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Olympus

BX 51

Metrology & InspectionOlympus BX 51 family
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Power

1.0 to 12.0 V DC (continuous)[2]

Optics

Built-in transmitted Koehler illumination[1]

What it is

The Olympus BX51 is a system microscope designed for research applications in life sciences and materials science. The BX51 supports transmitted-light and reflected-light observation modes, including brightfield, darkfield, fluorescence, phase contrast, differential interference contrast, and polarized light microscopy. The BX51 is part of the Olympus BX2 series and utilizes the UIS2 optical system for improved fluorescence performance and image quality across a wavelength range from ultraviolet to near-infrared.[3][4][5]

How it works

The Olympus BX51 can be configured with up to two intermediate attachments, such as a magnification changer or eyepoint adjuster. The microscope base houses controls for brightness adjustment, a light path selector knob, and a filter cassette or single-filter mount for 45 mm diameter filters. The brightness adjustment knob controls lamp voltage, with numerals next to LED indicators showing the voltage level.[1][2]

For fluorescence microscopy, the BX51 uses a mercury lamp housed in a separate power supply with a minimum warm-up and cool-down period. A filter cube changer with positions for brightfield, darkfield, and up to four fluorescence filter cubes selects the excitation and emission wavelengths. A reflected light analyzer and a polarizer can be engaged for polarized light and DIC observation. An optional neutral density filter is used for brightfield imaging and is removed when using fluorescence, darkfield, or polarized light modes.[5][4]

Applications

The Olympus BX51 is used for brightfield microscopy in transmission and epi modes, darkfield microscopy in epi mode, fluorescence microscopy in epi mode, and polarization microscopy in both epi and transmission modes. Fluorescence applications include observation of specimens stained with fluorophores such as ECFP, EGFP, EYFP, and DsRed, using mirror units optimized for those dyes. The BX51 can also perform time-lapse imaging and digital photography through an attached camera.[5][3]

Why won't it start?

Documented failure modes, common issues, and field considerations.

  • Objective lens may become dirty from contact with specimen, leading to focusing difficulty with x40 and x100 objectives (source: https://www.chem.purdue.edu/ric/docs/Olympus-BX-51-handout.pdf)
  • Mercury lamp near end of lifetime may be harder to start or fail to start (source: https://www.chem.purdue.edu/ric/docs/Olympus-BX-51-handout.pdf)

What do the numbers mean?

Power & electrical3

Transmitted light bulb
12V 100W long-life halogen bulb (pre-centered) 12V100WHAL-L (PHILIPS 5761) or 12V 50W long-life halogen bulb 12V50WHAL-L (LIFE JC)[1]
Accurate?
Light intensity voltage range
1.0 to 12.0 V DC (continuous)[2]
Accurate?
Rated voltage
100-120/220-240 V[2]
Accurate?

Optics & imaging2

Optical system
UIS2/UIS (Universal Infinity System) with infinity correction[1]
Accurate?
Illumination type
Built-in transmitted Koehler illumination[1]
Accurate?

Control & software1

Stage type
Ceramic-coated coaxial stage with left or right hand low drive control, with rotating mechanism and torque adjustment[3]
Accurate?

Dimensions & facilities1

Weight
20.5 kg[3]
Accurate?

Configuration & options5

Bulb average life time
Approximately 2,000 hours[1]
Accurate?
Focus vertical stage movement
25 mm[3]
Accurate?
Fine focusing knob minimum adjustment gradations
1 μm[3]
Accurate?
Revolving nosepiece
Interchangeable reversed quintuple/sextuple/septuple nosepiece[3]
Accurate?
Power consumption
160 W[3]
Accurate?

Vintage & configurations

Documented models & variants

DesignationGenerationVintageChangesSource
BX52——Similar to BX51 but part of same manual; appears in manual for BX51/BX52 system microscopesmanualslib.com[1]
BX51TF——Transmitted light specification model of BX51 microscope framemanualslib.com[1]
BX51TRF——Transmitted light/reflected light specification model with additional reflected light systemmanualslib.com[1]
BX52TF——Transmitted light specification model of BX52manualslib.com[2]
BX52TRF——Transmitted/reflected light specification model of BX52manualslib.com[2]
BX61——Motorized system microscope with motorized focus, revolving nosepiece, and fluorescence illuminatormicroscopy.uk.com[3]
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What does it need to run?

Site utility requirements, footprint, and infrastructure needed to install and operate this tool. Sourced from public records.

  • Transmitted light bulb12V 100W long-life halogen bulb (pre-centered) 12V100WHAL-L (PHILIPS 5761) or 12V 50W long-life halogen bulb 12V50WHAL-L (LIFE JC)[1]
  • Light intensity voltage range1.0 to 12.0 V DC (continuous)[2]
  • Rated voltage100-120/220-240 V[2]

Where are the manuals?

Generated from public-source data on file. Enter your email to access — nothing is published; details are routed privately.

Not publicly documented

Field notes

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Frequently asked questions

What type of light sources are used with the BX51?

The BX51 can be equipped with halogen lamps, mercury lamps, xenon lamps, and metal halide lamps. The microscope has two tungsten lamps for transmission and epi microscopy and a mercury lamp for fluorescence microscopy.[5][3]

How many filter cube positions does the BX51 fluorescence illuminator have?

The filter cube changer has a total of 6 positions. Five of those are permanently occupied by brightfield, darkfield, and three fluorescence filter cubes, with the sixth position open for user-specific filters.[5]

What is the interpupillary distance adjustment used for?

The interpupillary distance adjustment is used while looking through the eyepieces to adjust for binocular vision so that the left and right fields of view coincide completely.[1]

Not publicly documented

The following facts about the BX 51 are absent from this record as of this revision. First-hand knowledge or a citation closes a gap; every submission is reviewed before publication.

  • No publicly documented production dates or lifecycle milestones (introduction, end of production, EOL) for the BX 51 are on record.

    Answerable by: OEM historical records or a trade-press announcement

  • The control-system platform and OS era of the BX 51 are not on record.

    Answerable by: an engineer who operated it or OEM installation records

  • The process node or technology generation of the BX 51 is not on record.

    Answerable by: an OEM datasheet or a fab qualification report

  • No publicly documented compatible parts, consumables, or accessories for the BX 51 are on record.

    Answerable by: an OEM parts catalog or a service engineer

  • No publicly hosted manuals, SOPs, or datasheets for the BX 51 are on record.

    Answerable by: university cleanroom staff or an OEM application specialist

Sources & citations

Sources (6)Every fact above is drawn from these public sources
  1. [1]manualslib.com — manualslib.commanualslib.com
  2. [2]manualslib.com — manualslib.commanualslib.com
  3. [3]microscopy.uk.com — microscopy.uk.commicroscopy.uk.com
  4. [4]https://arf.berkeley.edu/files/attachments/equipment/OlympusBX51.pdf — arf.berkeley.eduarf.berkeley.edu
  5. [5]https://www.chem.purdue.edu/ric/docs/Olympus-BX-51-handout.pdf — chem.purdue.educhem.purdue.edu
  6. [6]Equipment inventory listing
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Last updated Sep 29, 2026.

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