Showing posts with label protectowire. Show all posts
Showing posts with label protectowire. Show all posts

Wednesday, January 8, 2025

NFPA 241 The Importance of Fire Alarm Systems During Wood Frame Construction

Wood frame construction is a prevalent building method due to its cost-effectiveness, sustainability, and ease of assembly. However, wood is inherently combustible, making fire safety a critical concern during the construction phase. Furthermore, traditional fire protection systems such as automatic fire sprinklers and fire walls are not yet existent during the construction phase. One of the most effective ways to mitigate fire risks during construction is the implementation of a temporary fire alarm system.

This article dives deep into why fire alarm systems are indispensable during wood frame construction, with a focus on technical details, compliance requirements, and how to integrate them effectively.

Take a look at these statistics from 2017 through 2021 provided by NFPA:
  1. 4,440 annual average fires in structures under construction, renovation, or being demolished. 
  2. $370 million annual average cost of property damage in structures under construction, renovation or being demolished. 
  3. 59 annual average civilian injuries in structures under construction, renovation, ore being demolished.
  4. 5 annual average civilian deaths in structures under construction, renovation or being demolished. 
  5. Cooking equipment was the leading cause of fires on construction sites.
  6. Fires in structures under construction were most common in the afternoon and evening; however, fires that occurred between midnight and 6:00 AM accounted for just over 51% of the direct property damage.
  7. 76% of the fires and structures under construction involved residential properties and accounted for the largest shares of deaths injuries and direct property damage.


Why Fire Alarm Systems for Wood Frame Construction are Crucial


1. Increased Fire Risks During Construction


According to NFPA, the leading causes of fires in unfinished wood frame construction sites are as follows:

  • Heating Equipment
  • Intentional (Arson) 
  • Hot Work Including:
    • Welding
    • Cutting
    • Grinding
    • Soldering
    • Roof Work




Lack of fire-resistant finishes leaves exposed wood at risk.

Temporary heating devices and on-site fuel storage compound the hazard.

2. Safety of Personnel and Construction Crews


Manual Emergency Air Horn
Construction sites are dynamic environments with numerous workers, increasing the need for rapid fire detection and response to ensure safety. A majority of construction workers will be wearing some form of hearing protection during the construction phase of these projects. The current standard emergency air horns located throughout these wood frame construction sites would be deemed useless as hearing protection and electric/gas powered tools make it difficult if not nearly impossible to hear the alert in the event of a fire emergency. 


3. Compliance with Codes and Standards


Most jurisdictions mandate temporary fire protection measures during wood frame construction.

The 2021 International Building Code (IBC), the 2021 International Fire Code (IFC) and National Fire Protection Association (NFPA) standards, particularly 2022 NFPA 241, emphasize the need for fire safety during wood frame construction, including fire alarm systems.

International Building Code (IBC) 2021 Chapter 33 - Safeguards During Construction

Section 3302.3 Fire Safety During Construction
Section 3303.7 Fire Safety During Demolition
"Fire safety during construction/demolition shall comply with the applicable requirements of this code and the applicable provisions of chapter 33 of the International Fire Code."

International Fire Code (IFC) 2021 Chapter 33 - Fire Safety During Construction and Demolition

Section 3301.1 Scope "This chapter shall apply to structures in the course of construction, alteration, or demolition including those in underground locations. Compliance with NFPA 241 is required for items not specifically addressed herein."

Section 3301.2 Purpose "This chapter prescribes minimum safeguards for construction, alteration, and demolition operations to provide reasonable safety to life and property from fire during such operations."

Section 3303.1 Program development and maintenance  "The owner or owner's authorized agent shall be responsible for the development implementation and maintenance of an approved written site safety plan establishing a fire prevention program at the project site applicable throughout all phases of construction, repair, alteration, or demolition work. The plan shall be submitted and approved before a building permit is issued. Any changes to the plan shall be submitted for approval."

Section 3303.7 Fire protection devices. "The site safety director shall ensure that all fire protection equipment is maintained in service in accordance with this code. Fire protection equipment shall be inspected in accordance with the Fire Protection program."

Section 3303.9 Impairment of fire protection systems "The site safety director shall insure impairments to any fire protection systems are in accordance with section 901."

NFPA 241 - Standards for Safeguarding Construction, Alteration, and Demolition Operations

NFPA 241 requires the designation of a Fire Prevention Program Manager (FPPM) who shall be responsible for keeping all of the jobsite personnel safe and ensuring the project is completed safely in accordance with all of the requirements within. The Fire Prevention Program Manager shall have the authority and budget to implement NFPA 241 via an approved and documented fire prevention program. Key elements of the NFPA 241 fire prevention program should be prepared by qualified personnel and include the following:

  • Fire Protection
    NFPA 241 2022 Edition
  • Housekeeping
  • On-Site Security
  • Fire Protection Systems
  • Pre-Fire Plan
  • Communication Systems
  • Documents for Training, Testing and Drills
  • Special Hazards
  • On-Site Fire Brigade or Emergency Response Personnel

NFPA 241 2022 reference: https://link.nfpa.org/free-access/publications/241/2022

Section 4.2 covers the fire protection systems for construction, alteration, and demolition of construction sites as well as outlines the procedure for the Fire Prevention Program Manager (FPPM) to notify the installing contractor when changes need to be made to previously installed temporary protection. 

Section 4.6 states "Where a fire alarm system is installed in a building under alteration, the system shall comply with NFPA 72."

Section 4.9.1 states "If fire detection supervision, off site monitoring, or building notification are required, the installation shall be placed in service in accordance with the Fire Prevention Program."

Section 4.9.2 states "The use of temporary measures to place fire detection supervision monitoring or alarms in service shall be as follows:"
  1. "In accordance with the Fire Prevention Program
  2. "Evaluated based on the hazard and the scope of the temporary measures"
Section 4.9.3 states "Fire detection supervision monitoring and alarms placed in service shall comply with NFPA 72 in accordance with the Fire Prevention Program."

Section 12.7 and 13.6 state " Fire protection systems that are temporarily placed in service shall be in accordance with the Fire Prevention Program."  


4. Property Protection and Investment


Fires during construction can result in catastrophic financial losses. Early fire detection systems in wood frame construction minimize damage and ensures the project stays on schedule. Between the years 2017 and 2021, the leading cause of fires in wood frame construction that lead to the most property damage was electrical distribution and lighting equipment with intentional arson coming in a close second. 

Types of Fire Alarm Systems for Wood Frame Construction Sites


1. Wireless Fire Alarm Systems


Wireless systems are ideal for construction sites as they are portable and easy to install. They use radio frequency communication through a mesh network to detect smoke, heat, and initiate alarms via contact closure from waterflow switches, tamper switches, or other systems. These wireless inputs can be programmed to trigger output relays or wireless notification appliances. With the use of wireless horns in conjunction with strobes lights, we can dramatically cut down on the evacuation time of fires in wood frame construction sites.

Advantages of temporary wireless fire alarm systems:

Quick installation. Without the need for extensive wiring and the ability to install and relocate equipment in minutes makes this option very favorable. 

Flexibility to adapt as the site evolves. Keep in mind as the wood frame construction site progresses, there will be a need to relocate detectors and notification appliances. 

Damage during construction. Let's face it, construction workers are not always gentle with the work environment. If a wired fire alarm system is utilized, there is a great chance the expensive linear heat detection cables will be damaged or cut. This can create very expensive service calls for the client as well as detrimental delays to the construction schedule. 

The WES3 (Wireless Emergency Communication System) is the latest wireless evacuation and emergency alarm solution developed to provide simple, quick, flexible, and reliable temporary fire alarm coverage to the potential hazards of wood frame construction sites. 

WES3 has the following components to build a complete temporary wireless fire alarm system for your wood frame construction project:
  • Wireless control unit with SIM card for monitoring. (Can support up to 999 fully supervised wireless units)
  • Wireless call points with sounder strobe (call point can be removed)
  • Wireless dust resistant smoke detectors
  • Wireless heat detectors
  • Wireless interface module (connection to other systems, sprinkler switches, etc.) 
  • Wireless link unit to extend the wireless range in large applications
  • Equipment has a battery life span of three years when used under normal circumstances.
  • All equipment has built in tamper switches on the backside of the back box.
  • Call point unit has a medical alert function as well as the fire alarm activation.
  • Call points are suitable for indoor or outdoor installation under IP55 conditions.
  • Mesh network with approximately 200 feet of coverage per wireless unit.
WES3 Wireless Dust Resistant Smoke Detector, WES3 Wireless Control Unit, WES3 Wireless Call Point with Sounder Strobe and Medical Alert
Pictured from left to right: WES3 Wireless Dust Resistant Smoke Detector, WES3 Wireless Control Unit, WES3 Wireless Call Point with Sounder Strobe and Medical Alert



2. Hardwired Fire Alarm Systems


Temporary hardwired fire alarm systems involve traditional wiring and are typically used when parts of the structure are already enclosed. They provide reliable connectivity but are less flexible. Hardwired systems are also more costly and time consuming to install. Not to mention the wire used for the temporary system will be demolished and discarded once the permanent solution is installed. 

Example Configuration of a Hardwired Temporary Fire Alarm System:
  • A headend Fire Alarm Control Panel (FACP) "Keep in mind this approach will require a dedicated 120 Volt circuit as well as battery backup. We dedicated circuit may not be available depending on the phase of construction."
  • DACT for communication to the Central Station
  • Smoke detectors placed on exposed wood and near temporary electrical setups.
  • Heat detectors installed in high-risk areas like hot work zones.
  • Protectowire linear heat detection cable
  • Pull Boxes at exits or other strategic locations
  • Connection to other systems or sprinkler switches
  • Horns and or strobes.
Key Considerations for Fire Alarm Deployment

1. Placement of Detectors or Linear Heat Detection Cable

Smoke and or heat detectors should cover all high-risk areas such as:
  • Near temporary power supplies and generators.
  • Close to welding and cutting stations.
  • Inside storage areas containing flammable materials.
2. Integration with Other Safety Systems

Alarms should integrate with temporary sprinkler systems or fire suppression tools.

Link alarms to construction site monitoring systems for real-time alerts.

3. Testing and Maintenance

Conduct weekly tests of fire alarm systems during construction.

Replace batteries and address faults promptly.

4. Compliance with NFPA 241 Standards



Conclusion


The use of fire alarm systems during wood frame construction is not only a compliance necessity but a practical strategy to ensure safety and minimize risks. By integrating modern technologies, adhering to regulatory standards, and prioritizing maintenance, construction teams can mitigate fire hazards effectively. These systems protect workers, investments, and the overall progress of the project, making them indispensable tools in the construction industry.

Tuesday, December 20, 2016

Elevator Recall & Shunt Trip Fundamentals (with VESDA + LHD Options)

Elevator recall and shunt trip integration is one of the most scrutinized intersections between fire alarm systems and vertical transportation. When designed incorrectly, it can lead to failed inspections, nuisance shutdowns, or life-safety hazards.

Project Recall Floors: Designated Recall Level (D) = Level 1 | Alternate Recall Level (A) = Level 2

Code edition note: ICC model codes are published on a 3-year cycle (current model edition is 2024). Some jurisdictions refer to “2025 codes” when adopting a 2025 state/local package based on the 2024 I-Codes.

Smoke detector, heat detector, VESDA air sampling unit with orange pipe and linear heat detection cable used for elevator recall and shunt trip applications



Concept image: elevator hoistway detection options (spot detection, VESDA, and linear heat cable) with recall and shunt trip interfaces.

Table of Contents

  1. Code Framework Overview
  2. Elevator Recall Fundamentals (Phase I)
  3. Firefighter’s Emergency Operation (Phase I & II)
  4. Elevator Shunt Trip (Power Shutdown)
  5. Hoistway Protection Requirements
  6. VESDA & Linear Heat Options (Testing Without Entry)
  7. Mini Sequence of Operations (SOO)
  8. Elevator Pit Requirements
  9. Machine Room vs Control Room vs Control Space
  10. Installation Best Practices
  11. Common AHJ Inspection Failures
  12. Testing & Commissioning
  13. Final Design Checklist

1) Code Framework Overview

Elevator fire recall and power shutdown requirements come from multiple governing documents. The building/fire codes establish where protection is required, while NFPA 72 defines how the fire alarm system interfaces with elevator controls. ASME A17.1/CSA B44 defines the elevator’s Firefighter’s Emergency Operation (FEO) behavior (Phase I and Phase II).

Standard What It Governs
IBC (ICC model) Chapter 30 Elevators and conveying systems, machine/control rooms/spaces, hoistway provisions, and related building requirements.
IFC (ICC model) (elevator key/operations references) Fire code interactions, including standardized fire service key references and fire service operations coordination.
NFPA 72 (2022) Chapter 21 Elevator recall interfaces and elevator power shutdown (shunt trip) signaling rules.
ASME A17.1 / CSA B44 Phase I Emergency Recall and Phase II In-Car operation requirements for elevator controls.
NFPA 13 (as adopted) Sprinkler rules in hoistways, pits, and elevator equipment/control spaces (where required/allowed).

Code References:

  • IBC (ICC model): Chapter 30 (Elevators and Conveying Systems), including Emergency Operations (see “Fire fighters’ emergency operation” sections in adopted IBC). (Example published text: IBC 2024 Ch.30).
  • IFC (ICC model): Fire service key and related requirements referenced by IBC Emergency Operations language. (Example published text shows IBC requiring a standardized fire service key per IFC).
  • NFPA 72 (2022): Chapter 21 (Elevators). Section families 21.3 (Recall) and 21.4 (Shutdown).
  • ASME A17.1/CSA B44: Firefighter’s Emergency Operation (Phase I/II) and relay/access coordination provisions.

Back to Table of Contents


2) Elevator Recall Fundamentals (Phase I Emergency Recall)

Elevator recall is the automatic return of elevators to a designated landing upon actuation of required initiating devices. In most designs, smoke detection at elevator lobbies and certain elevator spaces initiates recall logic.

Designated (Primary) Recall Level = Level 1

  • Smoke detection at the Level 1 lobby (D) recalls elevators to the alternate recall level (Level 2).
  • Normal call control is removed and elevators transition into Phase I operation.
  • Logic must be coordinated to prevent recall into a contaminated lobby condition.

Alternate Recall Level = Level 2

  • Smoke detection at the Level 2 lobby (A) recalls elevators to the designated recall level (Level 1), unless the elevator interface documentation requires otherwise.

Machine/Control Room (or Control Space) Smoke Detection

  • Smoke detection in elevator equipment/control spaces typically initiates elevator recall.
  • If the elevator space is located on Level 1, recall should go to Level 2. If located on Level 2, recall should go to Level 1 (coordinate per elevator interface requirements).

Code References:

  • NFPA 72 (2022): Chapter 21 recall provisions (Section family 21.3).
  • NFPA 72 lobby detector placement commonly uses the “within 21 ft horizontally of the centerline of elevator doors” rule in older editions and agency guides (example shows 21.3.5).
  • ASME A17.1/CSA B44: Phase I Emergency Recall operation requirements and how the elevator controller responds to recall signals.

Back to Table of Contents


3) Firefighter’s Emergency Operation (Phase I & Phase II)

Firefighter’s Emergency Operation (FEO) is defined by ASME A17.1/CSA B44. Fire alarm systems generally provide initiating/control signals that place elevators into Phase I recall. Phase II is manual and controlled by firefighters from the in-car operating panel.

Firefighter’s Hat Indicator (Visual Warning)

Many jurisdictions require a visual indicator at elevator landings that illuminates when smoke detection in the hoistway and/or machine/control spaces operates to warn responders of potential hazards.

Code References:

  • IBC (ICC model): Emergency Operations requirements for elevators (Phase I/II language appears in adopted building codes).
  • IFC (ICC model): Fire service key reference is explicitly tied into IBC emergency operations language in published ICC text.
  • ASME A17.1/CSA B44: Phase I recall and Phase II in-car operation.
  • NFPA 72 (2022): Elevator recall signaling/annunciation requirements within Chapter 21 (Section family 21.3).

Back to Table of Contents


4) Elevator Shunt Trip (Power Shutdown)

Shunt trip is the removal of elevator power prior to water discharge onto energized equipment where sprinklers are present. This is coordinated so power can be removed before sprinkler discharge impacts energized elevator equipment.

Heat Detection Near Sprinklers (Spot Heat or Listed Alternatives)

  • Provide heat detection used for elevator shutdown within 24 inches (2 feet) of each sprinkler head that could discharge water onto elevator equipment.
  • Heat detection used for shutdown must be selected/arranged to operate before the sprinkler (lower temp and higher sensitivity intent).
Elevator hoistway sprinkler with heat detector installed within 24 inches for shunt trip per NFPA 72 and 2025 IBC


Waterflow / Pressure Switch Method

  • Waterflow switches can be used as an alternate method to initiate shutdown in some designs (less common).
  • When used, timing/delay requirements must follow the applicable NFPA 72 elevator shutdown provisions and AHJ requirements.

Code References:

  • NFPA 72 (2022): Elevator Shutdown (Section family 21.4).
  • Public agency guidance shows the classic subsection structure: 21.4.1 (lower temperature/higher sensitivity intent), 21.4.2 (within 2 ft of sprinklers), and 21.4.3 (waterflow switch option).
  • Electrical/elevator coordination: Shunt trip disconnect/breaker interface is an electrical/elevator coordination item; verify labeling, supervision, and responsibilities per project specs and AHJ.

Back to Table of Contents


5) Hoistway Protection Requirements

Hoistway initiating devices are typically driven by sprinkler presence and adopted building/fire code triggers. If sprinklers are installed at the top of the hoistway, detection is commonly provided to initiate recall and coordinate shutdown.

Serviceability note: Spot-type devices at the top of hoistway often require special access procedures. The next section provides alternatives that can allow routine testing from outside the hoistway when engineered correctly.

Code References:

  • NFPA 72 (2022): Recall and shutdown signaling in Chapter 21 (21.3 and 21.4).
  • NFPA 13 (as adopted): sprinkler rules affecting top-of-hoistway and pit sprinklers (where required/allowed).
  • IBC (ICC model): hoistway and elevator space requirements in Chapter 30, including special elevator types (Fire Service Access Elevators / Occupant Evacuation Elevators) that often prohibit sprinklers in certain elevator spaces, removing the shunt-trip driver for those applications.

Back to Table of Contents


6) VESDA & Linear Heat Options (Testing Without Hoistway Entry)

Option A: VESDA / Air-Sampling Smoke Detection for Recall (Top of Hoistway)

VESDA (aspirating smoke detection) can be used to provide smoke detection at/near the top of hoistway while locating the detector in an accessible area, with sampling points in the hoistway. This can support functional testing without entering the hoistway when the manufacturer-approved test method and AHJ acceptance criteria are met.

Option B: Linear Heat Detection (LHD, Protectowire or Equivalent) for Shunt Trip

Listed linear heat detection cable can be positioned near sprinkler locations to provide shutdown-initiating heat detection without relying on a spot-type heat detector mounted at the top of hoistway. Many LHD solutions provide accessible testing methods (manufacturer procedures), supporting serviceability without hoistway entry when properly designed.

Code References:

  • NFPA 72 (2022): Recall and shutdown are governed by Chapter 21 (21.3 and 21.4), regardless of whether the initiating device is spot-type or an approved/listed alternative.
  • NFPA 72 elevator shutdown spacing intent (public guides show: 21.4.2 within 2 ft of sprinklers; 21.4.1 sensitivity intent).
  • Listings & manufacturer instructions: VESDA/LHD must be installed and tested per listing/manufacturer requirements; acceptance testing is AHJ-driven.
  • ASME A17.1/CSA B44: Coordination to avoid hoistway interference and ensure elevator controller interface requirements are met.

Back to Table of Contents


7) Mini Sequence of Operations (SOO)

This compact SOO matrix is suitable for drawings and narrative. It assumes: Designated Recall Level (D) = Level 1 and Alternate Recall Level (A) = Level 2. Always confirm final logic with the elevator contractor interface documentation and AHJ requirements.

Initiating Input Location / Condition FA System Action Elevator Output Annunciation / Notes
Lobby Smoke Level 1 lobby (Designated D) Alarm; initiate Phase I recall sequence Recall to Level 2 (Alternate A) Prevents recall into smoke condition at Level 1
Lobby Smoke Level 2 lobby (Alternate A) Alarm; initiate Phase I recall sequence Recall to Level 1 (Designated D) Verify final logic per elevator controller interface documentation
Machine/Control Space Smoke Machine room / control room / control space Alarm; initiate Phase I recall; activate hat light where required Recall to opposite of affected floor (L1 ↔ L2 per location) Hat light commonly tied to machine/control/hoistway detection
Hoistway Smoke
(Spot or VESDA Alarm)
Top of hoistway (where required/used) Alarm; initiate Phase I recall; hat light where required Recall to Level 1 (D) unless engineered otherwise VESDA allows detector/test access outside hoistway with proper design
Hoistway Heat
(Spot Heat or LHD Alarm)
Near hoistway sprinklers requiring shutdown coordination Alarm; initiate elevator power shutdown logic Shunt Trip Output (disconnect/breaker) LHD (Protectowire) can support testing without hoistway entry (per manufacturer)
Waterflow / Pressure Switch Elevator sprinkler branch (where used) Alarm; initiate power shutdown Shunt Trip Output Confirm delay permissibility by method + AHJ (NFPA 72 elevator shutdown rules)
VESDA Trouble/Fault Detector/airflow/power/pipe fault Trouble/Supervisory (not alarm) No recall/shutdown (typical) Annunciate clearly; maintainability benefit without hoistway access
LHD Trouble/Open Circuit open/module trouble/cable fault Trouble/Supervisory (as programmed) No shunt trip on trouble (typical) Supervision strategy must be documented and tested

Interface Wiring Responsibilities (typical): Fire Alarm (FA) contractor provides listed modules/relays and terminations at FA equipment; Electrical Contractor (EC) provides conduit, power, and shunt-trip breaker/disconnect wiring; Elevator contractor provides controller terminations/interface points, elevator programming, and final verification of Phase I/II operation. (Final division of scope per project specs/AHJ.)

Mini Point List (Inputs / Outputs / Troubles)

Use this as a compact “point schedule” to align drawings, programming, and acceptance testing. Adjust point names to match your panel database.

Point Type Point Name (Example) Class Function Notes
Input SD-L1-ELV-LOBBY (Lobby Smoke, L1) Alarm Initiate Phase I recall: Recall to Level 2 (A) Designated recall lobby smoke causes alternate recall
Input SD-L2-ELV-LOBBY (Lobby Smoke, L2) Alarm Initiate Phase I recall: Recall to Level 1 (D) Alternate lobby smoke causes designated recall (verify elevator interface)
Input SD-ELV-MR (Machine/Control Space Smoke) Alarm Recall opposite affected floor (L1 ↔ L2); activate FHL (if used) Also commonly drives firefighter hat light
Input ASD-ELV-HWY (VESDA Alarm, Hoistway Top) Alarm Recall to Level 1 (D); activate FHL (if used) Alarm threshold used for recall; coordinate threshold level with AHJ/elevator contractor
Input HD-ELV-HWY (Spot Heat, Hoistway Top) Alarm Initiate elevator power shutdown (Shunt Trip) Used when shutdown coordination is required at sprinklers
Input LHD-ELV-HWY (Protectowire/LHD Alarm) Alarm Initiate elevator power shutdown (Shunt Trip) Listed LHD cable near sprinkler(s); supports testing without hoistway entry when designed with accessible test method
Input WF-ELV-BRANCH (Waterflow/Pressure Switch) Alarm Initiate elevator power shutdown (Shunt Trip) If used as shutdown method: typically no delay (confirm method/AHJ)
Output CR-ELV-RECALL-D (Recall Control) Control Phase I recall signal to elevator controller (to Level 1 D logic) Use elevator contractor interface requirements for exact inputs/terminals
Output CR-ELV-RECALL-A (Alternate Recall Control) Control Phase I alternate recall signal to elevator controller (to Level 2 A logic) Triggered when Level 1 lobby smoke is in alarm
Output CR-ELV-FHL (Firefighter Hat Light) Control Illuminate firefighter hat indicator (where required/used) Commonly driven by hoistway + machine/control space smoke conditions
Output CR-ELV-SHUNT (Shunt Trip Control) Control Trip elevator disconnect/breaker via shunt-trip interface Coordinate delay/sequence with elevator contractor + AHJ (method-dependent)
Trouble ASD-ELV-HWY-TBL (VESDA Trouble/Fault) Trouble/Supv Annunciate aspirating detector trouble (airflow, power, pipe, detector fault) Should NOT initiate recall/shutdown (typical). Drives prompt service response without hoistway entry.
Trouble LHD-ELV-HWY-TBL (LHD Trouble/Open) Trouble/Supv Annunciate LHD circuit open/module trouble/cable fault Supervision is critical; do not “fail silent.” Typically no shunt trip on trouble.
Supervisory ELV-POWER-OFF (Shunt Trip Proof / Aux Contact) Supervisory Confirm power removed at elevator disconnect/breaker (status feedback) Highly recommended for clean acceptance testing documentation

Point List Tip: If your AHJ likes clarity, add a short note in your SoO: “All elevator interface outputs are via listed control relays/modules; all interface troubles are annunciated as supervisory/trouble and recorded in the FA event history.”

Code References:

  • ASME A17.1/CSA B44: Phase I Emergency Recall and Phase II In-Car operation.
  • NFPA 72 (2022): Elevator Recall (21.3 family) and Elevator Shutdown (21.4 family).
  • Agency guidance shows relay location/access constraints and interface considerations (example references relays within 3 ft of controller and access rules tied to ASME A17.1 provisions).

Back to Table of Contents


8) Elevator Pit Requirements

Elevator pits may include sprinkler protection depending on building design, elevator type, and adopted sprinkler rules. Where pit sprinklers exist and require shutdown coordination, heat detection (or approved alternatives such as LHD) may be needed.

Code References:

  • NFPA 13 (as adopted): pit sprinkler placement rules (often sidewall and ≤2 ft above pit floor in prior editions) and omission conditions in certain hoistways depending on construction/elevator type (varies by edition and adoption).
  • NFPA 72 (2022): if pit sprinkler triggers shutdown coordination, apply elevator shutdown signaling rules (21.4 family).

Back to Table of Contents


9) Machine Room vs Control Room vs Control Space

Elevator Machine/Equipment Room

Houses motors, machinery, controllers, disconnects, and related elevator equipment. If sprinklered, ensure shutdown coordination design is addressed.

Elevator Control Room / Control Space

Control rooms/spaces may house controls without major machinery, but still require the correct detection/recall/shutdown interfaces based on sprinklers and adopted requirements.

Code References:

  • IBC (ICC model): machine rooms, control rooms, machinery spaces, control spaces in Chapter 30 (section numbering varies by edition/adoption).
  • NFPA 72 (2022): recall (21.3 family) and shutdown (21.4 family) apply based on the interface requirements for those spaces.
  • IBC special elevator types: Fire Service Access Elevators (IBC 3007) and Occupant Evacuation Elevators (IBC 3008) often prohibit sprinklers in elevator spaces, removing the shunt-trip driver.

Back to Table of Contents


10) Installation Best Practices

Coordinate Early

  • Get elevator contractor interface documentation: required recall inputs, relay types, and where relays must be located/accessed.
  • Confirm sprinkler locations that drive shutdown coordination and confirm method (spot heat vs LHD vs waterflow method).
  • Confirm AHJ testing expectations, especially for VESDA/LHD “test without hoistway entry” approaches.

Use Dedicated Modules and Relays

  • Use separate outputs for designated recall, alternate recall, hat light, and shunt trip activation unless explicitly permitted to combine.
  • Keep elevator interface wiring segregated and clearly labeled (panel schedule + riser + controller terminations).

Code References:

  • NFPA 72 (2022): Chapter 21 interface requirements (21.2 general, 21.3 recall, 21.4 shutdown).
  • Example public guidance shows relay placement intent: relays for connection to elevator controller within 3 ft; access restrictions for relays through hoistway in ASME A17.1 referenced guidance.

Back to Table of Contents


11) Common AHJ Inspection Failures

  • Recall floors not clearly documented (Level 1 designated / Level 2 alternate).
  • Heat detection method not coordinated to operate before sprinkler discharge (or not installed per listing/manufacturer requirements).
  • Incorrect recall logic when the initiating device is on the designated level.
  • Improper shunt trip coordination (wrong disconnect, missing proof of power removal, unclear responsibility split).
  • VESDA sampling design not engineered/accepted (transport time, sampling point placement, test method).
  • LHD not installed per listing or not properly supervised/interfaced.

Code References:

  • NFPA 72 (2022): 21.3 family (recall) and 21.4 family (shutdown) drive most test failures.
  • ASME A17.1/CSA B44: elevator controller response and Phase I/II behavior.
  • IBC/IFC: adopted elevator emergency operations requirements and key coordination references.

Back to Table of Contents


12) Testing & Commissioning

Verify recall and shutdown functions during acceptance and periodic testing with elevator personnel present. Document results, including proof of elevator response, annunciation, and power removal behavior.

  • Verify designated recall initiation and recall behavior (D = L1 / A = L2 logic).
  • Verify alternate recall initiation and recall behavior.
  • Verify hat light operation where required (hoistway/machine/control detection conditions).
  • Verify shunt trip initiation and confirm actual power removal at the correct disconnect/breaker.
  • VESDA: verify alarm thresholds used for recall and verify trouble/fault reporting.
  • LHD: verify activation method used for shutdown and verify supervision/trouble reporting.

Code References:

  • NFPA 72 (2022): Acceptance testing and interface performance tied to Chapter 21 functions (21.3/21.4) and applicable testing chapters.
  • ASME A17.1/CSA B44: Firefighter’s Emergency Operation functionality.
  • Manufacturer listings: VESDA/LHD test procedures and acceptance requirements.

Back to Table of Contents


13) Final Design Checklist

  • ✔ Designated Recall Level = Level 1 and Alternate Recall Level = Level 2 clearly documented in SOO
  • ✔ Lobby initiating devices located per NFPA 72 lobby rules (commonly within 21 ft of door centerline per guides/legacy numbering)
  • ✔ Machine/control space initiating devices and interfaces documented and accessible
  • ✔ Hoistway detection method selected: spot smoke/heat or VESDA + LHD alternatives as approved
  • ✔ Shutdown method selected and coordinated: spot heat / LHD / waterflow method (as permitted)
  • ✔ Shunt trip tied to correct disconnect/breaker and verified during testing
  • ✔ Supervision/trouble annunciation implemented for VESDA/LHD interfaces

Code References:

  • NFPA 72 (2022): Chapter 21 (21.3 recall / 21.4 shutdown).
  • IBC/IFC: adopted elevator emergency operation requirements and keys.
  • ASME A17.1/CSA B44: Phase I/II operation requirements.