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Collimated Beam Device BSH-03 CBD

The BSH-03CBD is a precisely engineered collimated beam irradiation chamber for reproducible and dose-accurate UV irradiation of liquid samples. With three 150 W UVC amalgam lamps, it ensures a homogeneous, high-intensity 254 nm radiation source. The system was developed based on the standard methods for fluence and dose determination described in the technical literature according to Bolton & Linden, Standardization of Methods for Fluence “UV Dose Determination in Bench-Scale UV Experiments” (2003) – the methodology that is considered the reference in scientific UV disinfection research.

The procedure was adopted in DIN 19294-1:2020-08, so that the BSH-03CBD can be used to determine the average fluence rate in the spore suspension.

The inactivation must be carried out in a BSH-03CBD in accordance with Annex D of DIN 19294-1:2020-08.

The amalgam lamps stay at operating temperature throughout the experiment; the exposure time is defined by the internal shutter alone, which the UV-MAT regulates to the target dose. The chamber can therefore be opened during operation to load and unload samples without letting the lamps cool down – safety monitoring rules out any UV emission in the process.

The BSH-03CBD irradiation chamber is therefore a reliable and precise solution for scientific research and industrial applications of UV disinfection. Its robust construction, safety, and user-friendly operation make it an indispensable tool in water treatment and chemical analysis.

Key features of the UVC collimated beam device:

  • The BSH-03CBD is equipped with three ozone-free 150 W UVC amalgam lamps. These lamps ensure uniform and high UV irradiation.
  • The closed protective housing fully shields the UVC radiation of the three amalgam lamps.
  • The 60 × 40 cm irradiation area takes customer-supplied Petri dishes together with magnetic stirrers for spore suspensions to DIN 19294-1.
  • A UV reference sensor for dose-controlled operation is built in.
  • A second UVC sensor allows for easy setup of the system.
  • The UV-MAT Touch regulates the irradiation via the UVC reference sensor and switches off once the target dose is reached.
  • Monitored & interlocking door: Safety mechanisms prevent the emission of UV radiation when the door is open.
  • The base plate with screw threads allows the irradiation field to be measured and the Petri factor to Bolton/Linden to be determined.
  • Pneumatic plate shutter: the amalgam lamps stay at operating temperature, the exposure time is defined by the shutter alone.
  • Operating hours counter – the amalgam lamps reach a typical service life of 3,000 to 5,000 h.
  • Raw data and short reports (PDF) are stored by the supplied PC software, password protected with an administrator and an operator account.

BSH-03 CBD or BSM-03 CBD?

With three 150 W UVC amalgam lamps the BSH-03 CBD emits practically monochromatically at 254 nm. This removes the spectral weighting from the fluence calculation according to Bolton and Linden and makes the chamber suitable for determining the average fluence rate to DIN 19294-1 as well as for inactivation experiments at a defined UV dose. At 550 W on 230 V and a lamp life of 3,000 to 5,000 h it is also the more economical chamber. Wherever the polychromatic radiation of a medium-pressure lamp is required – photolysis, AOP experiments, spectral action functions – the BSM-03 CBD with its 1 kW medium-pressure mercury lamp is the matching variant.

Irradiation is by UVC lamps at 254 nm – monochromatic, so that the measured irradiance can be converted into a fluence without spectral weighting.

Background & Information

The paper “Standardization of Methods for Fluence (UV Dose) Determination in Bench-Scale UV Experiments” by James R. Bolton and Karl G. Linden (2003) presents a basic standard procedure for determining UV fluence (UV dose) in laboratory experiments. The aim of the paper is to standardize experimental methods for UV disinfection and to ensure the comparability of scientific results in water treatment.
Ultraviolet light has established itself as an efficient method for inactivating pathogenic microorganisms in drinking water and wastewater.

The mechanism is based on the absorption of UV radiation by nucleic acids, which leads to dimerization of pyrimidine bases and thus prevents the replication of DNA or RNA. Wavelengths around 254 nm, as emitted by low-pressure mercury lamps, are particularly effective.
There are major differences in the literature regarding the design, calibration, and implementation of UV experiments. Among other things, the type of lamp, distance to the sample, homogeneity of the radiation, and calculation of the dose varied. This variability made it difficult to compare dose-response curves and led to uncertainties in regulatory applications and the technical implementation of UV disinfection systems.
Bolton and Linden developed a uniform methodology for determining fluence that is applicable to both monochromatic (low-pressure) and polychromatic (medium-pressure) UV light sources (BSM-03CBD) and proposes an irradiation chamber. The aim of the irradiation chamber is to achieve homogeneous, quasi-parallel irradiation of the water surface in order to ensure uniform fluence distribution.

The protocol includes:

  • the mechanical construction of the irradiation chamber,
  • the calibration of the measuring instruments,
  • the mathematical correction of the radiation parameters,
  • as well as guidelines for microbiological and safety aspects

Description of the standard protocol:

The fluence is defined as the product of the fluence rate (E) and the irradiation time (t):
The measurement is performed with a radiometer whose sensor is positioned at the height of the water surface. To increase the measurement accuracy, several correction factors are taken into account:

  • Reflection factor: loss due to reflection at the water surface (~2.5%)
  • Petri factor: correction for inhomogeneity across the sample area (should be > 0.9)
  • Water factor: consideration of UV absorption in water according to Beer–Lambert‘s law
  • Divergence factor: Correction for the non-completely parallel beam path

For medium-pressure lamps, the sensor factor (spectral sensitivity of the detector) and the germicidal factor (weighting of the wavelengths) are also taken into account.
 

Microbiological test procedure
 

  • Stirring: Homogeneous mixing of the suspension without vortex formation.
  • Irradiation with different dose values
  • Replicates: At least three repetitions per dose value; perform dose-response curves at least twice.
  • Randomization: Random order of irradiation to minimize systematic errors.
  • Evaluation: Calculation of the log10 reduction of microorganisms as a function of dose and linear regression to determine UV sensitivity.
     

The paper defines a complete, internationally recognized protocol for standardizing UV disinfection tests on a laboratory scale.
Through precise correction methods, defined design requirements, and microbiological guidelines, it provides the basis for reproducible and comparable results in determining UV fluence-effect relationships.
The Bolton & Linden (2003) method remains the reference standard for laboratory testing with collimated beam systems and is central to regulatory applications such as DIN 19294, validation testing, and the development of industrial UV disinfection technologies.

Determining the fluence rate: what the collimated beam trial gives

The collimated beam trial answers a question no plant measurement can: what fluence did the sample actually receive? The irradiance at the sample surface is measured and corrected by four factors – Petri factor, reflection factor, divergence factor and water factor. Only the product of the corrected fluence rate and the exposure time is a fluence that can be compared with the literature and with the reduction equivalent fluence of a reactor.

The underlying method of Bolton and Linden is described in detail below under “Background & Information”, together with the standard protocol. How a fluence determined this way feeds into the validation of a reactor is set out under UV water treatment.

The BSH-03 CBD is built for this trial: monochromatic irradiation at 254 nm, a defined irradiated area, measured irradiance and dose-controlled exposure – so that a run is set as a fluence rather than as a stopwatch reading. For polychromatic trials with a medium-pressure lamp, the BSM-03 CBD stands alongside it.

Technical data UVC collimated beam device

Interior chamber 60 × 40 × 25 cm
Dimensions 130 × 62 × 76 cm
Weight ~ 65 kg
Power consumption 550 W
Mains 230 V, 6 A; 3 × 110/208 V, 8 A optional
Operation temperature 15 to 30 °C
Humidity < 80% non-condensing
Lamp lifetime 3,000 h to 5,000 h, typical
Number of lamps 3
Lamp type 150 W UVC amalgam lamps
ozone free yes
Sample temperature Room temperature + ~ 1–2 °C
Shutter control Pneumatic, 4–6 bar
Cooling 1 x DN 100

Spectra of the irradiation chamber BSH-03 CBD

The three UVC amalgam lamps emit practically monochromatically at 254 nm. That is the prerequisite for determining fluence after Bolton & Linden and DIN 19294-1: with a single line there is no spectral weighting over the absorption of the sample, and the Petri factor, the reflection factor and the water factor can be calculated for that one wavelength. The lamps are ozone-free; a 185-nm component would change the gas phase above the sample.

Equipment in detail

In addition to the built-in UV reference sensor and the second UVC sensor, the following applies to the chamber's sensors:

Two radiometer sensors with connecting cable

Sensors

Suitable materials give the sensors excellent long-term stability. They are traceably calibrated, can be recalibrated and are supplied with a factory or ISO 17025 calibration certificate.

The UV-MAT Touch irradiation control

Screen of the UV-MAT Touch: irradiance, target and actual dose per lamp group, with the remaining time below

The UV-MAT Touch is operated through a high-resolution capacitive touchscreen. A Cortex ARM processor provides durability and the ability to update - new functions can be installed on site. The device and the PC software are compatible with Windows 10 and 11. Single- and multi-channel irradiations are shown numerically and graphically, together with oscillograms and the settings. Parameters are set directly on the device and are password protected. It controls the irradiation through the UVC reference sensor and switches off once the target dose is reached.

Displaycapacitive touch display, 5″ WVGA
Display outputirradiance and dose, oscilloscope view
Data recording rateadjustable: 1 s to 1 h
Recording period> 24,000 h
Storage interface1 × USB stick (up to 32 GB)

Order numbers, scope of delivery, accessories and versions

VersionOrder number
Collimated Beam Device BSH-03CBD860915

The collimated beam device produces a parallel UVC field for fluence determination according to Bolton.

VersionOrder number
UV-MAT Touch820930CH

The chamber is controlled by the UV-MAT Touch. It measures the irradiance through the UVC reference sensor, switches off once the target dose is reached and documents the irradiation.

DesignationOrder number
Radiometer sensors814412

The chamber works with a built-in UV reference sensor; a second UVC sensor makes setting up and measuring the irradiation field easier. Further spectral ranges are listed under radiometer sensors.

DesignationOrder number
Replacement lamp860814H

ServiceOrder number
CalibrationCAL254
17025 calibration17025

CAL254 is the calibration of the measuring channel at 254 nm; in addition we offer accredited calibration to ISO/IEC 17025.

Publications using UV irradiation chambers

We do not keep a separate bibliography for this individual device – publications usually name the product family, not the model. Listed here are the 10 most recent works in which UV irradiation chambers were used.

TitleAuthorsJournalYear
Bacillus subtilis endospore integrity and viability on simulated Martian regolith in rotational UVC radiation exposuresDavis, G. M.; Horner, J.; Greenhill, A. R. et al.Life Sciences in Space Research2026
Erlotinib and Leflunomide Disrupt 6‐Formylindolo [3, 2‐b] Carbazole Metabolism and Sensitize Keratinocytes to UVA Radiation‐Induced ApoptosisHartung, F.; Dairou, J.; Ramamoorthy, S. et al.Photodermatology, Photoimmunology & Photomedicine2026
Estudo para remoção de ácido p-arsanílico em águas brutas e potáveis com a subsequente quantificação de as por cvg-mip oes——2026
High-Throughput Complex Disease Modeling for Ethical Drug Discovery: Clinical Relevance of a NAM Platform for Cancer Biomarker DevelopmentDillier, E.; Sousa, R.; Kluser, T. et al.Journal of Cancer Genetics And Biomarkers2026
Influence of Treated Surface Proportion on the Antibacterial Performance of UV-Activated Hydroxyapatite–Magnesium Phosphate–Zinc Oxide Coating on Magnesium AlloysTamurejo-Alonso, P.; Casares-López, J. M.; García-Galván, F. R. et al.Journal of Functional Biomaterials2026
Influence of UV irradiation on the skin-immune cell inflammatory responseMiceli, R.; Allen, N.; Jankowski, M. et al.—2026
Light-based footprinting of a eukaryotic genomeÖgren, L.; Muylaert, I.; Elliott, K. et al.Science Advances2026
MED20 biallelic pathogenic variants cause a neurodevelopmental disorder altering both transcription activity and Transcription-Coupled Repair pathwayMay, N. L.; Leconte, R.; Alberti, A. et al.—2026
Passivating Contacts-Related Ultraviolet-Induced Degradation in Silicon Heterojunction Solar CellsXu, B.; Alkhereibi, S.; Eberst, A. et al.Small Structures2026
Porous g-C₃N₄ with simultaneous carbon doping for photocatalytic water treatment and splittingSarifuddin, W. S.; Saman, F.; Mahadi, A. H. et al.Next Materials2026