| Building height and travel | Generally suitable for low-, mid-, and high-rise buildings; high-speed systems are commonly used where travel distances are long. | Traction technology is usually more practical than hydraulic technology for buildings with many floors or substantial vertical travel. | Measure total travel, number of stops, floor-to-floor heights, and available overhead and pit dimensions. |
| Rated speed | Common commercial applications range from approximately 1.0 to 3.0 m/s; high-rise designs may use higher speeds. | Higher speed can reduce passenger waiting and travel time, but it may increase equipment, control, and installation requirements. | Match speed to building height, traffic demand, passenger comfort, local code, and the required acceleration and deceleration profile. |
| Passenger capacity | Typical passenger lift capacities are approximately 630–2,500 kg, with larger capacities available for specific projects. | Capacity affects passenger flow, car size, structural loading, energy use, and the number of lifts required. | Estimate peak traffic, average load, wheelchair access needs, stretcher requirements, and moving or service loads. |
| Energy performance | Modern gearless traction systems can use permanent-magnet motors, variable-frequency drives, and regenerative drives. | A counterweighted traction lift can be efficient because the motor primarily moves the imbalance between the car and counterweight. | Request standby and running energy data, regenerative-drive details, lighting controls, and compliance with the applicable energy standard. |
| Machine-room arrangement | Available as machine-room traction or machine-room-less traction, depending on the design and local requirements. | A machine-room-less arrangement can save usable building area, while a dedicated machine room may improve equipment access and servicing space. | Confirm overhead clearance, controller location, maintenance access, heat dissipation, and fire-service provisions. |
| Ride quality | Variable-frequency control and encoder feedback support smooth starts, stops, leveling, and speed regulation. | Good ride quality improves passenger comfort and helps reduce trips, falls, and loading difficulties at landings. | Review acceleration, jerk, leveling accuracy, vibration, door performance, and test results under both empty and loaded conditions. |
| Noise and vibration | Gearless machines generally reduce mechanical noise compared with geared traction arrangements, although installation quality remains important. | Noise transmission can affect bedrooms, offices, healthcare areas, and other spaces adjacent to the shaft or machine area. | Specify acoustic limits, isolation mounts, guide-rail alignment, shaft-wall construction, and the location of sensitive rooms. |
| Reliability and duty cycle | Traction lifts are widely used for frequent daily operation in offices, residential towers, hotels, hospitals, and public buildings. | The system must withstand expected starts per hour, passenger volume, emergency operation, and building operating conditions. | Check duty classification, traffic calculations, emergency power compatibility, component availability, and service response arrangements. |
| Maintenance requirements | Routine inspections typically cover ropes or belts, sheaves, brakes, door equipment, guide rails, safety devices, and control systems. | Preventive maintenance supports safe operation, reduces unplanned downtime, and helps maintain ride quality. | Confirm inspection intervals, safe access, diagnostic tools, replacement-part lead times, lubrication needs, and maintenance responsibilities. |
| Initial cost and lifecycle cost | Initial cost varies substantially with speed, capacity, travel, finishes, structural work, controls, and site conditions. | The lowest purchase price may not provide the lowest total cost over the lift's service life. | Compare installation, electricity, maintenance, modernization, downtime, testing, and building-work costs over the planned service period. |
| Safety and code compliance | Required safety equipment can include overspeed protection, safety gear, door interlocks, buffers, emergency lighting, alarms, and communication systems. | Compliance is essential for passenger safety, approval, insurance, and legal operation. | Use the current elevator code and local regulations, such as EN 81-20/50, ASME A17.1/CSA B44, or the applicable national standard. |
| Best-fit applications | Well suited to buildings requiring moderate-to-high speed, frequent operation, long travel, and efficient passenger movement. | Traction technology provides design flexibility for many commercial, residential, institutional, and mixed-use buildings. | Compare the traction option with hydraulic, vacuum, or other lift types according to height, traffic, budget, space, and local regulations. |