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How to Choose the Best Borescopes for Oil & Gas and Energy Inspection

By Vivek Rohra 11 minute read
How to Choose the Best Borescopes for Oil & Gas and Energy Inspection

Corrosion, erosion, deposits, cracking, and heat-related damage often develop inside oil and gas equipment where maintenance teams cannot see them directly. The first challenge is getting a camera to the right surface. The second is collecting enough visual evidence to make the next inspection or maintenance decision.

That is why there is no single "best" borescope for oil and gas inspection. Process piping, heat exchanger tubes, compressors, gas turbines, pressure vessels, and classified process areas create very different access and inspection problems.

The right videoscope depends on what you are trying to find, where it is located, how you can reach it, and what you need to do with the finding afterward.

Quick answer: Start with the problem, not the camera. If you need to evaluate corrosion or erosion, decide whether seeing the damage is enough or whether it must be measured. For deposits and fouling, reach and viewing direction may matter more. Turbines may require controlled articulation and measurement. In classified areas, the required equipment rating comes before normal camera features.

Why Internal Damage Matters

A recent offshore incident shows why corrosion cannot be treated as a background issue.

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In January 2025, a BSEE investigation into an offshore gas pipeline explosion found severe corrosion and major wall-material loss at a flange before the failure. BSEE's recommendations emphasized corrosion evaluation, mechanical-integrity testing, wall-loss monitoring, documentation, and protective-coating maintenance. The incident is a useful reminder that corrosion can progress in areas where inspection access and condition monitoring matter.

That particular corrosion was external, so an internal videoscope would not have been the correct detection method. BSEE recommended mechanical-integrity testing, corrosion evaluation, documentation, protective-coating maintenance, and NDT methods for measuring pipeline wall thickness.

That distinction matters.

A borescope should not be asked to replace ultrasonic thickness testing, corrosion monitoring, process instrumentation, or another required NDT method. Its value begins when the maintenance team needs direct visual access to an internal surface that is otherwise difficult to see.

ASNT's overview of Visual Testing explains how VT is used to find visible surface conditions such as cracks and corrosion, including indirect viewing with borescopes and video probes, while other NDT methods may be needed when the inspection question goes beyond what can be seen.

Fired heaters provide another recent example of why internal condition matters.

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In March 2025, the CSB investigation into the Marathon Martinez fired-heater tube rupture found that short-term overheating caused a tube to bulge, lose strength, and eventually rupture during startup. The findings reinforce why internal condition, operating data, inspection records, and the right inspection method all matter when evaluating fired-heater tubes and similar equipment.

The CSB also reported that at least eight fired-heater tube rupture incidents meeting its reporting criteria occurred across several companies from 2020 through 2024.

Again, the lesson is not that a borescope would have prevented those incidents. Fired-heater integrity depends on operating controls, instrumentation, inspection programs, engineering safeguards, and other NDT methods.

The RVI question is narrower:

When you need to see an accessible internal surface, what camera will actually get you there and give you useful evidence?

Oil & Gas Videoscope Selection Guide

Inspection problem
Where it may appear
What the inspection needs
AIT starting point
Corrosion or erosion that must be evaluated
Turbines, compressors, internal surfaces, accessible piping and components
Clear imaging, 3D measurement, inspection records
Deposits, fouling or blockage
Process piping, fired-heater tubes, boiler internals, heat exchangers
Reach, articulation, correct viewing direction
Cracking or damage in turbines and machinery
Gas turbines, rotating equipment, hot-section components
Probe flexibility, measurement, demanding imaging conditions
Inspection inside a classified area
Refinery process equipment, fuel systems, classified plant areas
Correct hazardous-location rating first
Damage behind a very small access opening
Valves, compact components, small internal passages
Very small probe with steerable tip

These are starting points, not fixed product assignments. Access geometry, inspection procedure, environment, measurement requirements, and the actual condition being investigated still decide the final configuration.

Corrosion and Erosion

Corrosion and erosion are not one inspection problem.

Sometimes the job only requires visual confirmation that surface damage exists. In other cases, the inspector needs to determine the length, depth, area, profile, or amount of visible material loss before the finding can be compared with an acceptance limit.

That is where advanced visual measurement becomes useful.

Mentor Visual iQ+ is designed for inspections where dimensional evidence matters. Its 3D Phase Measurement and Real3D Stereo capabilities can be configured to measure visible cracks, corrosion, erosion, missing material, gaps, areas, profiles, and clearances. The system also connects images, measurements, notes, guided workflows, and reporting.

That last part is important in oil and gas maintenance.

Finding corrosion during an outage is one task. Being able to show where it was found, document the visual evidence, attach measurements, and pass a usable record to another inspector or maintenance team is another.

Know what 3D measurement can and cannot do. A 3D measurement borescope measures the geometry of the visible surface. It does not tell you the remaining thickness of metal hidden beneath that surface. If remaining wall thickness is the inspection question, use the appropriate thickness-measurement method required by the inspection procedure.

Deposits, Fouling and Blockage

Deposits and fouling create a different problem.

A blockage may sit several feet inside process piping. Fouling may be on the sidewall of a heat exchanger tube rather than directly ahead of the camera. A fired-heater tube may involve long access, bends, residue, and a surface that needs to be viewed from a specific angle.

Here, buying the most advanced measurement system may not solve the real problem.

You first need a probe that can get there.

The AIT K Series can be configured with probe diameters from 1.0 mm to 8.0 mm, multiple working lengths, and front, side, or dual-view options. Supported configurations include motor-driven articulation, while long versions extend to 30 m. AIT lists fired-heater tubes, boiler internals, heat exchangers, compressor passages, and long tube runs among its industrial-maintenance applications.

The practical question is simple:

Can the probe reach the suspected deposit and point the camera at the surface you actually need to inspect?

Long-Reach Piping

Long process piping makes this especially important.

Every bend adds resistance. Residual oil or water can affect visibility. A sidewall defect may require a different viewing direction from an obstruction directly ahead. The longer the route becomes, the more deployment and probe control matter.

Before choosing a long-reach videoscope, map:

  1. Entry point. Record where the probe actually enters the asset.
  2. Farthest target. Measure the real working distance to the inspection area.
  3. Bends and elbows. Note where the probe must change direction.
  4. Diameter changes. Include restrictions deeper inside the route.
  5. Internal obstructions. Account for anything that can stop or deflect the probe.
  6. Target surface. Decide whether the camera needs to look forward or to the side.
  7. Contamination. Consider oil, water, deposits, or residue that may reach the lens.

Read AIT's 30-Meter Borescope Inspection guide for a closer look at the practical limits of long-probe inspections.

Turbine Damage

Gas turbines and other rotating equipment create another inspection problem.

The target may be behind a small port, around internal geometry, or on a blade surface that requires controlled steering just to hold a usable view.

Then comes the second question:

If you find cracking, erosion, impact damage, or another indication, what information does the maintenance decision require?

For teams that want interchangeable probe configurations with Real3D measurement, Mentor Flex+ is one option to evaluate. Its QuickChange probe system allows different probe sizes and lengths to be used with the same handset, and its imaging system is specified for operation up to 100°C at the probe tip.

That temperature capability does not remove the need to follow site procedures or the equipment's documented limits. It simply gives inspectors another option when the component has not completely returned to ambient temperature.

For high-value turbine programs where more advanced measurement and reporting are required, the inspection may instead justify moving to the MViQ+ class of equipment.

The point is not that every turbine needs the most expensive scope.

The point is to know what decision the inspection result must support before choosing the system.

Classified Areas

An inspection camera may have the right diameter, length, articulation, and image quality and still be the wrong instrument for the location.

That happens when the inspection sits inside a classified area.

People commonly search for an explosion proof inspection camera or explosion proof camera for oil and gas, but "explosion proof" is not a blanket description for every hazardous-location instrument.

The site's actual Class/Division or Zone requirement needs to be checked first.

OSHA 1910.307: Hazardous (Classified) Locations
OSHA requires hazardous areas to be classified individually and equipment used there to be suitable or approved for the specific location.

AIT VideoScope (AITVS) is AIT's nonincendive articulating videoscope rated for Class I Division 2 and ATEX Zone 2. It is available in configurations from 3.2 mm to 8 mm diameter and from 1.5 m to 30 m insertion length.

AITVS is not a Zone 0, Zone 1, or Class I Division 1 instrument. The site must determine its area classification, and the selected equipment must match that requirement.

Ask for the area classification first. Do not start with "Do you have an explosion proof camera?" Start with: "What is the confirmed area classification?" That one answer may remove several otherwise suitable cameras from consideration before diameter or image quality are even discussed.

Very Small Access

Not every difficult oil and gas inspection needs long reach or advanced measurement.

Sometimes the normal videoscope simply does not fit.

Small valve passages, compact machinery components, instrument cavities, and other restricted openings can make probe diameter the first and most important specification.

Milliscope HDX uses 1.1 mm and 1.6 mm articulating probes with two-way steering up to ±170°. Shaft lengths range from 150 mm to 1 m depending on configuration.

The smaller probe should still not be chosen automatically.

If a larger probe fits the complete route, it may offer capabilities that better suit the inspection. Small diameter solves an access problem. It does not automatically make a scope better.

Heat Exchangers

Heat exchanger inspections introduce a practical problem that is easy to overlook.

A bundle may contain many similar tubes. Even when the camera finds corrosion, deposits, or damage, that image is not very useful later if nobody can tell which tube it came from.

A good inspection plan therefore needs two things:

visual access and traceability.

The scope must fit the tube ID, reach the required distance, and provide the right viewing direction. The inspection workflow should also connect captured images to the correct tube, location, or component reference.

That is especially important when inspection records will be reviewed later by engineering, maintenance, QA, or another technician.

Use AIT's Remote Visual Inspection Tool Selection Guide when the tube geometry or inspection method makes the correct camera type less obvious.

Compressors

Compressors can contain blades, valves, internal passages, casings, deposits, and other surfaces that are difficult to inspect without opening the machine.

For a basic condition check, a configurable articulating videoscope may be enough.

But some findings carry more weight.

If an indication needs dimensional evaluation, repeated comparison, annotations, or a formal record for maintenance review, reporting capability becomes part of the equipment decision instead of an afterthought.

This is why two inspection teams looking at the same compressor may reasonably choose different videoscopes.

One needs access.

The other needs access plus evidence.

Tanks and Pressure Vessels

A borescope can be useful for inspecting a specific internal location through an available port.

For example, the target may be:

  • an internal weld
  • localized corrosion
  • a nozzle
  • a small area of coating
  • deposits near an opening
  • a specific internal component

But a large vessel creates a different problem.

If the requirement is to view broad areas of the vessel wall from a distant position, a dedicated tank or vessel camera may be a better tool than an articulating handheld videoscope.

This distinction matters for fuel tank inspection camera searches as well.

The correct camera category depends on the size of the space, the access point, the viewing distance, lighting, and the site's hazardous-location requirements.

When a Borescope Is Not the Right Tool

This is one of the most useful decisions an inspection supplier can help make.

A handheld videoscope may not be the right starting point when:

  • the pipeline run is better suited to a push camera or crawler
  • the task requires remaining wall-thickness measurement
  • the inspection requires subsurface defect detection
  • a large tank needs broad-area viewing
  • the job requires true downhole deployment
  • the camera will be used for site surveillance rather than internal RVI

A downhole camera for oil and gas, for example, can face deployment, pressure, temperature, depth, and environmental requirements that are different from a videoscope inserted through an accessible plant inspection port.

Calling both products "inspection cameras" does not make them interchangeable.

7 Questions Before Choosing a Videoscope

  1. What are you trying to find? Corrosion, erosion, cracking, fouling, blockage, weld condition, foreign material, thermal damage, or general internal condition?
  2. What is the smallest opening? Measure the smallest restriction anywhere along the route, not only the outer access port.
  3. How far away is the target? Measure working distance from the actual entry point.
  4. What happens along the route? Count bends, elbows, restrictions, transitions, and surfaces that may add friction.
  5. Where is the surface? Straight ahead, on the sidewall, around a bend, or behind another component?
  6. Do you need to see it or measure it? This decision can change the equipment class significantly.
  7. What environment will the camera enter? Check temperature, liquids, chemicals, contamination, and hazardous-area classification.

If those seven answers are known, product selection becomes much easier.

Buy or Rent?

Not every inspection justifies purchasing another system.

Buying usually makes more sense when the inspection repeats often, the same probe configuration is used across multiple assets, or the equipment becomes part of a routine maintenance program.

Rental can make more sense when:

  • an outage creates a temporary requirement
  • an unusual access problem needs a specialized probe
  • advanced 3D measurement is only required occasionally
  • an emergency inspection cannot wait for a capital-equipment purchase
  • the team wants to verify a configuration before buying

AIT offers rental options across selected RVI equipment, including measurement-capable systems.

Review AIT RVI rental options.

What to Send AIT for a Quote

Do not start with a model number if you are not sure which configuration fits.

Send the inspection details instead:

  1. Asset. Piping, compressor, turbine, heater, exchanger, vessel, valve, or other equipment.
  2. Problem. Corrosion, deposits, cracking, blockage, erosion, weld condition, or another target.
  3. Smallest access opening. Include restrictions deeper inside the route.
  4. Required reach. Distance from the entry point to the target.
  5. Bends. Number and approximate geometry if known.
  6. Viewing direction. Forward, side, or unknown.
  7. Measurement need. Visual documentation or dimensional evaluation.
  8. Environment. Temperature, fluid, contamination, chemicals, and site classification.
  9. Inspection frequency. One project or repeated use.
  10. Purchase or rental. Include this if already known.

That information is much more useful than asking for the "best oil and gas borescope."

Key takeaways
  • Internal corrosion, erosion, cracking, deposits, and thermal damage create different inspection problems.
  • The correct camera depends on both the defect and the access path.
  • Visual inspection and wall-thickness measurement are not the same thing.
  • A long probe is useful only if it can navigate the actual route and provide the required view.
  • Classified areas must be evaluated by their actual equipment requirements before camera features are compared.
  • Reporting and 3D measurement matter most when the finding must support a documented maintenance decision.
  • Some pipelines, tanks, downhole jobs, and NDT requirements are better served by another inspection technology.

Frequently Asked Questions

Can I use one videoscope for several different oil and gas assets?

Sometimes, but the probe configuration has to suit each job. A platform with interchangeable or configurable probes can make more sense when the same team inspects turbines, compressors, piping, heat exchangers, and other equipment with different access sizes and working lengths.

Should I choose a replaceable probe or a fixed-probe videoscope?

A replaceable-probe system can be useful when inspection requirements change or when probe damage would otherwise take the entire instrument out of service. A fixed-probe system may be simpler when the same diameter, length, and viewing direction are used repeatedly.

How do I know if a videoscope probe can handle oil, fuel, or chemical exposure?

Check the manufacturer's documented probe and insertion-tube compatibility before ordering. Do not assume that an industrial videoscope is resistant to every fuel, solvent, process chemical, or cleaning agent used at the site.

What reporting features should I look for in an industrial videoscope?

Look at how the system saves images, video, measurements, annotations, inspection notes, and reports. If inspection records are shared with maintenance, engineering, or QA, the workflow for naming, organizing, exporting, and reviewing files can matter as much as image quality.

Is a dual-view probe worth buying for oil and gas inspection?

It can be when the same inspection requires both forward viewing and sidewall inspection. Dual-view capability may reduce probe changes when checking tube walls, welds, piping, or internal components, but it should be selected around the actual access route and target.

What should I ask about service and probe repair before buying a videoscope?

Ask whether the probe can be replaced separately, what parts typically require factory service, what loaner or rental options are available, and how repairs affect inspection availability. For teams that depend on the instrument during outages or scheduled maintenance, serviceability can become a purchasing factor.

Need Help Choosing the Right Inspection Camera?

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About the Author

 Vivek Rohra

Vivek Rohra

LinkedIn

President of Advanced Inspection Technologies. With prior experience at Jefferies, Moelis & Company, Morgan Stanley, and J.P. Morgan, he brings deep expertise in aerospace, industrial, and healthcare sectors to the business of visual inspection.

Reviewed by AIT Inspection Team Last updated September 2026

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