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Foundation Pit & Deep Excavation Support Solutions

Foundation Pit Design Problems

The engineering challenges faced in a foundation pit:

A foundation pit is an excavation that is made below the surrounding ground level. Digging an excavation alters the stress state and groundwater regime of the ground and can also affect neighbouring structures, roads and services.

Common problems requiring engineered support include:

  • Failure of unsupported ground surfaces
  • Limited stand-up time in poor soils
  • Loose sands or fills
  • Soft clays and squeezing conditions
  • Transitioning soil- and rock-ground conditions
  • Groundwater entering the excavation
  • Piping/internal erosion
  • Bottom heave
  • Hydraulic heave
  • Underflow under the retaining system
  • Unacceptable wall deflection
  • Settlement behind the wall
  • Movement of nearby foundations
  • Disturbance to roads, pavements or services
  • Surface surcharge loads (buildings, cranes, stored materials etc.)
  • Limited space (right-of-way)
  • Limitations on anchors crossing property line
  • Conflict with existing piles/services
  • Construction in stages – excavation and installing supports
  • Changes in bracing/arch loads/anchors
  • Temporary support removal
  • Rainfall/inflow from ground surface
  • Corrosion with a prolonged construction schedule
  • Providing safe access and exit into the pit
  • Monitoring movements and reacting to unforeseen movement.

The type of support system required is determined by excavation depth, ground and groundwater conditions—not necessarily by product type.

 

Support for a Foundation Pit is a System

Steel bars and accessories are just pieces of the puzzle. Other parts of a deep- excavation support system can include:

  • Retaining wall
  • Soil nails or ground anchors
  • Internal struts
  • Walers
  • Shotcrete or concrete facing
  • Piles or diaphragm walls
  • Groundwater cutoff
  • Dewatering
  • Drainage
  • Ground improvement
  • Underpinning
  • Instrumentation
  • Construction sequencing
  • Emergency response procedures

 

Principal System Functions

System function Typical purpose
Earth retention Prevent the sides of the excavation from collapsing
External reinforcement Transfer loads into reinforced ground outside the pit
Internal bracing Restrain retaining walls from inside the excavation
Water control Limit seepage, piping, uplift and loss of ground
Foundation protection Control movement affecting neighboring structures
Surface protection Prevent localized ravelling or erosion
Monitoring Detect wall movement, settlement, water pressure and support loads
Access protection Maintain safe routes for workers and equipment

 

Excavation Support Systems

Wanfeng provides reinforcement and connection elements that can be included in engineered excavation-support systems when designed by a professional engineer. Threaded soil nail bars can be used to reinforce appropriate soil during staged top-down excavation. Threaded anchor bars can be utilized in an engineered tieback system where ground conditions and property lines allow. Rock bolts can be used to reinforce stable or jointed rock masses. Bearing plates, nuts, couplers and welded wire mesh can be used to connect reinforcement to an approved facing.

Subject to the project specification, these products can be part of:

  • Soil nail walls
  • Ground-anchored pile walls
  • Soldier piles and lagging
  • Secant or contiguous pile walls
  • Diaphragm walls
  • Sheet-pile walls
  • Internal struts and walers
  • Shotcrete facing
  • Cast-in-place concrete facing
  • Rock Excavation Support
  • Dewatering wells
  • Cutoff walls
  • Ground improvement
  • Underpinning
  • Instrumentation and monitoring

The foregoing systems are not Wanfeng products unless specifically confirmed.

Component Functions  

Depending on the engineered design, products supplied by Wanfeng can be used to:

  • Reinforce a specific soil mass
  • Bridge discontinuities in rock
  • Transfer tension loads with threaded steel bars
  • Connect soil reinforcement or rock bolts to the facing
  • Spread local nail- or anchor-head loads
  • Join lengths of bars
  • Center bars in grout with centralizers
  • Reinforce shotcrete facing, if specified by the project
  • Allow for traceability of materials
  • Provide corrosion resistance, if specified by the project

Engineering Professional Services  

Excavation dimensions, retaining-wall style, support spacing, length of soil nails or anchors, batter, bond length, level of prestress applied, internal brace type and spacing, depth of wall embedment, drainage and sequenced construction must be engineered by a licensed geotechnical engineer and civil/structural engineer where appropriate.

The engineering should consider:

  • Overall stability
  • Wall bending and shear strength
  • Support forces
  • Ground-anchor pullout resistance
  • Soil-nail pullout resistance
  • Basal heave
  • Hydraulic uplift
  • Piping
  • Ground-loss volumes
  • Settlement of adjacent structures
  • Structural strength
  • Seismic design criteria
  • Construction stagings

Wanfeng does not design excavation supports.  Components are provided based on specified requirements.  We do not replace the engineer’s design of excavation support, groundwater control or temporary works.

 

Comparison of Common Support Systems

Support system Typical application Principal components Important limitation
Sloping or benching Where sufficient space and suitable ground are available Excavated slope geometry and surface protection May be impractical in restricted urban sites
Soil nail wall Ground capable of temporary staged exposure Grouted nails, drainage, reinforced facing and nail heads Generally requires top-down staged excavation
Ground-anchored wall Deep excavation with suitable external bond zone Retaining wall, prestressed anchors, walers and anchor heads Requires property rights and specialist testing
Internally braced wall Restricted site or anchors not permitted outside boundary Wall, walers, struts and connections Struts can restrict excavation operations
Cantilever pile or wall Moderate depth with sufficient wall stiffness and embedment Sheet piles, soldier piles, secant piles or diaphragm wall Deflection can govern design
Rock excavation support Competent or fractured rock Rock bolts, dowels, mesh and shotcrete where designed Geological discontinuities control performance
Underpinning system Excavation close to existing foundations Underpinning piles, beams, jacks or transfer structures Requires structural and geotechnical coordination
Ground improvement system Weak ground, basal instability or seepage concerns Deep mixing, jet grouting or other approved methods Not replaced by steel bars alone

This comparison is conceptual and should not be used to select a system without site-specific design.

 

Recommended Products

1. Threaded Soil Nail Bars

Steel bars used as soil nails in project designed soil nail walls and certain staged excavations.

Important Specification Fields

  • Bar Diameter
  • Bar Length
  • Steel Grade
  • Yield & Ultimate Strength

Other Specification Fields

  • Thread Profile / Pitch
  • Section Length
  • Coupler Compatibility
  • Corrosion Protection

2. Coupled Soil Nail Bars

Threaded bars sectioned and assembled with compatible couplers when access or nail length prohibits single-piece bars.

Important Specification Fields

  • Bar Diameter
  • Section Length
  • Coupler Dimensions
  • Connection Capacity

Other Specification Fields

  • Thread Engagement
  • Steel Grade
  • Coating
  • Connection Tolerance

Application Note

The entire coupled connection will be required to meet the specified tensile requirement. Capacity of the coupler should be validated separately from the bar material.

3. Threaded Ground-Anchor Bars

Specialty high strength threaded bars that can serve as the tendon of a project designed ground-anchor assembly.

Important Specification Fields

  • Bar Diameter
  • Total Length
  • Steel Grade
  • Yield & Ultimate Load

Other Specification Fields

  • Free and Bond Lengths
  • Coupler Configuration
  • Prestress Requirement
  • Corrosion-Protection Coating

Application Note

Ground anchors are typically designed as complete prestressed systems. Ground anchors are not simply threaded bars. Ground anchors may require:

  • Anchor Head
  • Bearing Plate
  • Trumpet
  • Sheathing
  • Free-Length Protection
  • Bond-Length Grout
  • Centralizers
  • Lock-Off Components
  • Load Testing

Only include yourself in the supply of a complete ground-anchor system if you have verified the production, installation and testing of every component.

4. Rock Bolts and Dowels

Steel bars used to reinforce rock sections that may be encountered through or around a foundation excavation.

Important Specification Fields

  • Diameter
  • Length
  • Steel Grade
  • Yield & Ultimate Load

Other Specification Fields

  • Tensioned or Untensioned Function
  • Anchorage Method
  • Thread Profile
  • Surface Coating/Treatment

5. Bearing Plates

Steel bearing plates used to connect bars to approved facing or structural connection details.

Important Specification Fields

  • Plate Dimensions
  • Plate Thickness
  • Anchor Hole Diameter
  • Steel Grade

Other Specification Fields

  • Flat or Curved Profile
  • Typical Load Performance
  • Configuration of attached washers
  • Surface Coating/Treatment

6. Nuts and Washers

Fasteners used in soil nail heads, threaded anchors and other drawing based connections.

Important Specification Fields

  • Thread Type and Size
  • Nut Dimensions
  • Steel Grade
  • Proof or Ultimate Load Capacity

Other Specification Fields

  • Washer Dimensions
  • Bearing Surface Arrangement
  • Coating
  • Compatible Threads

7. Centralizers and Spacers

Spacing components used to support bars within drilled holes at the correct position and grout coverage.

Important Specification Fields

  • Size of Compatible Bars
  • Size of compatible holes
  • Outside Dimensions
  • Material

Other Specification Fields

  • Method of Attachment to Reinforcement Bars
  • Spacing Requirement
  • Clearance for Grout Flow Around Component
  • Corrosion Resistance Requirements

8. Welded Wire Mesh

Steel mesh that may be used to reinforce the first layer of shotcrete or retain localized loose material where specified.

Important Specification Fields

  • Wire Diameter
  • Mesh Size
  • Overall Panel Size
  • Weld Strength

Other Specification Fields

  • Overlap Requirements
  • Configuration of Edge Wires
  • Coating
  • Shotcrete Facing Compatibility

Application Note

Mesh does not independently define the capacity of a facing. Shotcrete thickness, concrete compressive strength, reinforcement, construction joints, and connections to nails should be designed together as a complete facing system.

9. Nail-Head and Connection Components

Steel items used to connect bars to a facing based on construction drawings.

Possible Components

  • Bearing plates
  • Nuts and washers
  • Head studs
  • Connection brackets
  • Reinforcing bars
  • Fabricated steel plates

Important Specification Fields

  • Component Dimensions
  • Steel Grade
  • Are Welds Required? If so, what type?
  • Design or Proof Load Capacity

Hollow or Self-Drilling Bars

Bars with a hollow center may be used when conventional boreholes are disturbed or otherwise difficult to maintain.

Important Specification Fields

  • Outside Diameter
  • Bar Size
  • Yield & Ultimate Load Capacity
  • Minimum and Maximum Drill-bit Sizes

Other Specification Fields

  • Does the interior serve as a passage?
  • Coupler connection strength
  • Type of drill-bit required
  • Corrosion Protection Coating

Availability Note

Only include hollow bars or self-drilling bars if you have confirmed Wanfeng has actual production capability, load data, coupling strength, and familiarity with all required components for these bars to be installed.

 

Foundation Pit Selection Matrix

Typical site condition Typical requirement System or products that may be relevant
Suitable stiff soil with staged face stability Top-down reinforcement Soil nails, drainage and reinforced facing
Rock or weathered-rock excavation Discontinuity reinforcement Rock bolts or dowels with mesh or shotcrete where designed
Mixed soil-and-rock profile Support adapted to changing ground Hybrid soil nail, anchor, pile-wall or rock-support system
Deep urban excavation High wall stiffness and controlled movement Pile or diaphragm wall with anchors or internal bracing
Limited property rights Support without external anchor encroachment Internal struts, slabs or other internally supported system
Adjacent sensitive building Low-deformation support and monitoring Stiff retaining wall, staged support and possible underpinning
Loose granular ground Control of face stability and ground loss Pile wall, ground improvement, controlled excavation or specialist drilling
Soft clay Control of wall movement and basal heave Embedded wall, bracing and possible ground improvement
Water-bearing sand Seepage cutoff and piping control Cutoff wall, dewatering, recharge or ground improvement
High groundwater Water pressure and uplift control Engineered dewatering, cutoff and base-stability measures
Weak ground below pit base Basal stability Ground improvement, deep embedment, struts or other designed measures
Temporary excavation Construction-stage capacity Components and coatings suitable for the actual exposure period
Permanent basement wall Long-term durability and structural integration Permanent retaining system with verified corrosion protection
High surcharge near pit edge Increased wall and support load Project-specific wall, anchor or bracing design
Seismic condition Verified temporary and permanent seismic response Project-specific geotechnical and structural analysis

Disclaimer: Items included on the following list may only be applicable when utilized as components of a system.

Example:

  • Soil nails – Need stable face and staged excavation.
  • Ground anchors – Need adequate bonded length outside of the pit and permission to swing beyond your property line.
  • Rock bolts – Apply to rock only. Do not automatically hold soil in place.
  • Mesh – May control localized surface spoil, but will not prevent deep seated pit failure.
  • Dewatering – Decreases hydrostatic pressure, but can induce settlement outside of the pit.
  • Internal struts – Allow control of wall movement, but require proof of connections, timing of installation and removal sequencing.

 

Soil Nails and Ground Anchors Are Not Interchangeable

Characteristic Soil nail Prestressed ground anchor
Structural behavior Generally passive Actively prestressed
Load development Develops resistance as the ground deforms Load applied and locked off during installation
Typical grouting Commonly full-length grout Defined free and bond lengths
Typical spacing Relatively closely spaced Often wider spacing
Facing connection Nail head connected to reinforced facing Anchor head connected to wall or waler
Field testing Verification and proof testing as specified Performance, proof and lock-off testing as specified
Property boundary Nails may still require external rights External anchor bond zone commonly requires property rights

Project documentation should identify the intended element correctly. Marketing content should not use “soil nail,” “ground anchor” and “rock bolt” as synonyms.

 

System Scope Boundaries

Systems Potentially Provided by Wanfeng

Assuming availability has been confirmed:

  • Threaded soil nail bars
  • Threaded anchor bars
  • Rock bolts/dowels
  • Couplers
  • Bearing plates
  • Nuts/Washers
  • Centralizers
  • Welded wire mesh
  • Steel straps
  • Drawing dependent connection elements

Systems That May Be Necessary

DO NOT list as systems provided by Wanfeng until confirmed available:

  • Diaphragm walls
  • Secant or contiguous piles
  • Soldier piles and lagging
  • Sheet piles
  • Internal steel struts
  • Hydraulic shoring
  • Walers
  • Shotcrete
  • Dewatering wells
  • Cutoff walls
  • Recharge wells
  • Deep soil mixing
  • Jet grouting
  • Underpinning
  • Instrumentation
  • Temporary access towers
  • Excavation shoring

 

Example Typical Construction Interfaces

Typical Soil Nail Construction Sequence

  • Excavate approved lift
  • Inspect exposed ground
  • Drill soil nail holes
  • Install bars and centralizers
  • Place grout
  • Install drainage strips
  • Build reinforced initial facing
  • Install bearing plates, nail-head connection
  • Perform specified field testing
  • Repeat to next lift continuing to Final Excavation Level.
  • Install permanent facing where required.

Typical Anchored Wall Construction Sequence

  • Construct retaining wall.
  • Excavate to approved anchor level.
  • Install and grout anchor tendons.
  • Allow grout to attain specified condition.
  • Test and lock off anchors.
  • Install walers or connection details.
  • Continue excavation down to next support level.
  • Monitor wall movement & anchor loads.

Typical Internally Braced Excavation Construction Sequence

  • Construct retaining wall.
  • Excavate down to first bracing level.
  • Install walers and struts.
  • Verify connections, preload as specified.
  • Continue excavation in increments.
  • Install next level of bracing.
  • Construct permanent works.
  • Remove temporary bracing in approved sequence.

The above interfaces are examples only. Lift heights, lengths of time between excavation and support, support levels, prestress and removal sequences must be in accordance with the approved design and Method Statement.

 

Custom Manufacturing

Wanfeng can evaluate production schedules and approved drawings to determine manufacturability.

Examples of customizable items are:

  • Bar or bolt diameter
  • Total and sectional length
  • Thread profile, pitch and orientation
  • Threaded length
  • Steel grade
  • Yield and tensile strength
  • Coupler size
  • Bearing-plate size and thickness
  • Plate hole size
  • Nut/washer configurations
  • Centralizer size
  • Mesh wire diameter and spacing
  • Connection-plate size
  • Welding requirements
  • Hot dip galvanizing
  • Epoxy coating or specified coatings
  • Product marking
  • Heat/batch numbering
  • Packaging for installation stage storage
  • Inspection and test reports

All dimensions, tolerances, materials, loads and coatings should be verified on approved drawings or technical specifications prior to manufacturing.

 

Fabrication and Quality Assurance Details

1. Incoming Material Inspection:

  • Material test certificate review
  • Steel grade confirmation
  • Heat-number verification
  • Chemical Analysis (if specified)
  • Incoming Dimensional
  • Incoming surface inspection

2. Beam, Bolt, and Thread Details

  • Size
  • Length (overall and by section)
  • Straightness
  • Thread form
  • Pitch
  • Threaded length
  • Thread gaging
  • Coupler and Nut engagement

3. Mechanical Property & Connection Tests (Specify as required by contract)

  • Yield strength tests
  • Ultimate tensile strength tests
  • Elongation tests
  • Bar or bolt tension tests (full size)
  • Coupler tension tests
  • Nut proof load tests
  • Bearing plate load tests
  • Mesh weld shear tests
  • Fabricated connection tests
  • Welding Procedure Specifications (WPS) and Weld Inspections

4. Dimensional Acceptance

  • Plate width & height
  • Plate thickness
  • Hole size
  • Coupler width & height
  • Nut/washer dimensions
  • Centralizer dimensions
  • Mesh opening size and panel sizes
  • Dimensions of Fabricated Connections

5. Surface Preparation and Coating

  • Surface preparation
  • Coating thickness
  • Coating coverage
  • Threads after coating applied
  • Allowable repairs after coating applied
  • Shipping Protection

6. Identification and Release for Shipment

  • Heat or Lot number traceability
  • Marking of Product
  • Record of inspection
  • Confirm quantity
  • Review Drawing & Purchase Order
  • Packaging
  • Review of Shipping Documents

 

Factory Testing and Field Verification

Factory testing verifies supplied component properties. It does not verify excavation stability or installed ground resistance.

Test or inspection Typical location Purpose
Bar tensile test Factory or laboratory Verify steel mechanical properties
Coupler tensile test Factory or laboratory Verify connection capacity
Nut proof-load test Factory or laboratory Verify nut performance
Plate inspection Factory Verify material and dimensions
Mesh weld test Factory or laboratory Verify specified weld capacity
Coating inspection Factory Verify protection requirements
Soil nail verification test Site Assess installation method and ground bond
Soil nail proof test Site Check selected production nails
Ground-anchor performance test Site Evaluate load–displacement behavior
Anchor proof test Site Verify production-anchor performance
Wall survey Site Monitor lateral wall movement
Settlement monitoring Site Monitor surrounding ground and structures
Piezometer monitoring Site Assess groundwater pressure

Factory tensile strength must not be presented as proof of soil-nail pullout resistance, ground-anchor bond capacity or foundation-pit stability.

 

Water Control, Monitoring and Inspection

Water- Control Considerations

The plan should consider:

  • Diversion of surface water
  • Inflow of rainfall
  • Seepage through retaining structure
  • Water-bearing soils
  • Deep wells for dewatering
  • Cutoff walls
  • In-pit recharge
  • Piping
  • Ground loss
  • Base heave
  • Drainage maintenance
  • Discharge permitting/treatment

Consideration should be given to effects of dewatering on settlement of adjacent ground and structures.

Monitoring Should Include

  • Inclinometers
  • Survey points
  • Settlement points
  • Structural monitoring points
  • Crackmeters
  • Piezometers
  • Anchor load cells
  • Strut load cells
  • Groundwater- level observation wells
  • Maintenance of visual logs

Warning Signs

  • Ground cracking
  • Increased wall movements
  • Settlement not aligned with predictions
  • Structures or pavement cracking
  • Boiling soil particles with water
  • Heave at base of pit
  • Sudden increase in ground or surface water seepage
  • Loose or distorted brace connections
  • Loss or increase in anchor loads
  • Bent struts
  • Damaged walers
  • Local face failures
  • Movement after prolonged rainfall

Warning criteria and subsequent actions should be established by the engineers in charge prior to excavation.

 

FAQ

Q: What is foundation pit support?

A: Foundation pit support refers to temporary earth retention systems designed and installed to manage soil or rock movement, groundwater pressures and provide safety to workers, nearby structures and utilities. Supports can include retaining walls, anchors, soil nails, struts, drainage and monitoring instrumentation.

Q: What is the difference between foundation pit support and trench shoring?

A: Foundation pits tend to be wider, deeper and more influenced by nearby structures and groundwater conditions. Trench shoring is used for narrow, subterranean excavations. Both systems require appropriate support design based on anticipated loads and ground conditions.

Q: Can soil nails be used for deep foundation pits?

A: In some cases where staged excavations can be temporarily exposed, bond resistance can be achieved and legal rights exist for installation, soil nails could be used in deep excavations. Soil nails are not a panacea for every deep project.

Q: What is the difference between a soil nail and a ground anchor?

A: Conventional soil nails are normally passive and fully grouted. Ground anchors are generally prestressed with specified free length and bonded length. Testing and connections are different as is structural behavior.

Q: Can rock bolts be used in a foundation pit?

A: Rock bolts/rebars/dowels can be used to help reinforce rock sections. However they will not inherently stabilize soil above or help manage groundwater. Deep mixes of competent rock and weaker materials may require hybrid support designs.

Q: Can Wanfeng review complete ground anchors?

A: Wanfeng can evaluate threaded bars, plates, nuts, couplers and any components manufactured based on 2D drawings. Only if the anchor head, tendon, protection of free-length, bond zone, corrosion compatibility and testing records can be verified should “complete ground- anchor” representation be claimed.

Q: Why is groundwater important when designing deep excavations?

A: Improper groundwater management can result in seepage forces, piping, base heave, uplift, loss of soil from the bottom of the pit and movement of soil outside of the pit. Trying to lower groundwater can result in settlement of nearby ground. Control of groundwater usually requires project specific evaluation.

Q: Can Wanfeng fabricate from excavation-support drawings?

A: Yes. Wanfeng can review any material, dimensions, threads per inch, design loads, coatings, test and production methods to verify if we can supply any approved components. Responsibility for overall support design belongs to the project team.

 

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