Construction methods · Ground improvement

Permeation, compaction and compensation grouting

Grout is injected into the ground without excavating it: thin grouts permeate sands and gravels to seal and strengthen them, stiff mortar displaces and densifies loose soil, and controlled fracture grouting lifts structures or offsets settlement as it happens. On bridges it seals cofferdams and excavations, fills karst and mine voids, and underpins or re-levels existing foundations.

How bridges get built · Ground improvement · Permeation, compaction and compensation grouting

Also called: pressure grouting, chemical grouting, low-mobility grouting, compensation grouting, void filling, tube-à-manchette grouting

How it is done

  1. Characterise the ground for grouting: grading, permeability from in-situ tests, voids and fissures (karst, mine workings), groundwater flow, and the structures to be protected.
  2. Select grout and method: cement or bentonite-cement for gravel and fissured rock, microfine cement for medium sand, silicate or other chemical grouts for fine sand, stiff low-slump mortar for compaction grouting, and bulk cement-ash grout for large voids.
  3. Run a field trial: grout a test panel, record takes and pressures, and check the result by coring, permeability tests or CPTs before fixing hole spacing and stage lengths.
  4. Drill on a primary-secondary (split-spacing) pattern; for permeation and compensation work, grout in sleeved pipes (tubes-à-manchette) with ports every 0.3–0.5 m so each level can be injected again.
  5. Inject stage by stage within limits of pressure, volume and flow rate, recording all three continuously; end each stage on refusal, on the volume limit or on the first sign of ground heave.
  6. For compaction grouting, inject the stiff mortar slowly in 0.3–1 m stages, usually from the bottom up, forming bulbs that displace and densify the surrounding soil, with close level monitoring of the surface and nearby structures.
  7. For compensation grouting, inject small volumes between a structure and an excavation or tunnel in response to real-time settlement readings; close out every method with verification holes and a final level survey.

Key numbers

Where it fits

  • Sealing and strengthening sands, gravels and fissured rock under cofferdams, excavations and next to existing foundations.
  • Filling karst cavities and old mine workings before or after piling; densifying loose soil and re-levelling existing piers and abutments.

Where it does not

  • Permeation grouting in silts and clays: the grout fractures them instead of filling pores (use jet grouting or DCM).
  • Fast groundwater flow without quick-setting grouts; sites where heave cannot be monitored or tolerated.

Choosing it

Plant, pace and money

PlantRotary or rotary-percussive drill rigs; colloidal mixers, agitators and piston or progressive-cavity pumps; for compaction grouting a mortar batcher and high-pressure piston pump; automatic recorders of pressure, flow and volume; precise levelling or automated monitoring of the ground and nearby structures.
ProductivityHighly variable: tens of metres of drilling and a few to some tens of cubic metres of grout per rig per shift; compaction grouting is limited by the slow injection rate of about 0.03–0.06 m³ per minute.
CostIndicative only and highly site-dependent: cement permeation grouting about USD 100–400 per m³ of treated ground, chemical grouting two to five times that; compaction grouting about USD 200–600 per m³ of grout placed, plus drilling.

Risks and controls

What goes wrong

  • Hydraulic fracture and grout escaping into drains, services, rivers or basements.
  • Heave of structures and pavements during compaction or compensation grouting.
  • Incomplete permeation leaving windows in a seal, or flowing groundwater washing out fresh grout.
  • Chemical grouts with environmental limits on toxicity and long-term durability.

Quality assurance

Continuous pressure, flow and volume records for every stage; split-spacing closure showing falling takes; verification holes with permeability tests or cores; precise level monitoring of nearby structures with stop criteria.

Origins

Charles Bérigny injected clay and lime grout to repair a sluice at Dieppe in 1802; Hugo Joosten's two-shot silicate process of 1925 opened sands to chemical grouting; compaction grouting was developed in the US in the 1950s, and compensation grouting was proven on London's Jubilee Line Extension in the 1990s, most visibly beneath the Big Ben clock tower.

Examples

Sealing gravel beneath river cofferdams, filling karst voids before piling, re-levelling settled piers and abutments, and protecting historic structures above new tunnels.

Case studies

Dieppe harbour sluiceFrance · 1802Bérigny injected clay and lime grout beneath a sluice foundation: the first recorded use of ground grouting.
Big Ben clock tower, Jubilee Line ExtensionUnited Kingdom · 1990sCompensation grouting from a shaft, steered by continuous monitoring, controlled the tilt of the tower while running tunnels and Westminster station were excavated beneath and beside it.
Inn River motorway bridge near InnsbruckAustria · 1990Grout injected beneath a scoured pier that had sunk about 1.2 m helped bring it back into alignment, together with rock dumping around its base and cables tying it to the bank.
Mosul DamIraq · 1986 onwardsContinuous curtain grouting of a gypsum and anhydrite karst foundation since impounding, with an emergency programme in 2016–2019.

Related methods

Further reading

EN 12715 (execution of special geotechnical works: grouting) · ASCE/G-I 53-10 Compaction Grouting Consensus Guide · Warner, Practical Handbook of Grouting: Soil, Rock, and Structures · Karol, Chemical Grouting and Soil Stabilization · Mitchell and Jardine, A Guide to Ground Treatment (CIRIA C573)