinning is the most durable long-term foundation repair strategy available. Ground Up installs two primary types of underpinning: helical pier underpinning, which uses rotating steel shafts with helical plates to reach bearing at a torque-confirmed depth; and push pier underpinning, which drives steel pipe sections hydraulically using the building's weight as a reaction force, meaning the home's own weight gives the hydraulic ram something to push against, until the pier reaches refusal in competent soil or rock. Both systems transfer the structural load from the clay soils that are causing settlement to deep bearing material that is unaffected by surface moisture variation, stopping settlement and in most cases allowing partial to full elevation recovery.

Concrete Piers for Foundation Support

Concrete piers are cast-in-place or pre-cast reinforced concrete elements that extend from the foundation footing down through unstable near-surface soils to a bearing stratum with adequate capacity. They are one of the most durable underpinning approaches available for residential and commercial foundations in Middle Tennessee, providing a permanent structural connection between the foundation and the stable soil or rock below the depth at which seasonal and moisture-driven soil movement occurs.

Grout Injection for Foundation Voids

Voids beneath concrete slabs and foundations develop when soil erodes, compresses, or is washed away by water movement. An unsupported slab spanning a void will crack and sink as the concrete deflects under load. Grout injection, also called pressure grouting or slab grouting, fills these voids by pumping a cement-based grout through small-diameter ports drilled through the concrete. The injected grout flows into the void, fills it, and sets, restoring continuous soil support beneath the slab before structural damage can escalate.

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