How is ventilation designed for deep wells and accessible tunnels during construction?

The Ventilation of deep wells and accessible tunnels During construction, the design is intended to maintain a breathable atmosphere, control contaminants, renew the air, dissipate heat, limit hazardous gases, and ensure safe working, access, and rescue conditions. In underground construction projects, tunnels and shafts may be considered hazardous areas due to their limited access and poor natural ventilation; the INSST includes shafts and tunnels among its examples of confined spaces, and Royal Decree 1627/1997 requires sufficient ventilation in workplaces to maintain an atmosphere suitable for breathing and not hazardous to health.

In projects of vertical pits for driving and microtunneling, pipe ramming, microtunneling in terrestrial and subway applications For tunnels open to the public, ventilation must be planned before interior work begins, especially if welding, electrical equipment, combustion, sludge, resins, ground gases, low natural air exchange, or complex access points are involved.

What Ventilation Should Achieve

The ventilation system must ensure:

  • Supply of clean air to the work area.
  • Sufficient renovation of the interior space.
  • Dilution and removal of gases, dust, vapors, or fumes.
  • Oxygen Control and Deficient Atmospheres.
  • Control of toxic or flammable gases.
  • Reduction of heat and humidity.
  • Safe conditions for operators, inspection, maintenance, and rescue.
  • Service continuity during critical phases of excavation, installation, or connection.

In confined spaces, the INSST recommends assessing the indoor atmosphere and monitoring it from outside while work is in progress, with continuous measurements as appropriate.

Information needed to design it

To size the ventilation system, the following are reviewed:

Design SpecificationWhy It Matters
Well depthIt affects pressure drops, air inlets, air extraction, and air distribution
Length and Diameter of the Accessible TunnelDefine the volume, required flow rate, and discharge/intake points
Number of employeesIdentifies renovation and operational safety needs
Types of JobsWelding, cutting, cleaning, resins, or machinery can generate pollutants
Equipment UsedEngines, compressors, pumps, generators, or tools can generate heat or emissions
Geology and Ground GasesThere may be a risk from natural gases, radon, methane, CO₂, or other pollutants
Water Table and HumidityIncreased condensation, corrosion, thermal discomfort, and ventilation problems
Geometry of the AccessIt affects ducts, fans, airflow, and rescue operations
Duration of the exhibitionManages measurements, shifts, permits, and HSE compliance
Foreseeable EmergenciesDefine redundancy, alarms, evacuation, and communication

Common Ventilation Systems

SystemOperationWhen to use
Clean Air SupplyFeed outside air into the bottom of the shaft or the working faceDeep wells, tunnels open to the public, or areas with low air exchange
Localized ExtractionRemoves contaminated air from the emission areaWelding, fumes, dust, gases, or occasional tasks
Combined supply-and-exhaust systemIt supplies clean air and removes pollutantsLong spaces, complex geometries, or multiple emission sources
Ventilation via flexible or rigid ductsIt carries air to areas far from the intakeTunnels open to the public, galleries, or very deep shafts
Redundant ventilationIt has backup equipment or an alternative power sourceCritical tasks, hazardous environments, or hard-to-reach areas
Emergency VentilationTriggers a reset in the event of an alarm, gas leak, smoke, or incidentConstruction Projects with an Underground Rescue and Evacuation Plan

How to Determine the Ventilation Flow Rate

The flow rate is determined based on an HSE and technical assessment of the space. It should not be determined solely by the volume of the shaft or tunnel, but rather by the actual risks of the operation.

The following are considered:

  • Volume of the enclosure.
  • Air changes are necessary.
  • Number of people exposed.
  • Anticipated pollutants.
  • Heat sources.
  • Combustion equipment, if any.
  • Hot work or welding.
  • Duct Length and Pressure Drops.
  • Temperature and humidity.
  • The need to maintain fresh air at the workstation.
  • Evacuation and rescue capabilities.

In general, the design must ensure that clean air reaches the area where workers are operating, not just the wellhead. In deep wells, this requires ducts extending all the way to the bottom; in accessible tunnels, to the working face or active work area.

Which gases and pollutants are monitored?

During execution, the following can be monitored, as appropriate:

  • Oxygen.
  • Carbon monoxide.
  • Carbon dioxide.
  • Hydrogen sulfide.
  • Methane or other flammable gases.
  • Vapors from fuels, solvents, or resins.
  • Respirable dust.
  • Welding or cutting fumes.
  • Aerosols or vapors generated by chemicals.
  • Heat and humidity.

The Spanish legal definition of a confined space cited by the INSST includes areas with limited openings, inadequate natural ventilation, and the potential for the accumulation of toxic or flammable contaminants, or an oxygen-deficient atmosphere.

Operational Control During Execution

Ventilation should be integrated into the work procedure; it should not be limited to simply installing a fan. Before and during entry into the shaft or tunnel, it is recommended to check the following:

  • Initial atmosphere measurement.
  • Entry permit or access procedure.
  • Ventilate the room before entering.
  • Continuous or periodic measurement, depending on the risk.
  • Alarms for oxygen, toxic gases, or flammable gases.
  • Control from the outside.
  • Constant communication with the team back home.
  • Measurement Log.
  • Rescue teams are on standby.
  • Safe and secure power supply.
  • Emergency and Evacuation Plan.

In tunnels open to the public associated with infrastructure crossings In urban environments, this monitoring must be coordinated with the security plan, the emergency plan, surveillance, access points, lighting, and communications.

Common Mistakes to Avoid

The most common failures in ventilation systems for accessible shafts and tunnels are:

  • Ventilate only the wellhead; do not ventilate the bottom of the well.
  • Do not account for pressure drops in long ducts.
  • Do not check the atmosphere before entering.
  • Use ventilation without gas monitoring.
  • Do not provide for localized exhaust for welding or fumes.
  • Failure to provide backup ventilation during critical operations.
  • Do not record flow rates, alarms, or measurements.
  • Failure to coordinate ventilation with rescue, communication, and lighting.
  • Underestimating heat, humidity, and heat fatigue.
  • Do not update the system when changing the construction phase.

Minimum Ventilation Design Checklist

Before performing work in deep shafts or accessible tunnels, it is advisable to confirm the following: depth, diameter, length, internal volume, number of workers, type of tasks, sources of contaminants, natural gases, water table, humidity, temperature, ducts, fans, airflow, pressure drops, gas monitoring, alarms, communication, lighting, access, rescue, power supply, emergency ventilation, and HSE procedures.

Request a Technical inspection of ventilation and safety in deep shafts or accessible tunnels Before planning interior work, maintenance, inspections, or on-site connections WITHOUT trenching.