JAFITA
Elevator Safety Components & Replacement Parts | JAFITA
Life-Safety Architecture & Device Verification

Safety Components

Use this page to decide whether an elevator safety component can reproduce the required safety function, mechanical and electrical interfaces, operating limits, and verification basis of the complete elevator without creating a certification or commissioning problem.

Elevator overspeed governor mechanical trip and test switch assembly
Progressive safety gear gripping wedge and guide rail interface
Elevator pit hydraulic oil buffer and stroke energy absorption
Risk Decomposition

Safety-component replacement fails when the part number is treated as more important than the safety function

A safety component is not an ordinary spare part.

Its job is defined by the hazard it controls and by the complete elevator system in which it operates. A safety gear works with the car or counterweight frame and guide rails. An overspeed governor works with the elevator’s speed, governor rope or other triggering architecture, and safety gear. A buffer works with the moving mass, rated speed, stroke, pit arrangement, and final stopping condition. A landing-door lock works inside the door and control safety chain. Unintended-car-movement and ascending-car-overspeed protection can involve several interacting devices rather than one visually identifiable component.

This creates a different procurement rule from normal maintenance parts: do not approve a safety-component substitute until the safety function, interfaces, operating limits, and applicable verification or certification basis are all known.

Visual similarity vs mechanical tripping limit divergence
Failure Mode 01

Visual Matching Fallacy

The most common mistake is to match by appearance. Two governors can have similar housings while using different tripping speeds, rope diameters, pulley arrangements, electrical switches, mounting, or reset methods. Two safety gears can look similar while differing in rated mass range, rail interface, direction of operation, actuation, mounting, or verification scope. Two buffers can fit the same pit footprint while having different energy-absorption characteristics, stroke, permitted mass and speed combinations, or installation requirements.

Light curtain vs landing door locking device function confusion
Failure Mode 02

Safety Function Substitution

A second mistake is to treat one protection device as a substitute for another. A door light curtain detects an obstruction at the entrance; it does not perform the same safety function as a landing-door locking device. A machine brake may participate in one safety function in a particular elevator architecture, but that does not make every brake a certified unintended-car-movement or ascending-car-overspeed protection device.

Regulatory code decoupling from elevator safety components
Failure Mode 03

Code Basis Decoupling

A third mistake is to separate the component from the code basis. ISO 8100-2:2026 explicitly addresses verification of door locking devices, safety gears, overspeed governors, buffers, safety circuits and SIL-rated circuits, ascending-car-overspeed protection means, unintended-car-movement protection means, rupture valves and one-way restrictors, together with other lift-component calculations and verifications. In North America, ASME A17.1/CSA B44 provides the broader safety-code framework, while other A17 standards address specific component families.

JAFITA’s current materials support a freight-elevator manufacturing and OEM background, a Safety Door Operator, a Door Light Curtain in the freight-elevator context, an Engineering Service Team, lifecycle support, export activity since 2008, and company-level qualifications. They do not publish a standalone JAFITA safety-component catalogue or model-level data for safety gears, governors, buffers, door locks, safety circuits, rupture valves, or UCM protection devices.
Verification Disciplines

Safety-component specifications begin with the hazard and complete elevator architecture

Safety-component specifications should be separated into four groups.

STAGE 01 Safety Function

First define what the component is required to do. Examples include:

  • Prevent movement when a landing door is not safely locked
  • Trigger or stop the car when overspeed occurs
  • Arrest the car or counterweight on guide rails
  • Absorb energy at the end of travel
  • Protect against unintended car movement away from a landing
  • Protect against ascending-car overspeed
  • Control hydraulic descent if a pipe or hydraulic circuit fails
  • Perform a defined electrical safety function through a safety circuit or SIL-rated circuit

The safety function is the first matching field because it determines which component family and verification basis are relevant.

STAGE 02 Elevator Operating Envelope

Next identify the elevator in which the device operates:

  • Elevator type
  • Rated load
  • Car mass where relevant
  • Counterweight configuration
  • Rated speed
  • Travel
  • Drive / hydraulic architecture
  • Suspension system
  • Guide-rail profile
  • Door system
  • Controller & safety circuit
  • Pit and overhead
  • Operating direction
  • Environmental conditions
  • Destination jurisdiction

The same component model should not be assumed suitable across different speeds, masses, rails, or elevator architectures unless its approved scope says so.

STAGE 03 Mechanical & Electrical Interfaces

Then record the interfaces that make the device part of the elevator:

  • Mounting dimensions
  • Rail profile
  • Rope diameter
  • Pulley or sheave dimensions
  • Linkage and actuation
  • Switch contacts
  • Supply voltage
  • Connector or terminal arrangement
  • Safety-chain relationship
  • Reset method
  • Test arrangement
  • Associated brackets and fasteners
  • Hydraulic port or pipe data where applicable
  • Signal or SIL-related circuit interface where applicable
STAGE 04 Verification & Documentation Basis

Finally, confirm the evidence that applies to the exact device:

  • Manufacturer
  • Complete model
  • Serial or batch identification where relevant
  • Markings
  • Certificate or test document
  • Standard and edition
  • Approved operating range
  • Installation instructions
  • Adjustment instructions
  • Inspection or test requirements
  • Drawing revision
  • Any required pairing with another component

Safety Component Comparison Order

Compare safety components in this order: function first, operating envelope second, interfaces third, documentation fourth. A device that matches physically but not functionally is not equivalent.

Device Engineering Systems

Life-Safety Equipment Functional Domains

Progressive safety gear gripping mechanics on guide rail

Safety gears are controlled by the rail, guided mass, speed, and actuation system

Safety gears are part of the mechanical stopping system for the guided car or counterweight in applicable elevator designs.

For procurement, the key question is not simply whether the safety gear fits the frame. The selected gear must work with the relevant guide rail, guided mass, operating direction, speed context, mounting geometry, and triggering system.

Important fields include:

  • Car or counterweight application
  • Safety-gear type
  • Manufacturer and model
  • Rated or approved mass range
  • Rated-speed or operating-speed context
  • Guide-rail profile & working-surface dimensions
  • Direction of operation & mounting dimensions
  • Linkage or actuation geometry
  • Associated governor or triggering system
  • Electrical switch where present
  • Adjustment and reset method
  • Verification or certification documentation

The guide rail matters because the safety gear acts through the rail interface. A replacement safety gear should therefore be checked against both the new or retained car frame and the exact guide rail. The car frame matters because the gear has to be mounted and actuated correctly. A modernization that changes the frame, rail, or governor can move several safety interfaces at once.

ISO 8100-2:2026 explicitly includes verification of safety gears and calculation of guide rails. That is the correct system relationship: a safety gear should not be selected independently from the rail and guided assembly.

The current JAFITA materials do not publish safety-gear models, rail pairings, mass ranges, speed ranges, actuation data, or certificate numbers. Those details should be added only from actual component and project documents.

Centrifugal overspeed governor pulley and tensioning device

Overspeed governors are controlled by tripping function, speed, rope or sensor architecture, and safety-gear relationship

The overspeed governor detects an overspeed condition and participates in triggering the associated stopping function in applicable elevator systems.

For conventional governor-rope systems, the buyer should identify:

  • Governor manufacturer and model
  • Elevator rated speed & governor tripping-speed data
  • Governor rope diameter and construction
  • Pulley diameter & rope path and tensioning arrangement
  • Direction of operation & mechanical trip arrangement
  • Electrical safety switch & reset method
  • Mounting dimensions & associated safety gear
  • Governor tension device
  • Verification or certification basis

A governor is not interchangeable because the mounting footprint is similar. Tripping behavior, rope interface, electrical switch, safety-gear relationship, and approved elevator range all matter.

The governor and safety gear should also be treated as an interacting safety system. Replacing one while retaining the other requires confirmation that the new combination preserves the intended triggering and stopping function.

North American elevator standards include a dedicated suspension, compensation, and governor standard, ASME A17.6, in addition to the broader A17.1/CSA B44 framework. ISO 8100-2:2026 separately includes verification of overspeed governors.

JAFITA’s current supplier materials do not publish governor models, rope diameters, tripping-speed ranges, tensioning devices, or governor/safety-gear combinations.

Elevator pit energy dissipation hydraulic buffer unit

Buffers are controlled by moving mass, speed, stroke, and pit conditions

Buffers manage the final stopping condition at the end of travel in applicable elevator systems. A buffer should not be sourced from overall height or bolt pattern alone.

The technical package should identify:

  • Car or counterweight application
  • Buffer type, manufacturer, and model
  • Moving mass or approved mass range
  • Rated-speed context & required stroke
  • Compressed and extended dimensions
  • Mounting pattern & number of buffers
  • Pit arrangement and clearances
  • Oil or energy-absorption architecture where applicable
  • Environmental limitations & inspection/reset requirements
  • Verification or certification basis

A change in car mass, counterweight configuration, rated speed, or pit layout can affect the buffer requirement. This is particularly relevant in modernization. A heavier replacement cabin or changed counterweight arrangement can move the design point even when the existing buffers still appear mechanically serviceable.

ISO 8100-2:2026 explicitly includes verification of buffers. In North America, ASME’s A17 family also includes ASME A17.9 — Elevator Buffers as a dedicated standard. The applicable code and edition still depend on the project jurisdiction.

JAFITA’s current materials do not publish buffer models, strokes, mass ranges, speed ranges, dimensions, or test values.

Landing door safety interlock lock and electrical contact contacts

Door locking devices are controlled by the landing-door system and safety chain

A landing-door locking device performs a different function from an entrance light curtain or safety edge.

The lock is part of the system that prevents unsafe elevator operation when the landing-door condition is not correct. Its mechanical engagement, electrical contact, mounting, door geometry, unlocking arrangement, and controller safety-chain relationship must match the elevator.

Important identification fields include:

  • Landing-door manufacturer and type
  • Lock manufacturer and model
  • Door-panel arrangement & mechanical mounting
  • Locking engagement & contact arrangement
  • Voltage or signal information where relevant
  • Unlocking device & connector or wiring
  • Left/right or entrance-specific configuration where applicable
  • Associated door operator and coupling arrangement
  • Certificate or verification basis

ISO 8100-2:2026 explicitly includes verification of door locking devices.

JAFITA’s freight materials document a Safety Door Operator and Door Light Curtain. Those are useful supplier facts for freight entrance-system discussions, but they should not be presented as evidence of a JAFITA door-lock model range. A Door Light Curtain detects objects in the entrance; it does not replace the mechanical and electrical safety function of a landing-door lock.

Unintended car movement protection system controller and brake monitoring

Unintended-car-movement protection must be matched as a complete function

Unintended car movement refers to movement away from a landing under conditions where the elevator should remain controlled and stationary according to the applicable elevator safety design.

The protection can involve several devices and control relationships depending on the elevator architecture. The buyer should therefore avoid asking for a generic UCM device without identifying the complete elevator.

The technical review may need to include:

  • Traction machine and brake & brake-monitoring arrangement
  • Controller & position information
  • Door-locking condition & drive
  • Safety circuits & detection logic
  • Stopping means & car and counterweight masses
  • Suspension and traction
  • Device certification or verification & test/commissioning procedure

ISO 8100-2:2026 explicitly includes verification of unintended-car-movement protection means.

A replacement should be approved as part of the complete safety function. A brake, controller board, sensor, or relay that participates in the function should not automatically be advertised as a standalone UCM protection device unless the applicable product documentation supports that claim.

The current JAFITA materials do not publish a UCM protection architecture, models, certified combinations, monitoring methods, or test procedures.

Ascending car overspeed detection and emergency rope brake device

Ascending-car-overspeed protection is controlled by the complete braking and detection architecture

Ascending-car overspeed is a separate safety condition from downward overspeed.

The protection method depends on the elevator design and can involve the traction machine, brake, governor or sensing arrangement, controller, safety circuit, and other stopping means.

The procurement package should identify:

  • Elevator architecture & rated speed
  • Machine model & brake model/configuration
  • Overspeed detection method & triggering logic
  • Safety-circuit relationship & stopping device
  • Monitoring arrangement & complete approved combination
  • Verification documentation

ISO 8100-2:2026 includes verification of ascending-car-overspeed protection means.

A machine brake should therefore not be described as an ascending-car-overspeed protection system merely because it can stop the elevator under normal control. The exact safety function and approved combination must be established.

JAFITA’s current supplier materials do not publish an ascending-car-overspeed protection range or system architecture.

SIL-rated electronic elevator safety board and circuit architecture

Safety circuits and SIL-rated circuits are controlled by function, logic, and validated architecture

Modern elevators increasingly use electronic and programmable devices for functions that were historically implemented through conventional electromechanical circuits.

That does not mean a standard controller board becomes a safety component simply because it is inside the safety chain.

The buyer should identify:

  • Exact safety function & circuit architecture
  • Hardware model, revision, software/firmware where relevant
  • Inputs, outputs, and fault-detection method
  • Redundancy or diagnostic architecture
  • Required SIL or equivalent functional-safety basis where applicable
  • Associated sensors, actuators, power supply, and communication
  • Validation/verification documentation & configuration-control needs

ISO 8100-2:2026 explicitly includes verification of safety circuits and SIL-rated circuits, fault exclusion for electrical and electronic components, and design rules for SIL-rated circuits.

For North American projects, ASME A17.5/CSA B44.1 provides a dedicated safety standard for elevator and escalator electrical equipment used alongside the wider A17 framework.

The current JAFITA materials do not publish SIL-rated safety-board models, safety PLCs, circuit architectures, software versions, or certification data. These components should remain tied to the approved controller and complete elevator configuration.

Hydraulic elevator cylinder rupture valve and flow restrictor block

Hydraulic safety components are controlled by the hydraulic circuit, pressure, flow, and cylinder system

Hydraulic elevators use a different safety architecture from traction elevators.

ISO 8100-2:2026 includes verification of rupture valves and one-way restrictors and calculations for rams, cylinders, rigid pipes, and fittings. This means hydraulic safety-component selection must stay connected to the complete hydraulic circuit.

For a rupture valve or one-way restrictor enquiry, identify:

  • Hydraulic elevator type
  • Valve manufacturer and model & cylinder or jack data
  • Rated load, car mass, operating pressure, and flow
  • Pipe size, connection type, and valve mounting location
  • Hydraulic unit, descent speed, and existing circuit diagram
  • Original setting or identification
  • Certification or verification documentation

A valve that has the same thread or flange does not establish functional equivalence.

JAFITA’s current supplier materials do not publish a standalone hydraulic elevator or hydraulic safety-component range. Any hydraulic-component page or enquiry should therefore remain project-specific until actual product documentation is available.

Freight elevator door light curtain and safety operator mechanics

Freight elevator entrance protection is not the same as the complete safety-component package

JAFITA’s freight-elevator materials provide stronger safety-related evidence at the entrance than elsewhere in the current component documentation. The freight presentation identifies:

  • Safety Door Operator
  • Door Light Curtain
  • High-strength Structure
  • One-million-cycle operation verification for the freight safety door operator context

The Door Light Curtain is relevant because it detects an obstruction in the entrance area and can support safer door operation for goods and personnel in the represented freight configuration. The Safety Door Operator is relevant because door operation is a major part of freight-elevator duty.

These facts should remain in their correct scope. They do NOT establish:

  • A JAFITA safety-gear model range
  • A JAFITA overspeed-governor range
  • A JAFITA buffer range
  • A JAFITA landing-door-lock range
  • A universal certified UCM system
  • A universal ascending-car-overspeed protection architecture
  • A universal safety circuit or SIL product line
  • A guarantee that every JAFITA elevator uses the same door protection components

For professional procurement, ask for the exact proposed safety-component schedule for the selected elevator.

Retained safety architecture survey for elevator modernization

Safety-component modernization is controlled by the retained safety architecture

Modernization creates the highest substitution risk because new safety components often have to work with older mechanical and electrical systems. Begin by creating a retained-versus-replaced matrix. Record the status of:

  • Safety gear
  • Overspeed governor
  • Governor rope & tension device
  • Guide rails
  • Car frame
  • Counterweight frame
  • Buffers
  • Traction machine & brake
  • Controller & drive
  • Door locks & door operator
  • Safety circuits
  • Position system & suspension
  • Hydraulic valves where applicable
  • Emergency & inspection controls
  • Existing certificates & drawings

Then identify which safety function each retained device performs. A controller modernization can change the safety-chain architecture. A new car frame can change safety-gear mounting. A different guide rail can change the safety-gear interface. A new traction machine can change braking, UCM, or overspeed-protection relationships. A heavier cabin can affect buffer or mechanical calculations.

The correct modernization scope is therefore the smallest technically coherent and verifiable safety system, not the smallest number of replacement components.

Supplier Audit Baseline

JAFITA safety-component capability matrix

Capability Supplier evidence
Freight manufacturing foundation JAFITA identifies freight elevator production as a core manufacturing strength.
Freight entrance system Current freight materials present a Safety Door Operator.
Freight entrance detection Current freight materials present a Door Light Curtain.
Door-operator verification Supplier documentation records one-million-cycle operation verification for the freight safety door operator context.
Freight structural context Current freight materials present a High-strength Structure as a product theme.
OEM manufacturing background Company materials state that JAFITA has provided OEM services for multiple elevator brands.
Named OEM history Uploaded company introduction names KONE and ThyssenKrupp in JAFITA’s long-term OEM history.
Factory-resource network Company materials describe direct factory relationships developed through cooperation, including Hitachi and XIO LIFT.
Component coordination JAFITA’s component architecture identifies Safety Components as a sourcing category requiring exact device type, model, certification basis, mechanical interfaces, and elevator-system context.
International business JAFITA has been engaged in elevator export business since 2008.
Engineering support Company brochure presents an Engineering Service Team.
Lifecycle support Company brochure presents lifecycle service support.
Company qualifications Company portfolio presents a Special Equipment Production License and ISO 9001, ISO 14001, and ISO 45001 management-system certifications.

The current supplier materials do not publish a standalone JAFITA safety-component catalogue or confirm JAFITA-specific safety-gear, governor, buffer, lock, UCM, ascending-car-overspeed, safety-circuit, SIL, rupture-valve, or one-way-restrictor models.

This evidence boundary matters. JAFITA can support coordinated elevator and component enquiries, but product-level safety claims require the exact device documentation.

Diagnostic Intake Protocol

Safety-component enquiries should identify the complete safety function before asking for a substitute

For any safety-component enquiry, provide:

  • Project country, elevator manufacturer & model, elevator type
  • Rated load, rated speed, travel, installation year if existing
  • Complete component manufacturer & complete model number
  • Nameplate, markings, serial/batch data, original part number
  • Clear photographs, dimensions, mounting, electrical data, connectors
  • Mechanical interfaces & associated devices
  • Existing drawing/schematic & existing certificate/test document
  • Fault or replacement reason & required quantity

Then add component-specific information:

  • For safety gears: Provide guide-rail profile, car or counterweight application, frame mounting, actuation linkage, associated governor, and existing approved range.
  • For overspeed governors: Provide rated speed, tripping data, governor rope, pulley, mounting, switch, tension device, and associated safety gear.
  • For buffers: Provide car or counterweight application, mass data where available, rated speed, stroke, pit geometry, mounting, and complete markings.
  • For door locks: Provide landing-door type, panel arrangement, lock mounting, contacts, wiring, unlocking arrangement, and controller relationship.
  • For safety circuits / SIL: Provide controller model, board revision, software/firmware, exact safety function, wiring diagrams, I/O, connected devices, and verification documentation.
  • For hydraulic safety valves: Provide hydraulic circuit, pressure, flow, pipe size, cylinder data, connection details, and original setting or model information.

A photograph-only enquiry is not sufficient for final approval of a safety component.

Configuration Governance

Safety-component repeatability depends on preserving the approved device and verification record

A repeat safety-component order should be traceable to the same approved elevator configuration. Keep the record for:

  • Manufacturer, exact model, and device type
  • Serial or batch information where required
  • Approved operating range & associated component models
  • Mechanical interface & electrical interface
  • Certificate or verification document (standard and edition)
  • Installation drawing & adjustment/setting information
  • Test and commissioning record
  • Project reference & revision history

JAFITA’s OEM history and coordinated supply model make this especially important. Company materials state that freight-elevator production is a core strength and that JAFITA has provided OEM services for multiple brands, including KONE and ThyssenKrupp. The company also describes wider factory relationships, export activity since 2008, an Engineering Service Team, and lifecycle support.

Those facts support configuration control and project coordination. They do not prove that every safety component is manufactured by JAFITA, that every safety device is stocked, or that one certificate covers every product and destination.

For a professional buyer, the correct question is not “Do you supply elevator safety components?” It is: Can the exact proposed device be traced to the required safety function, approved operating range, interfaces, and verification basis of this elevator?

Technical FAQ

Safety Components FAQ

Elevator safety-component price depends on which specifications?

Price depends on the exact device, approved operating range, mechanical and electrical interfaces, required documentation, certification or verification scope, quantity, product source, destination, and shipping scope. Safety components should not be compared on price until the technical and regulatory scope is equivalent.

Elevator safety-component MOQ is what?

The current JAFITA materials do not publish one universal MOQ for safety components. Exact device, source, quantity, certification or document requirements, and shipping arrangement can change the commercial terms.

Elevator safety-component lead time starts after which confirmation?

No fixed safety-component lead time is published. Exact identification, compatibility review, required documentation, source, quantity, destination, and shipping method can all affect schedule.

Can an elevator safety component be matched from appearance?

No. Use the exact manufacturer, model, markings, operating range, dimensions, interfaces, associated components, and certification or verification documents. Appearance is only an identification aid.

Can an overspeed governor be replaced without changing the safety gear?

Possibly, but the new governor must remain compatible with the elevator speed, triggering arrangement, governor rope or sensing architecture, associated safety gear, electrical safety switch, and approved verification basis.

Can a safety gear be selected from guide-rail size alone?

No. Rail profile is one interface. Guided mass, elevator speed, car or counterweight application, actuation, frame mounting, governor relationship, direction of operation, and approved device range also matter.

Can an old buffer remain after the cabin is made heavier?

Not automatically. A change in car mass can move the buffer operating condition. The existing buffer should be reviewed against the updated complete elevator configuration and applicable design requirements.

Does a door light curtain replace a landing-door lock?

No. They perform different functions. A light curtain detects an obstruction at the entrance; a landing-door lock participates in preventing unsafe operation when the landing door is not correctly locked.

Does a traction-machine brake automatically qualify as UCM protection?

No. A brake may participate in an unintended-car-movement protection architecture, but the complete detection, monitoring, stopping, control, and verification basis must support that function.

Which international standard verifies major elevator safety components?

ISO 8100-2:2026 includes verification of door locking devices, safety gears, overspeed governors, buffers, safety circuits and SIL-rated circuits, ascending-car-overspeed protection means, unintended-car-movement protection means, rupture valves, and one-way restrictors, among other component calculations and verifications.

Which North American code applies?

ASME A17.1/CSA B44 provides the principal elevator and escalator safety-code framework, subject to local adoption. ASME also maintains related standards including A17.5/CSA B44.1 for electrical equipment, A17.6 for suspension, compensation and governor systems, and A17.9 for elevator buffers.

Can JAFITA’s ISO 9001 certificate be used as a safety-component product certificate?

No. ISO 9001 is a company management-system certification. Product-level safety verification or certification must be confirmed for the actual component, elevator, destination market, and applicable standard.

Does JAFITA publish safety-gear, governor, or buffer models?

Not in the current supplier materials. Model-level safety-component claims should be added only from actual JAFITA or approved supplier datasheets and verification documents.

Does JAFITA provide safety-component installation and testing support?

JAFITA’s brochure presents an Engineering Service Team and lifecycle support, but it does not establish one universal site scope for every safety-component order. Installation, adjustment, testing, commissioning, inspection, documentation, and local acceptance responsibilities should be defined for the project.

Scope Boundaries & Engineering Governance

Safety-component scope ends where the complete safety function has not been verified

This page supports project definition and sourcing for elevator safety gears, overspeed governors, buffers, door locking devices, safety circuits, SIL-rated circuits, unintended-car-movement protection, ascending-car-overspeed protection, and hydraulic safety devices.

It does not create a universal JAFITA safety-component range or approve a substitute from a matching model family, mounting pattern, or visual appearance.

Safety components work inside a complete elevator architecture. Their suitability can depend on rated load, car mass, counterweight, speed, guide rails, car frame, governor, suspension, machine, brake, controller, door system, hydraulic circuit, pit, and destination-market requirements.

ISO 8100-2:2026 provides an international component-verification framework within its stated scope. North American projects commonly use ASME A17.1/CSA B44 and related A17 standards, subject to local adoption. Existing elevators may also be subject to requirements that differ from those for newly manufactured components.

Installation, setting, testing, inspection, maintenance, periodic examination, and regulatory acceptance remain the responsibility of the parties assigned to those functions under the project and jurisdiction.

Send Your Safety Component Requirements
Title tag: Elevator Safety Components & Replacement Parts | JAFITA
Meta description: Match elevator safety gears, governors, buffers, door locks and safety devices by function, operating range, interfaces and verification basis.

ALERTS — NOT PART OF THE PAGE. RESOLVE BEFORE PUBLISHING.

  • Current supplier documents do not publish a standalone JAFITA safety-component catalogue.
  • Do not add JAFITA-specific safety-gear models, governor models, buffer models, door-lock models, UCM devices, ascending-car-overspeed devices, rupture valves, one-way restrictors, SIL circuits, mass ranges, speed ranges, rail pairings, tripping speeds, buffer strokes, hydraulic pressure ranges, or certificate numbers without actual supplier technical documents.
  • JAFITA supplier evidence confirms a Safety Door Operator and Door Light Curtain in the freight-elevator context. Do not describe the Door Light Curtain as a substitute for a landing-door locking device or extend these exact freight configuration claims to every JAFITA elevator.
  • The one-million-cycle verification in JAFITA materials applies to the freight safety door operator context. It is not a universal safety-component life claim, warranty, or certification statement.
  • Company-level ISO 9001, ISO 14001, ISO 45001 and the Special Equipment Production License support supplier qualification. They are not universal product certificates for safety components in every market.
  • Do not publish a safety-component substitute recommendation without confirming the exact safety function, approved operating range, mechanical/electrical interfaces, associated devices, and applicable verification or certification basis.