Robot Dog Inspection Workflows: Thermal Cameras, LiDAR, Gas Sensors and Teleoperation
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Robot Dog Inspection Workflows: Thermal Cameras, LiDAR, Gas Sensors and Teleoperation

2026 Canada Enterprise Guide · Workflow and Sources Checked

Robot Dog Inspection Workflows: Thermal Cameras, LiDAR, Gas Sensors and Teleoperation

Build an inspection system that can map the site, detect abnormal heat, monitor atmospheric hazards, stream evidence to a remote operator and turn sensor data into maintenance or emergency-response decisions.

Thermal inspection LiDAR mapping Gas detection Remote teleoperation Canadian deployment controls
Quadruped inspection command Mission link stable
Official Unitree quadruped performing an industrial substation inspection with thermal, acoustic and meter-reading data
Thermal channel Anomaly comparison
LiDAR channel Localization confidence
Gas channel Hazard-specific monitor
Remote Operator authority
Mapped Route and assets
Logged Time-synced data
Fail-safe Stop and recovery
Quick answer

Use LiDAR to localize and navigate, thermal imaging to compare heat patterns, gas sensors to monitor selected atmospheric hazards, and teleoperation whenever autonomy confidence, communications or site conditions fall outside approved limits.

LiDAR answers: Where is the robot?
Thermal answers: What heat pattern changed?
Gas sensing answers: Is the selected hazard present?
Teleoperation answers: What should the human do next?
Navigate this guide
Start with the system—not the sensor

A robot dog does not inspect anything by itself

Inspection value comes from a chain: the robot reaches the asset, sensors capture useful evidence, software associates that evidence with the correct location and equipment, an operator or algorithm interprets it, and the result creates a work order, alarm, shutdown decision or maintenance trend.

Mobility layer

Reach the inspection point

Stairs, grating, rubble, narrow routes, slopes and wet surfaces determine whether the platform can repeat the mission with its actual payload.

Sensor layer

Capture the right signal

Thermal, visible, acoustic, gas and LiDAR sensors must be selected for the asset, hazard, distance, environment and decision requirement.

Location layer

Know where evidence belongs

Maps, waypoints, asset IDs and timestamps connect each image or reading to the exact inspection target.

Communications layer

Maintain operator awareness

Video, commands, alarms and robot health need sufficient bandwidth, latency control and a defined response to link degradation.

Decision layer

Convert data into action

Alarm thresholds, comparison rules, confidence scores and operator review determine whether the result is informational, urgent or mission-stopping.

Enterprise layer

Close the maintenance loop

Reports, work orders, trend history and audit records determine whether the robot improves operations or only creates more files.

Do not purchase sensors before defining the decision. “Detect overheating” must become a measurable requirement: target assets, operating state, viewing angle, baseline, threshold, review process and required maintenance response.

The operational backbone

Define → Map → Validate → Patrol → Detect → Escalate → Report → Improve

1

Define

Identify assets, hazards, decisions, frequency, evidence and success criteria.

2

Map

Create the route, asset IDs, inspection poses and communications survey.

3

Validate

Test sensors, calibration, thresholds, payload balance and safe-stop behaviour.

4

Patrol

Execute the approved route under autonomous, assisted or remote control.

5

Detect

Compare thermal, visual, acoustic and atmospheric data to known baselines.

6

Escalate

Pause, teleoperate, re-observe, retreat or notify personnel under defined rules.

7

Report

Generate asset-linked evidence, exceptions, trend charts and work requests.

8

Improve

Review false alarms, missed detections, interventions and route reliability.

Best first mission: one known route, 10–20 assets, one thermal or visible inspection objective, a staffed operator and a manually reviewed report. Add gas monitoring and autonomy only after the base route is repeatable.

Choose the mobility layer

Go2, As2, A2 or B2: which platform fits the workflow?

The payload, route, environmental protection and consequence of mission failure should drive the platform choice. A small robot can be easier to deploy, but heavy thermal, gas, communications and compute packages can quickly consume its payload margin.

On smaller screens, swipe the table left to compare robot categories.

Unitree Go2, As2, A2 and B2 inspection workflow fit
Inspection factor Go2 EDU As2 EDU A2 / A2 Pro B2
Best role Research, indoor pilots and light sensors Compact professional pilots Medium industrial inspection and patrol Heavy-duty and high-consequence missions
Approximate weight About 15 kg About 18 kg About 42 kg About 60 kg
Continuous operating payload About 8 kg working payload Up to about 15 kg by configuration About 25 kg; ideal conditions near 35 kg More than 40 kg
Published protection No IP rating in core Go2 comparison IP54 on Pro / EDU IP56; A2 Pro core components IP67 IP67
Battery workflow Compact removable battery Long battery on Pro / EDU Dual hot-swappable batteries 2250Wh battery; optional autonomous charging
Inspection sensing Research integration Industrial LiDAR on Pro / EDU A2 Pro adds front and rear LiDAR 3D LiDAR, depth and optical cameras by configuration
Best use University and controlled indoor proof of concept Tight-space professional pilot Substation, plant, pipeline and patrol routes Fire, rescue, rubble, heavy payload and severe terrain

Payload warning: a thermal camera, pan-tilt unit, gas detector, edge computer, radio, enclosure and mounting structure may weigh far more than the camera alone. Validate installed mass, centre of gravity, power and stair stability as one system.

Sensor workflow 01

Thermal cameras: compare patterns before declaring temperature alarms

A thermal camera detects infrared energy and converts it into an image. That makes it valuable for finding heat differences across electrical, mechanical and process assets without physical contact.

  • Transformer and switchgear heat-pattern comparison
  • Bearing, motor and pump condition screening
  • Insulation and heat-loss inspection
  • Hot-spot confirmation after an automated alert
  • Post-fire monitoring for possible reignition
  • Trend comparison under comparable operating conditions

Reliable measurement requires more than image colour. Emissivity, reflections, distance, target size, angle, weather, camera calibration and equipment load can change the apparent result.

Official Unitree quadruped inspection platform displaying a thermal camera view and inspection analytics
Official Unitree inspection-platform illustration. Thermal alerts should be reviewed against camera specifications, operating conditions and asset baselines.
Step 1 · Establish baseline

Capture a known-good condition

Record the asset under known load, ambient conditions, distance, viewing angle and camera settings.

Step 2 · Fix the inspection pose

Make observations comparable

Use a waypoint, pan-tilt pose and framing rule so the target occupies enough pixels and the angle remains repeatable.

Step 3 · Set alarm logic

Use deltas and context

Combine absolute temperature, change from baseline, similar-component comparison and operating state.

Step 4 · Re-observe

Confirm the anomaly

Pause, change angle, capture visible imagery and verify whether reflection, obstruction or motion caused the alert.

Step 5 · Escalate

Trigger the approved response

Classify the result as informational, maintenance review, urgent inspection or immediate safe retreat.

Step 6 · Trend

Compare over time

Store image, radiometric data where available, environment, asset state and review outcome for future comparison.

Thermal rule: do not equate a bright colour with a dangerous temperature. Palettes can auto-scale. The workflow needs measurement data, baseline context and qualified interpretation—not only a screenshot.

Sensor workflow 02

LiDAR: navigation, localization and repeatable inspection geometry

Official Unitree quadruped inspection robot travelling over rough industrial terrain with LiDAR and camera payloads
Official Unitree inspection image. LiDAR supports spatial awareness and mapping, but terrain, dust, smoke, reflective surfaces and changing assets still require validation.

LiDAR measures distance using emitted light and supports mapping, localization, obstacle detection and route repeatability. In inspection, its value is not merely avoiding walls—it helps the system return the camera or sensor to a consistent position relative to the asset.

  • Create a 3D site or route map
  • Localize the robot inside the map
  • Detect route blockage and changed geometry
  • Associate readings with asset coordinates
  • Support digital-twin and waypoint planning
  • Improve repeatable camera positioning

Map quality can degrade when the environment changes, surfaces reflect poorly, dust or smoke affects returns, or long feature-poor corridors create localization ambiguity.

Mapping pass

Survey before automating

Capture the route under representative lighting, doors, equipment, traffic and seasonal conditions.

Waypoint design

Place the robot for the sensor

A safe navigation point may not be a good thermal or gas-sampling point. Define both travel and inspection poses.

Map change

Detect environmental drift

Construction, parked vehicles, moving equipment and seasonal clutter can invalidate planned paths or visibility.

Confidence gate

Know when localization is weak

Set a rule to slow, pause, request operator control or retreat when pose confidence falls below the approved level.

Asset registration

Link readings to equipment

Use asset IDs and inspection poses so a thermal or gas reading cannot be assigned to the wrong component.

Route validation

Test with the full payload

Added mass changes body height, turning, stairs, energy use and the camera’s position relative to mapped targets.

Sensor workflow 03

Gas sensors: select for the hazard, calibrate for the mission

“Gas detection” is not one function. The required sensor depends on the site: toxic gases, combustible or explosive atmospheres, oxygen deficiency or enrichment, volatile compounds and process-specific chemicals may require different technologies, ranges, filters and sampling methods.

Oxygen

Deficiency or enrichment

Oxygen monitoring supports atmospheric assessment where displacement, process activity or ventilation failure may change safe conditions.

Combustible atmosphere

LEL and explosive risk

Combustible-gas monitoring must match the expected gases, sensor response and site procedures.

Toxic gases

Hazard-specific channels

Examples may include CO, H2S, NH3, SO2, Cl2 or other chemicals, depending on the process and hazard assessment.

Sampling location

Gas may stratify

Sensor height, airflow, source location, robot movement and low- or high-density gases affect the reading.

Calibration

Verify before use

Follow manufacturer requirements for calibration, bump tests, sensor age, filters, response time and recordkeeping.

Response

A reading must trigger action

Define whether the robot pauses, retreats, changes route, increases sampling, alarms personnel or calls for qualified confirmation.

Canadian safety principle: CCOHS states that atmospheric testing should use appropriate and calibrated equipment, be performed by a qualified or competent person where required, and have results recorded. A robot can reduce exposure, but it does not eliminate the employer’s atmospheric-testing and confined-space duties.

A practical robot-mounted gas workflow

  1. Identify the expected hazard. Use the site hazard assessment, process information and applicable procedures.

  2. Select the sensor technology. Confirm gas, range, resolution, cross-sensitivity, temperature and humidity limits.

  3. Define sampling geometry. Decide sensor height, pump or diffusion mode, dwell time and route speed.

  4. Calibrate and bump test. Follow manufacturer instructions and document the result before the mission.

  5. Set warning and stop thresholds. Align alerts with site procedures and applicable occupational limits.

  6. Confirm abnormal readings. Use repeat sampling, teleoperation and qualified personnel under a safe procedure.

Official Unitree emergency-response quadruped operating in a dark industrial environment
Official Unitree emergency-response image. The fire-rescue solution page describes B2 configurations using gas sensors, cameras, communications and industrial controllers.

Do not claim hazardous-location suitability from an IP rating. Dust and water ingress protection is not the same as explosion-proof, intrinsically safe or hazardous-location certification. Confirm the complete robot, sensor, battery, radio and payload assembly for the site.

Control workflow

Teleoperation is the safety and capability bridge—not a backup button

Teleoperation allows a remote operator to command the robot while receiving video, sensor data and robot-state feedback. It is essential when the environment is unstructured, the inspection requires judgment or autonomy confidence is too low.

Supervised autonomy

Robot patrols; human approves exceptions

The robot follows the route while the operator monitors health, alarms, confidence and unusual conditions.

Assisted teleoperation

Human commands; robot stabilizes

The operator selects direction or target while onboard controls manage gait, balance and local obstacle response.

Direct remote control

Human manages each movement

Useful for complex reconnaissance, but it requires strong video, low latency, operator skill and clear situational awareness.

Inspection-point control

Operator adjusts the payload

Pause the robot and control pan, tilt, zoom, thermal range or gas-sampling position without manually driving the entire route.

Communications loss

Default to an approved state

The robot should stop, hold, retreat or return according to site risk—not continue blindly because the last command was valid.

Human override

Independent authority to stop

The Canadian Cyber Centre recommends accessible override or shutdown controls that do not rely on the AI’s cooperation.

Unitree’s fire-rescue workflow illustrates the model: the company describes long-distance video transmission, visualization for command decisions, point-to-point communications and industrial-grade remote controllers on configured systems.

Video
See

Provide forward, rear, payload and context views with sufficient detail and dynamic range.

Latency
React

Measure end-to-end delay under normal, congested and degraded network conditions.

Robot state
Understand

Show battery, link quality, posture, alarms, map position and sensor health.

Fallback
Recover

Define stop, retreat, return, alternate link and physical recovery procedures.

Decision engineering

Design alarm levels before the robot enters the site

Every alert should have a defined owner, confirmation method and response. Otherwise, the inspection system creates noise and operators learn to ignore it.

Condition
Informational
Operator review
Teleoperate
Stop / retreat
Thermal change
Log
Small stable delta within approved context.
Review
Repeat image and compare similar equipment.
Reframe
Change angle, zoom or distance.
Escalate
Threshold or pattern indicates urgent risk.
Gas reading
Record
Normal background and sensor healthy.
Confirm
Repeat sample and verify calibration status.
Re-sample
Move upwind, downwind or to a second height.
Retreat
Site-defined warning or danger threshold reached.
Localization confidence
Continue
Pose stable and route clear.
Slow
Confidence declining or map changed.
Take control
Operator navigates to a known area.
Safe state
Pose lost or route is unsafe.
Communications quality
Monitor
Normal latency and video quality.
Reduce task
Lower speed or video bitrate.
Alternate link
Switch network or move to coverage.
Link-loss action
Stop, retreat or return as approved.
Robot health
Trend
Normal temperatures, battery and joint state.
Inspect
Unexpected vibration, heat or current.
Recover
Move to a safe service location.
Shutdown
Critical fault or unstable movement.
Close the operational loop

Time-sync every reading and report only actionable exceptions

A useful inspection record connects the robot’s position, asset ID, sensor reading, camera settings, environmental context, operator action and final disposition. Without synchronization, a technically accurate reading may be attached to the wrong place or time.

  • Robot pose and map version
  • Asset ID and inspection point
  • Thermal and visible imagery
  • Gas channel, units and calibration status
  • Ambient conditions and equipment operating state
  • Alarm rule and confidence
  • Operator confirmation or intervention
  • Work order, disposition and closure
Official Unitree digital twin industrial inspection platform with asset information and alarm overlays
Official Unitree digital-twin illustration. The inspection platform should connect asset location, evidence, alarms and maintenance history.
Exception report

Show what changed

Lead with abnormal assets, confidence, evidence and required response rather than hundreds of normal images.

Trend report

Compare like with like

Match asset load, environment, angle and sensor configuration before concluding that a trend is real.

Operational report

Track robot performance

Record route completion, interventions, link loss, battery use, false alarms and unavailable assets.

Maintenance integration

Create accountable work

Send approved findings into CMMS, EAM or work-order processes with priority, owner and closure evidence.

Audit trail

Preserve human decisions

Log who reviewed the alert, what evidence was considered, which action was taken and why.

Model improvement

Learn from false positives

Use confirmed outcomes to refine inspection poses, thresholds and AI models without hiding prior errors.

Workflow examples

How the sensor stack changes by inspection mission

Electrical substation

Thermal + visible + LiDAR

Map repeatable inspection poses, compare thermal patterns across phases, read meters and escalate abnormal equipment to a remote operator.

Refinery or process plant

Gas + thermal + teleoperation

Patrol selected routes, monitor hazard-specific gases, inspect pumps or valves and use remote control near changing conditions.

Mine or tunnel

LiDAR + gas + network relay

Validate localization, airflow, atmospheric sampling, communications and retreat behaviour before autonomous operation.

Industrial park security

Visible + thermal + teleoperation

Use defined patrol zones, privacy controls and operator review rather than uncontrolled face or behaviour analysis.

Fire post-monitoring

Thermal + visible + gas

Search for residual heat, smoke or selected gases while keeping responders outside unstable or high-exposure areas.

Dam or water facility

LiDAR + visible + thermal

Inspect galleries, pumps, electrical equipment and structural routes, subject to moisture, communications and access controls.

Manufacturer-reported examples

Unitree’s published inspection and emergency-response workflows

Unitree publishes integrated quadruped inspection and fire-rescue systems. These examples show how payloads and command systems can be assembled, but Canadian teams should validate performance independently.

Industrial inspection platform

Thermal, LiDAR and AI vision

Unitree describes infrared thermography, LiDAR and AI vision for detecting temperature anomalies, equipment damage and gas leaks, with centralized analytics and reporting.

Qingdao fire support team

B2 with gas and communications

Unitree reports two B2 systems configured with 360-degree cameras, a dual-light cloud platform, self-networking, gas sensors and industrial remote controllers.

Commercial-complex drill

Multi-level remote reconnaissance

Unitree reports a B2 using camera, gas-sensing and point-to-point communication during a simulated underground commercial fire response.

Evidence boundary: these are manufacturer-reported deployments and drills. They do not establish Canadian regulatory approval, independent reliability, hazardous-location certification or guaranteed results for a different payload and site.

Canadian deployment controls

Safety, privacy and cybersecurity belong in the workflow

Task-based risk assessment

Assess integration, operation and maintenance

CCOHS recommends hazard identification and risk assessment for each stage, with tasks, environment, errors, malfunctions and emergency procedures considered.

Safeguarding

Separate workers during automatic operation

Use barriers, scanners, signs, reduced-speed manual modes, tested stops and site-specific safe distances.

Video privacy

Limit collection and viewing range

The Office of the Privacy Commissioner advises organizations to define the purpose, consider less intrusive alternatives, limit camera range and provide notice.

Network segmentation

Separate AI from operational technology

The Canadian Cyber Centre recommends segmented networks, tightly limited communications and monitoring for unauthorized or anomalous commands.

Independent shutdown

Do not rely on the AI

Override and shutdown controls should remain accessible, independent and tested regularly.

Atmospheric procedures

Robot readings complement—not replace—compliance

Confined-space and workplace atmospheric testing still require appropriate procedures, qualified personnel and calibrated equipment.

This article is not legal, safety-certification or engineering advice. Organizations should involve the site owner, occupational health and safety, industrial hygiene, privacy, cybersecurity, engineering, insurer and legal teams appropriate to the mission.

Pilot before production

A 90-day robot inspection pilot roadmap

Days 0–20

Scope and site survey

Define one route, assets, sensors, alarms, privacy, hazards, network and acceptance criteria.

Days 21–40

Configure and baseline

Integrate payloads, map the route, calibrate sensors, create baselines and test safe-stop behaviour.

Days 41–70

Supervised field pilot

Run staffed missions, record interventions, false alarms, missed points, battery and link performance.

Days 71–90

Acceptance and scale decision

Compare results to manual inspection, close safety gaps and decide whether to expand assets, routes or autonomy.

Route metric

Repeatable completion rate

Measure how often the robot completes every required inspection pose without unplanned human recovery.

Inspection metric

Actionable detection quality

Compare confirmed findings, false positives, false negatives and evidence quality against the existing process.

Business metric

Cost per completed route

Include labour, robot supervision, integration, maintenance, data review and downtime—not only equipment cost.

Before requesting a quote

Robot dog inspection procurement checklist

1 · Mission

Define the decisions

List assets, abnormal conditions, evidence, inspection frequency and required response.

2 · Route

Survey access and communications

Record stairs, surfaces, doors, clearances, dead zones, lighting and environmental conditions.

3 · Thermal payload

Specify measurement requirements

Define thermal resolution, range, accuracy, radiometric data, lens, mounting and calibration.

4 · Gas payload

Name every hazard channel

Confirm gas, range, technology, pump, cross-sensitivity, calibration and response time.

5 · LiDAR

Define mapping and localization

Confirm sensor coverage, map format, localization confidence and degraded-mode behaviour.

6 · Teleoperation

Specify control and feedback

Define cameras, latency, operator interface, radios, alternate links and link-loss action.

7 · Integration

Confirm power and data interfaces

Put voltage, current, Ethernet, USB, CAN, RS485, synchronization and APIs in writing.

8 · Acceptance

Test the complete system

Validate route, payload, alarms, reporting, stop behaviour and recovery under site conditions.

9 · Lifecycle

Plan service and calibration

Confirm warranty, spares, batteries, sensor calibration, software updates and Canadian support.

SpeedyDrone Canada · Toronto

Design the inspection workflow before choosing the robot

SpeedyDrone Canada supports organizations evaluating robot dogs for utilities, industrial inspection, research, public safety and hazardous-site workflows. Send your route, environment, payload, thermal, gas, LiDAR, communications, autonomy, budget and timeline requirements for a platform and deployment assessment.

Industrial robot systems are configuration-sensitive. Confirm the platform, payload, sensors, interfaces, software, communications, environmental suitability, warranty, training and lead time before purchase.

Frequently asked questions

Robot dog inspection workflow FAQ

What sensors can be mounted on a robot dog for inspection?

Common payloads include visible-light cameras, thermal cameras, LiDAR, depth cameras, acoustic sensors, gas detectors, microphones, radiation sensors, pan-tilt units and application-specific instruments. Compatibility depends on payload, power, interfaces, mounting and software.

What does a thermal camera do on a robot dog?

A thermal camera detects infrared energy and converts it into an image. It can help identify heat-pattern changes across electrical, mechanical, process and fire-related assets without physical contact.

Can a thermal image provide an accurate temperature automatically?

Not always. Reliable temperature measurement depends on camera calibration, emissivity, reflections, distance, angle, target size, environment and operating conditions. The workflow should preserve settings and baseline context.

Why does an inspection robot need LiDAR?

LiDAR supports mapping, localization, obstacle awareness and repeatable positioning. It helps the robot return to defined inspection poses and associates readings with the correct asset location.

Does LiDAR make a robot dog fully autonomous?

No. Autonomy also requires mapping, planning, localization, obstacle handling, communications, safe-stop logic and validation. Dust, smoke, reflective surfaces and site changes can affect performance.

Which gases can a robot dog detect?

It depends on the installed sensors. Packages may monitor oxygen, combustible atmospheres or selected toxic gases such as carbon monoxide or hydrogen sulfide. The exact channels must match the site hazard assessment.

Does a robot-mounted gas sensor replace confined-space testing requirements?

No. It may support remote assessment and reduce exposure, but required workplace or confined-space procedures, qualified personnel, calibrated instruments, recordkeeping and applicable legal duties still apply.

What is teleoperation?

Teleoperation is remote control by a human operator who receives video, sensor and robot-state feedback. It can be used for full driving, exception handling or precise payload positioning.

What happens if the teleoperation link fails?

The system should enter a pre-approved state such as stopping, holding position, retreating or returning to a known location. The correct response depends on the environment and risk assessment.

Which Unitree robot is best for industrial inspection?

A2 Pro is a strong medium-duty default because it combines industrial payload, dual batteries and front/rear LiDAR. B2 is better when the mission requires heavier payload, IP67 protection, larger obstacles or severe terrain.

Can Unitree Go2 be used for inspection research?

Go2 EDU can support controlled research and lightweight inspection prototypes. It should not be treated as a substitute for A2 or B2 when weather protection, heavy payload, long endurance or high-consequence industrial deployment is required.

How should thermal and gas alarms be designed?

Use site-defined levels with a clear owner and response: information, operator review, teleoperation, stop or retreat. Every threshold should have a confirmation process and documented action.

How should video privacy be managed in Canada?

Define the purpose, consider less intrusive alternatives, limit camera range, provide notice where required, restrict access, minimize retention and document how identifiable footage is handled.

How long should an inspection pilot run?

A focused 60–90 day pilot is often sufficient to validate one route, payload, communications plan, alarm process and reporting workflow before deciding whether to scale.

Where can a Canadian organization request a robot inspection assessment?

Contact SpeedyDrone Canada for platform selection, payload planning, Canadian quote support, financing questions and enterprise robotics consultation.

Official, Canadian and manufacturer sources consulted
  1. Unitree Advanced Quadruped Inspection Solutions
  2. Unitree Quadruped Robot Fire Rescue Solutions
  3. Unitree A2 and A2 Pro official specifications
  4. Unitree B2 official specifications
  5. Unitree Go2 official product and comparison page
  6. Unitree As2 official product and comparison page
  7. FLIR explanation of thermal-camera operation
  8. FLIR guidance on emissivity and thermal imaging
  9. FLIR thermal-camera calibration overview
  10. CCOHS confined-space atmospheric testing guidance
  11. CCOHS robot and cobot risk-assessment guidance
  12. Canadian Centre for Cyber Security edge-AI deployment guidance
  13. Office of the Privacy Commissioner of Canada overt video-surveillance guidance
  14. SpeedyDrone Canada Unitree Go2 collection
  15. SpeedyDrone Canada enterprise consultation
  16. SpeedyDrone Canada financing information

Information was checked on July 21, 2026. Robot specifications, sensor packages, thermal-camera performance, gas-sensor compatibility, software, communications, payloads, pricing, regulations, package contents, warranty procedures and lead times can change. Manufacturer examples and maximum figures are configuration- and test-dependent, not guarantees. Verify the exact Canadian configuration, site requirements, sensor calibration, workplace procedures and acceptance criteria before deployment.

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