Solution Solution

Solution

Selection of high-quality tires from the world

Open-Pit Mine & Quarry Highwall Support Solutions

Mine and Quarry Highwall Problems

Mine and quarry highwalls are dynamic structures that change shape as mining, blasting, scaling and weathering continue. Engineering solutions to control localized rockfall are different than those which control large scale slope instability.

Common highwall problems include:

  • Loose or overhanging rock
  • Highly fractured bench faces
  • Planar sliding along bedding or persistent joints
  • Wedge failure formed by intersecting discontinuities
  • Toppling of steeply dipping blocks
  •  Ravelling of weathered or closely fractured rock
  • Faults, shear zones and altered material
  • Tension cracks behind the highwall crest
  • Blast induced fractures and backbreak
  • Undercutting at the highwall toe
  • Water flowing over or through the highwall
  • Groundwater pressure within discontinuities
  • Freeze–thaw and wet–dry deterioration
  • Old underground mine workings
  • Voids or weak seams behind the face
  • Highwall corners and changing pit geometry
  • Loose material accumulating on benches
  • Inadequate catch- bench capacity
  • Equipment and personnel exposure at the toe
  • Changes in haul-road or working- area alignment
  • Limited access for drilling and installation
  •  Progressive movement between inspections
  • Corrosion in permanently exposed components
  • Maintaining support during continuing extraction

Any given highwall may have periods where it appears stable. Behaviour may change after blasting, rainfall, excavation at the toe or overall pit geometry changes.

 

Local Support, Overall Stability and Rockfall Control

These functions should be evaluated separately.

Function Primary objective Typical measures
Local block reinforcement Prevent or limit movement of identified blocks or wedges Rock bolts, dowels, long bars or anchors
Surface retention Restrain smaller fragments close to the face Anchored mesh, welded mesh or shotcrete where designed
Overall slope stabilization Improve stability of a large slope mass Geometry changes, drainage, reinforcement, buttressing, controlled excavation or other engineered measures
Rockfall control Guide detached rock to a controlled area Draped mesh and maintained catch benches
Rockfall interception Stop moving rock before it reaches personnel or equipment Energy-rated barriers, catch fences or protective structures
Hazard monitoring Detect movement or deterioration Surveying, prisms, radar, extensometers, crack monitoring or remote sensing
Exposure control Keep people and equipment away from hazardous areas Exclusion zones, barricades, operating procedures and alarms

Rock bolts may stabilize a defined block but cannot be assumed to stabilize the entire highwall. Monitoring may provide warning but does not create physical stability.

 

Wanfeng’s Highwall Support Strategy

Wanfeng provides support and face-connecting components that can be part of a mine’s ground-control solution.

Rock bolts, dowels and cablebolts may bridge discontinuities to tie visible loose rock to stronger rock. Bearing plates and steel straps help spread loadings at the face. Mesh specified by the project can be used to help contain smaller rocks between bolt attachments.

Depending on the mine’s plan, these components may connect to or influence:

  • Highwall scalping
  • Controlled blasting / presplitting
  • Bench modification
  • Horizontal drainage
  • Surface runoff control
  • Shotcrete
  • Supported mesh
  • Draped mesh / rockfall mesh
  • Catch benches
  • Rockfall fences / mesh systems
  • Toe berms
  • Exclusion zones
  • Monitoring equipment
  • TRAP plans

Please note that these additional controls are not Wanfeng products unless specifically confirmed.

Functions of a System

The proper engineered set of components can be used to:

  • Restrict movement of visible blocks/wedges
  • Support critical fractures or weak areas
  • Bridge loads across discontinuities
  • Help distribute bolt forces against the wall face
  • Contain smaller rockfall
  • Improve bolting to surface retention connection
  • Help support local bench alterations
  • Provide appropriate corrosion protection features
  • Allow material tracking and testing

Engineering Disclaimer

Pit slopes, bench heights and widths, final slope angle, catch bench width, layout and angle of bolts, bolt lengths, bolt spacing, bolt type and lengtheners, bar/mesh strength, drainage, monitoring and exclusion considerations should be determined by or reviewed by professional mining, geotechnical and geological engineers familiar with highwall stabilization.

Considerations including but not limited to:

  • Rock-structure / Geomechanics
  • Joint sets
  • Weakplanes / potential failure surfaces
  • Water pressures
  • Vibration from blasting
  • Mining sequence
  • Past underground workings
  • Equipment exposure
  • Seismic events
  • Climate
  • Desired service life

Wanfeng can only provide components to meet specified requirements and does not assume responsibility for the mine’s ground-control plan, examination of the highwall or stability of the slope.

 

Recommended Products

1.Rock Bolts / Highwall Reinforcement Bolts

Steel reinforcing elements that can be installed through discontinuities or potential sliding surfaces to stabilize localized loosened rock masses.

Critical specification parameters

  • Diameter
  • Length
  • Material strength
  • Yield & ultimate capacity

Other common parameters

  • Thread pattern
  • Tensioned vs untensioned application
  • Anchor style
  • Surface coating

2. Fully Grouted Threaded Bars & Dowels

Threaded reinforcing bars designed to be fully-grouted at project specific depths for use in highwall or bench reinforcement applications.

Critical specification parameters

  • Bar Diameter
  • Bar Length
  • Material strength
  • Yield & ultimate capacity

Other common parameters

  • Thread orientation/pitch
  • Coupler requirement
  • Grout sleeve arrangement
  • Corrosion protection

Specification note

The application of the bar as a tensioned bolt or untensioned dowel should be specified.

3. Cable Bolts / Long Reinforcement

Lengthy reinforcing elements that can be used to bridge unstable areas where a failure plane extends beyond the typical maximum length for rock bolts.

Critical specification parameters

  • Cable Diameter
  • Cable Length
  • Strand Configuration
  • Min Breaking Strength

Other common parameters

  • Bulb Configuration
  • Bond Length
  • Grout Sleeve arrangement
  • Corrosion Protection

Specification note

Cable bolts are NOT inherently a permanent geotechnical anchor solution. Cable bolts still require project specific anchorage arrangement details, load-transfer mechanics, proof-testing requirements and durability considerations.

5. Coupled Reinforcement Bars

Segmented threaded bars used in applications where pinning oversized lengths through a coupler is necessary due to access restrictions, transport limits or overall length of reinforcement required.

Critical specification parameters

  • Bar Diameter
  • Section Length
  • Coupler Size and Type
  • Connection Strength

Other common parameters

  • Thread Engagement
  • Material strength
  • Surface coating
  • Coupler Installation Tolerance

5. Bearing Plates

Steel plates used at the highwall surface to help transfer and distribute the load of the reinforcement elements.

Critical specification parameters

  • Plate Size
  • Plate Thickness
  • Anchor Hole Size
  • Material strength

Other common parameters

  • Flat top vs domed top profile
  • Load Capacity
  • Washer requirements
  • Surface Treatment

Specification note

Thin or highly fractured material present at the collar area may necessitate a larger load-distribution solution. Engineering judgment is required when selecting plate size based on local ground conditions.

6. Welded Wire Mesh

Steel mesh panels that can be used for localized surface restraint or incorporated into a reinforced shotcrete solution.

Critical specification parameters

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

Other common parameters

  • Panel Overlap
  • Edge wire detail
  • Attachment detail
  • Coating

Specification note

Catalogued welded wire mesh should never be advertised as meeting rockfall barrier standards. Abrasion/ravinement tolerance and impact interception can only be guaranteed by a tested system consisting of mesh, supporting posts, terminal cables, energy damping devices, rock anchors and proper foundation design.

7. Steel Straps

Steel straps can be used to help distribute tensioned restraint across multiple points of reinforcement. Straps can be flat or contoured to match the required surface profile.

Critical specification parameters

  • Width
  • Material thickness
  • Length
  • Hole Pattern / Spacing

Other common parameters

  • Strap profile
  • Hole size
  • Material strength
  • Surface Treatment

8. Nut, Washers & Miscellaneous Items

Components used to complete installation of bearing plates and properly torqued reinforcement assemblies.

Critical specification parameters

  • Thread Type and Size
  • Nut Size
  • Material Strength
  • Proof Load / Ultimate Load

Available configurations may also include:

  • Nuts
  • Couplers
  • Washers
  • Centralizers
  • Spacers
  • Installation tools

 

Highwall Support Selection Matrix

Typical condition or failure mechanism Typical requirement Products or systems that may be relevant
Isolated loose block Localized block restraint Rock bolt or dowel with bearing plate
Planar sliding along a persistent structure Reinforcement across the potential sliding surface Engineered bolts, dowels or anchors
Wedge formed by intersecting joints Reinforcement oriented across controlling discontinuities Project-designed bolts or long reinforcement
Toppling blocks Control of rotation and separation Engineered bolts or dowels
Closely fractured bench face Surface retention Anchored mesh, welded mesh or shotcrete where designed
Ravelling of small fragments Retention and maintained catchment Suitable mesh with catch-bench management
Deep instability extending behind benches Overall slope stabilization Geometry modification, drainage, long reinforcement or other engineered controls
Weak or weathered collar zone Wider surface load distribution Suitable plates, washers, straps or reinforced facing
Water-bearing discontinuities Reduction of water pressure Horizontal drains and surface-water diversion
Blast-damaged face Scaling, reassessment and localized reinforcement Bolts or mesh only after the damaged zone is evaluated
Old underground workings behind highwall Assessment of voids, pillars and subsidence potential Mine-specific investigation and ground-control design
Highwall mining or auger openings Web, pillar and highwall stability Specialized highwall-mining ground-control analysis
Rockfall directed toward a catch bench Controlled descent and collection Engineered draped mesh and maintained catchment
Rockfall exposure above active work areas Impact interception and exposure control Rated barriers, protective structures or exclusion zones
Active or accelerating slope movement Immediate risk management Withdrawal, exclusion, monitoring and engineered reassessment
Long-term exposed support Durability and inspection Products with verified corrosion protection and traceability

Selection Guide

CAUTION: This chart is intended as a starting point only.

An appropriate highwall support system is dependent on addressing the mechanism of failure. For instance:

  • A short bolt will restrain a piece of rock on the surface but is unlikely to stabilize a deep failure surface.
  • Mesh will hold rock fragments in place but will not correct overall slope movement.
  • A catch bench will contain loose material but won’t prevent it from detaching.
  • Monitoring may tell you that movement is occurring but won’t stabilize your slope.
  • Installations should not be placed into a moving highwall without first submitting an access and risk- control plan for approval.

 

Conditions that may require special consideration

You may need to investigate further or provide special controls if your highwall has:

  • Large, persistent faults
  • Clay-filled discontinuities
  • Deep tension cracks
  • Old underground workings
  • Burned or severely altered rock
  • Weak overburden over stronger rock
  • High inflow
  • Runoff
  • Toe erosion
  • Sites where no catch bench has been cut
  • Undercutting
  • Areas of multiple- seam interaction

Highwall mining openings

Movement that is progressive or accelerating

Ambiguous geology

In these situations, localized steel reinforcement may be only one component of overall risk controls.

Note on Highwall Mining Applications

“Highwall mining” may also be used to describe remote mining of coal or another seam. This is accomplished through openings that are drilled horizontally into a highwall at a surface mine.

Additional considerations include:

Stability of web and barrier-pillars

  • Width and spacing of openings
  • Burden (overlying material)
  • Weak interburden
  • Old workings
  • Geology along highwall
  • Interaction between seams
  • Surface subsidence
  • Equipment recovery

Products featured on this website are not intended to be sold as a complete mining design solution for highwall mining. Layout of extraction and design of pillars needs to be performed by a qualified mine engineer.

 

Specialty Manufacturing Available

Wanfeng has the capability to review approved reinforcement schedules and plans to determine manufacturing feasibility. Items that can be customized include:

  • Bolt/bar/dowel diameter
  • Total and threaded length
  • Thread configuration (profile, pitch, direction)
  • Steel grade
  • Tensile yield strength and maximum strength
  • Cable length and layout
  • Coupler dimensions
  • Bearing plate size and thickness
  • Plate profile and hole diameter
  • Nut/washer configuration
  • Wire diameter for mesh and size of mesh openings
  • Dimensions of steel straps
  • Centralizers and spacers
  • Hot dip galvanizing
  • Special coatings requested by the project specification
  • Product marking (size, location)
  • Heat numbers and batch identification
  • Packaging, by bench if desired
  • Documentation of inspections and testing

Please confirm material type, dimensions, tolerances, working loads and coatings on approved drawings or technical specifications prior to releasing for production.

 

Production and Quality Assurance

Raw Material

  • Review of material certificate
  • Check steel grade
  • Identify heat-number
  • Chemical analysis check if specified
  • Incoming dimension inspection
  • Incoming surface-defect inspection

Bar, Bolt and Thread

  • Diameter
  • Overall length
  • Length of section
  • Straightness
  • Profile of thread
  • Pitch of thread
  • Length of thread
  • Thread-gauge verification
  • Coupler / Nut fit

Mechanical and Connection Test

Contractually required and if applicable:

  • Yield-strength test
  • Ultimate tensile-strength test
  • Elongation
  • Tensile test (bolt/bar)
  • Breaking-load test (cable)
  • Tensile test (coupler)
  • Proof-load test (nut)
  • Load testing (bearing-plate)
  • Mesh weld shear test
  • Test of fabricated-components

Dimensional

  • Plate length / width
  • Plate thickness
  • Hole diameter
  • Coupler dimensions
  • Nut / washer dimensions
  • Strap width / hole spacing
  • Mesh aperture / panel dimensions

Surface Preparation / Coating

  • Surface prep
  • Coating thickness
  • Coating coverage / appearance
  • Fit of coated thread
  • Allowable coating-repair
  • Packaging for coated products

Marking and Final Inspection

  • Heat / batch number
  • Marking of product
  • Inspector’s stamp(s) and report numbers
  • Quantity check
  • Drawing and PO review
  • Packaging
  • Shipping-documents

Certificates

If claimed, publish the following:

  • Certificate/report number
  • Issuing company
  • Manufacturing facility
  • Product
  • Property tested
  • Standard referenced
  • Dates issued / valid
  • PDF Download

NOTE: ASTM, EN, ISO, AS/NZS or Project Standards to only be shown if the product supplied conforms to the standard.

 

Factory Testing and Field Verification

Factory tests confirm component properties. They do not establish installed anchorage or overall highwall stability.

Test or inspection Typical location Purpose
Steel tensile test Factory or approved laboratory Verify material properties
Coupler tensile test Factory or laboratory Verify connection capacity
Cable breaking-load test Factory or laboratory Verify cable capacity
Bearing-plate inspection Factory Verify material and dimensions
Mesh weld test Factory or laboratory Verify specified weld strength
Coating inspection Factory Verify coating requirements
Bolt pull or proof test Mine site Assess installed anchorage performance
Grout record Mine site Document installation quality
Borehole log Mine site Record depth and encountered conditions
Geological mapping Mine site Identify discontinuities and hazards
Slope monitoring Mine site Detect movement or changing behavior

Factory bar tensile strength must not be presented as proof that the installed support can resist the identified slope load.

 

Installation and Operating Controls

Installation of highwall support can place workers in the face of the instability problem that is being remediated. The work plan approved for installation may need to specify:

  • Method of remote inspection prior to access
  • Scaling or controlled trimmings
  • Exclusion Zone
  • Locations not to drill through
  • Protection below suspended equipment
  • Access to benches for installation
  • Fall protection during installation
  • Orientation and depths of boreholes
  • Cleaning of boreholes
  • Identification of water-bearing holes
  • Placement of grout
  • Required bond length
  • Torque or tension for bolts where applicable
  • Seating of plates
  • Overlap and fastening of mesh
  • Inspection for coating damage during installation
  • Load testing of installed supports in the field
  • Documentation of completed installation
  • Inspection following blasting
  • Inspection following heavy rainfall events
  • Inspection following freeze–thaw cycles
  • Inspection following detected movement
  • Safe work procedures for repair or replacement

Any person shall be permitted beneath a suspected unstable highwall merely because installation of reinforcement was scheduled, but not completed and confirmed.

 

Highwall Inspection and Monitoring

Items that may be identified during the mines examination and monitoring program include:

  • Fresh rubble at toe of highwall
  • Material recently fallen onto benches
  • New or enlarging tension cracks
  • Loose or overhanging rock
  • Increased fracturing
  • Bulging or slumping
  • Displaced blocks
  • Waterflow from new locations
  • Blocked drainage
  • Bench erosion
  • Loss of catch-bench capacity
  • Undercutting
  • Blast damage to highwall
  • Old working becoming exposed
  • Loose nuts or displaced plates
  • Bent shear reinforcement
  • Broken or corroded mesh
  • Material build-up behind mesh
  • Movement as identified by prism, radar or survey readings
  • Unexpected equipment vibration or audible ground noise

Trigger-Action Principle

Trigger and response action thresholds should be established before triggering movement occurs. Responses may consist of, but are not limited to:

  • Increase frequency of observations
  • Withdraw people from hazard area
  • Relocate equipment
  • Expand exclusion zone
  • Scaling
  • Drainage work
  • Geotechnical review
  • Slope redesign
  • Suspension of mining activity within affected area

Wanfeng reserves the right to decide site alarm thresholds and will not authorize personnel to enter a highwall hazard zone.

 

FAQ

1. What is highwall support?

Highwall support consists of engineered solutions that help control instability within a mine or quarry face. Elements applicable to a given hazard can include geometry adjustments, scaling, drainage, rock reinforcement, surface retention, catch benches, barriers and monitoring.

2. How are rock bolts used in highwalls?

Rock bolts or dowels can be used to cross joints and potential failure surfaces to restrain identified blocks or wedges. The location, orientation, length and anchorage of bolts should be determined by geological mapping and engineering analysis.

3. Can bolts stabilize an entire open- pit slope?

Not necessarily. While bolts can be used to help control defined local or intermediate scale instability, a deep or overall slope failure can require geometry adjustments, drainage, long-term reinforcement, buttressing or mine planning adjustments.

4. What is the difference between anchored mesh and draped mesh?

When installed correctly, anchored mesh is fixed to the slope and can restrain material against the face of a slope. Draped mesh does not cling to the face, and will generally guide detached rock toward a catch bench or catch area. These are different functions that require different capacity considerations.

5. Can welded wire mesh be used as a rockfall barrier?

Standard welded wire mesh can be used for local surface retention where properly designed, but should not be promoted or sold as an impact rated barrier without comprehensive system testing.

6. How should bolt length and orientation be selected?

Bolt length and orientation should correspond with the location and orientation of controlling discontinuities or potential failure surfaces. It is critical that reinforcement extends beyond these into material capable of developing adequate anchorage.

7. Why is drainage important for highwall stability?

Water can contribute to high pressure in discontinuities, reduced shear strength, weak infill, and weathering. Drainage and runoff control should be considered alongside reinforcement to improve stability.

8. Can Wanfeng manufacture your products according to mine drawings?

Yes. Wanfeng can review approved drawings for critical items such as dimensions, materials, threads, allowable loads, coatings, testing requirements and production feasibility. Final design responsibility remains with the mine’s engineering staff.

 

Products
Contacts
WhatsApp
Email