GE G8.5 brochure UV and damage to sensitive materials, Information on luminaire design

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UV and damage to sensitive materials

The wall of the bulb, which is produced with specially developed ‘UV Control’ material, absorbs potentially harmful high energy UV radiation emitted by the ceramic arc-tube.

The use of UV control material together with an optically neutral front glass cover allows the lamp to significantly reduce the risk of discolouration or fading of products. When illuminating light-sensitive materials or at high light levels, additional UV filtration is recommended. Luminaires should not be used if the front glass is broken or missing. It is recommended that a safety interlock switch is incorporated into the luminaire to prevent operation when the luminaire is opened.

Although PET determines limits of human exposure to lamp UV, the risk of fading of mechanise due to UV can be quantified by a Damage Factor and a Risk of Fading. The risk of fading is simply the numerical product of the illuminance, exposure time and damage factor due to the light source.

Finally the selection of luminaire materials should take into consideration the UV emission. Current UV reduction types on the market are optimised for UV safety of human eye and skin exposure. However, luminaire materials may have different wavelength dependent response functions. Designers must take account of emission in each of the UV-A, UV-B and UV-C spectral ranges as well as material temperatures when designing luminaires. Typical values for UV-A, UV-B and UV-C range radiation can be found in the table below.

 

 

20W

35w

35w

70w

70w

Lamp type

 

3000K

3000K

4200K

3000K

4200K

 

 

 

 

 

 

UV-PET Performance µW / (cm²) / 500LUX

 

 

 

 

 

 

 

 

 

 

 

 

UV C

220-280nm

0.036

0.0367

0.020

0.014

0.011

UV B

280-315nm

0.049

0.0467

0.040

0.006

0.009

UV A

315-400nm

10.170

10.360

113.870

6.980

9.800

UVC/UVB

 

10.720

0.786

0.509

2.365

1.321

UVB/UVA

 

0.005

0.005

0.003

0.001

0.0099

Eeff

 

0.052

 

0.034

0.015

0.014

PET (h)±10%

 

16

15

26

54

64

Risk Group

IESNA RP-27.3-96

Exempt

Exempt

Exempt

Exempt

Exempt

Information on luminaire design

Ballasts

ConstantColor CMH™ operate from the same type of ballast as conventional quartz technology metal halide lamps of the same nominal power. IEC 61167 MH lamp standard and IEC62035 HID lamp safety standard specify use of ballast thermal protection or equivalent protection device in the circuit. This safety device will protect the ballast and fixture from overheating damage at lamp end-of-life should rectification occur due to electrode imbalance or arc-tube failure. The IEC61167 requirement applies to both ceramic and quartz arc tube metal halide lamps of the UV-A, UV-B and UV-C spectral ranges as well as material temperatures when designing luminaires.

ConstantColorTM CMH G8.5 lamps are compatible with a list of approved ballasts; contact your GE representative for more information.

Stay magnetic field from conventional ballast

At the design stage for fixtures incorporating the control gear, careful consideration should be given to the physical layout of the lamp and ballast. The relative positions and distance between lamp and ballast can adversely affect lamp performance and drastically reduce lamp life survival.

Conventional magnetic ballasts can produce a stray magnetic field and if the lamp is placed within this field, “bowing” of the arc in the discharge tube can occur. Since ceramic is a very rigid material severe arc bowing can cause high thermal stress leading to cracking or rupture of the arc-tube resulting in failure of the lamp early in life.

Such bowing of the arc can also affect the quartz arc-tube in conventional metal halide lamps, but cracking or rupture failure is less likely since quartz softens at the resulting higher wall temperature causing the arc-tube to become swollen. Excessive swelling of a quartz arc-tube can however also result in cracking or rupture failure.

In fixtures where the ballast is necessarily placed close to the lamp, use of magnetic shielding is essential. Another solution is to use an electronic ballast, which eliminates the need for an ignitor, simplifies wiring, reduces the risk of stray magnetic field and eliminates light output flicker.

Electronic ballast operation

CMH 20W is designed only for operation from electronic gear*. This provides many advantages:

Flicker free light output

Well controlled electronic ignition process

Simple wiring for fixtures due to elimination of ignitor and

PFC capacitor

Reduces fixture weight

Automatic sensing of failed lamps and shutdown

Lower overall system power consumption

On further details of operating gear please refer to GE

Circuit diagram

electronic ballast

LH = Lamp holder

E = Electronic Gear

Mains

N P

E

LH

Containment requirement

ConstantColor CMH™ lamps operate above atmospheric pressure, therefore a very small risk exists that the lamp may shatter when the end-of-life is reached. Although this failure mode is unlikely, containment of shattered particles is required as prescribed by IEC 61167. ConstantColor CMH™ lamps should only be operated in a suitable enclosed luminaire with front cover glass capable of containing the fragments of a lamp, should it shatter.

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Contents Safety warnings Ceramic Metal Halide LampsSingle Ended G8.5 Product Information Specification summary CMH 20W G8.5 3000K DimensionLamp life CMH 35W G8.5 3000K and 4200KLumen maintenance Special power distributionDistribution of luminous intensity End of life cycling Lamp end of life conditionsLumen depreciation DimmingUV and damage to sensitive materials Information on luminaire designWire cross .75...2.5 mm2 Control gear and accessoriesDimension Electronic BallastsSuperimposed ignitors Impulser ignitorsOther ignitor related considerations

G8.5 specifications

The GE G8.5 is a revolutionary imaging system that represents a significant advancement in medical technology. It is designed primarily for the healthcare sector, integrating cutting-edge features and innovative technologies to enhance diagnostic capabilities and improve patient outcomes.

One of the standout features of the G8.5 is its high-resolution imaging capability. The system is equipped with advanced imaging sensors that capture images in remarkable detail, allowing clinicians to make accurate assessments quickly. The high-resolution images enable better visualization of smaller anatomical structures, making it easier to diagnose various conditions during imaging procedures.

Another key characteristic of the GE G8.5 is its user-friendly interface. Designed with healthcare professionals in mind, the interface provides an intuitive experience that streamlines workflow. Clinicians can easily navigate through different settings, make adjustments on the fly, and access patient data without any hassle. This improves efficiency, allowing healthcare providers to focus more on patient care rather than being bogged down by complex technology.

In addition to its imaging capabilities and user interface, the G8.5 features advanced connectivity options. This includes seamless integration with hospital information systems and electronic medical records. As a result, it supports better data sharing among medical professionals and enhances collaboration in patient care. Clinicians can access medical histories, previous imaging results, and consult with colleagues in real-time, further elevating the quality of care provided.

Furthermore, the GE G8.5 incorporates artificial intelligence (AI) technologies that assist in image analysis and interpretation. These AI-driven features enhance diagnostic accuracy and reduce the potential for human error. The system can automatically detect anomalies, suggest relevant parameters, and even prioritize images for review, significantly speeding up the workflow and enabling practitioners to make informed decisions.

Lastly, the GE G8.5 is built to meet stringent safety and regulatory standards, ensuring that it offers not only advanced technology but also reliability and patient safety. With its durable design and high-quality components, it is engineered for long-term use in busy medical environments.

In conclusion, the GE G8.5 is a state-of-the-art imaging system endowed with high-resolution capabilities, a user-friendly interface, advanced connectivity, AI integration, and a commitment to safety. These features position it as a vital tool in modern healthcare, ready to transform the landscape of medical imaging and diagnostics.