If you are planning a new building or renovating an existing one, the requirement for elevator emergency power is not optional in most cases. The exact scope depends on the building height, occupancy type, and the elevator's role in fire evacuation or accessible egress. In practice, you need to plan for at least one elevator to remain operational during a power failure in nearly every high-rise or institutional building.
This article explains the main code references, the different categories of elevator backup power, what happens to an elevator during a power outage, and the practical specifications you should confirm before purchasing or ordering an elevator system.
Контент
- 1 Which Elevators Are Required to Be on Emergency Power
- 2 Applicable Codes and Their Key Requirements
- 3 Types of Standby Power Systems for Elevators
- 4 What Happens to an Elevator When the Power Goes Out
- 5 Generator Transfer Considerations
- 6 Practical Recommendations for Owners and Specifiers
- 7 How Elevator Technology Affects Emergency Power Performance
- 8 Cost and Maintenance Implications
- 9 Conclusion
Which Elevators Are Required to Be on Emergency Power
The first step is understanding that not every elevator needs backup power. The codes draw a clear line between elevators that are part of fire safety or accessibility systems and those that are not.
Fire Service Access Elevators
Buildings with a certain height or occupancy type must provide fire service access elevators. These elevators are designed to allow firefighters to reach upper floors during an emergency. They must be connected to standby power so that they continue operating when normal power is lost. The applicable building code typically requires these elevators to run on the building's emergency generator for a specified duration.
Accessible Means of Egress Elevators
When an elevator is part of an accessible means of egress, it must be supplied with legally required standby power. This applies in buildings where a person with a disability needs an alternative to stairs during an evacuation. The requirement is usually triggered by local accessibility codes and the International Building Code (IBC) provisions for accessible evacuation routes.
High-Rise Building Elevators
In many jurisdictions, elevators in high-rise buildings are required to be on standby power. For example, the IBC requires elevator standby power in buildings that are four or more stories in height. The exact threshold varies by local amendments, but the logic is consistent: in a tall building, the loss of elevator service creates a serious problem for emergency response and for occupants with mobility limitations.
Applicable Codes and Their Key Requirements
Multiple standards shape the design and operation of elevators on emergency power. The three most important are ASME A17.1 (Safety Code for Elevators and Escalators), NFPA 101 (Life Safety Code), and the International Building Code.
| Code / Standard | Scope of Elevator Requirements | Typical Minimum Duration |
|---|---|---|
| ASME A17.1 | Defines elevator behavior during power loss, safe landing, and manual lowering procedures | Not specified as a single value |
| NFPA 101 | Requires emergency power for elevators used as part of the life safety system | 2 hours minimum when provided |
| International Building Code | Requires standby power for elevators in high-rise buildings and fire service access elevators | Varies by building classification |
What the 2-Hour Minimum Means for Building Design
NFPA 101 sets a practical benchmark: when emergency power is provided for elevators, it should run for at least 2 hours. This is not a random figure. It reflects the time needed for firefighting, evacuation, and rescue operations in a typical high-rise scenario. If your generator has a fuel tank that supports only 30 minutes of runtime, you may be non-compliant.
Types of Standby Power Systems for Elevators
There are several ways to supply emergency power to an elevator. The choice depends on the building size, generator capacity, and the specific elevator application.
- Generator backup: This is the most common approach in commercial and residential high-rises. A diesel or natural gas generator supplies the elevator circuit within seconds of power loss.
- Battery backup system: Some modern elevators use integrated battery packs that allow the elevator to run at reduced speed to the nearest landing. This is often used in residential buildings or when generator space is limited.
- Capacitor energy storage (ESS): Certain elevator drive systems use capacitor storage to power emergency landing functions. This is efficient, but it is generally limited to a short duration.
- VFD-based safe landing: A variable frequency drive can control the elevator motor in a controlled manner during power loss, allowing the car to stop at a floor without requiring a complex inverter system.
What Happens to an Elevator When the Power Goes Out
Understanding the default behavior of an elevator during power failure helps you plan for safety and maintenance.
When a power outage occurs, modern elevators do not simply stop. The control system detects the loss of normal power and switches to its emergency protocol. Depending on the configuration, the elevator will either continue running on emergency power to a designated floor or use a safe landing system to reach the nearest floor quickly. The car doors then open and remain open for a short period to allow passengers to exit.
If the elevator is not connected to any backup system, it will stop immediately and the brakes will hold the car in place. In this situation, passengers may be trapped until power is restored or manual rescue is performed. Therefore, in most commercial buildings, at least one elevator should be connected to standby power.
Generator Transfer Considerations
Installing a generator is not the end of the story. The transfer of power from the utility to the generator must be handled reliably and quickly enough for the elevator to resume operation.
Transfer Delay Issues
If the transfer switch takes too long to engage, the elevator may lock itself out and require a manual reset. In many elevators, a power interruption of more than a few seconds triggers a shutdown state. Coordination between the transfer switch settings and the elevator controller is essential.
Voltage Quality Problems
Generator output can vary during the first seconds after pickup. Voltage surges or dips may cause the elevator drive to trip. Adding a line conditioner or using a smoother transfer sequence avoids this risk. This is especially important for older elevators with less tolerant drive systems.
Practical Recommendations for Owners and Specifiers
If you are involved in specifying or purchasing an elevator, here are concrete steps to follow.
- Determine your building's occupancy type and height to identify which elevators require backup power.
- Choose the backup power approach that fits your available space and budget. For most high-rise buildings, generator backup is the standard solution.
- Coordinate with the elevator supplier to ensure the controller's power loss behavior matches your emergency protocol.
- Ask the supplier about the safe landing system that is used when power is lost. A VFD-based system or battery backup provides a smoother passenger experience.
- Test the elevator on emergency power after installation. This should include a simulated power failure to verify the transfer switch, controller behavior, and door operation.
How Elevator Technology Affects Emergency Power Performance
The type of drive system plays a part in how the elevator behaves under emergency power. Modern systems with variable voltage and variable frequency (VVVF) control are more efficient and offer better control of the motor during a power loss. If you are considering a passenger elevator for your project, check whether the supplier's drive system supports a clean transition to generator power without shutting down the elevator controller.
For hospitals, the issue is even more critical. Hospital bed elevators are often required to run on emergency power to maintain patient movement and medical logistics. In those buildings, elevators are typically connected to the life safety generator and must operate for at least 2 hours. If you are comparing hospital bed elevators , confirm their emergency power compatibility before specifying them.
Cost and Maintenance Implications
The decision to connect an elevator to emergency power goes beyond compliance. It affects maintenance schedules, spare parts, and commissioning procedures.
Generators need regular load testing, and elevator circuits should be included in those tests. A monthly or quarterly transfer test can help identify weak links before an actual emergency. You should also keep a record of emergency elevator procedures for your facility staff. This includes manual lowering instructions for cases where no backup power is available.
Finally, remember that the elevator emergency power requirements in your area are often a baseline. Local jurisdictions may add stricter rules, especially in buildings over 100 meters. Always check with your local code authority before finalizing the design.
Conclusion
The short answer to the question "which elevators need emergency power" is this: in most commercial and residential buildings over four stories, at least one elevator must be connected to standby power. The specific code requirements are clear, and the practical goal is to keep people moving and safe during a power outage.
Understanding the difference between generator backup, battery backup, and safe landing systems helps you make the right choice for your project. Work with your elevator manufacturer early, verify the power loss behavior of the controller, and schedule a realistic test before final acceptance. If you are currently evaluating a passenger elevator for a new installation, the passenger elevator solutions listed on our site are designed with these emergency power considerations in mind. You can also consult one of our elevator safety articles to better understand how modern features support building resilience.











