SO-P8 visual alarm device (VAD)

The SO-P8 visual alarm device is destined for optical signalling in fire alarm systems. SO-P8 is intended for outdoor applications.

Cooperating products:

Description

Notice Documents to be downloaded after logging in.

VISUAL ALARM DEVICE SO-P8 HOLDS DOCUMENTS ISSUED BY CNBOP-PIB:

  • CERTIFICATE CPR NO. 1438-CPR-0875
  • CERTIFICATE OF APPROVAL NO. 4826/2023

Use

The SO-P8 visual alarm device is destined for optical signalling in fire alarm systems. SO-P8 is intended for outdoor applications.

Construction

The visual alarm device has a housing made of non-flammable material, in which electronic components are located. The housing consists of three parts: a body with a mounted LED lamp, a cover with a mounted printed circuit board, a base for mounting to the wall/ceiling or directly to the PIP-1AN or PIP-3AN box.

The lid contains:

  • power connector,
  • eight-position microswitch.

The power connector has three pins marked “+”, “-“, and “S”. The “+” and “-” terminals are used for power supply, while the “S” terminal is used for connecting an additional synchronization wire.

Using a microswitch, it is possible to select the operating mode of the VAD – “master” or “slave”, select the delay time, select the frequency of flashes or select the solid coverage area (3m, 6m, 9m, 12m).

Operating design

After connecting the power supply, the SO-P8 visual alarm device generates an optical pulse signal with a flash time shorter than 0.2 s. By default, the frequency of the generated optical signal is 0.5 Hz. The light-generating element is LED diodes, placed in a housing (diffuser) forming an optical part. SO-P8 enables the creation of a network of signaling devices operating synchronously (synchronized optical part).

Varieties

The SO-P8 VAD is available in 6 varieties.

Varieties
Description
SO-P8/CC VAD in red housing, red light
SO-P8/CB VAD in red housing, white light
SO-P8/CM VAD in red housing, alternating red and white light
SO-P8/BC VAD in white housing, red light
SO-P8/BB VAD in white housing, white light
SO-P8/BM VAD in white housing, alternating red and white light

Notice Certificate of Admittance is only valid in Poland for SO-P8/CC variety.

Opening

To open the alarm device you should: screw out the blocking screw, twist the shade to the left while holding the base, then move apart the shade and the base.

Closing

To close the alarm device adjust the markers, then assemble the device and twist it to the direction marked with an arrow (sequence shown in the drawing). After closing, screw in the blocking screw.

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Assembly recommendations:

The SO-P8 VADs should be connected to the FAS installation through junction boxes with the required class of maintaining electrical functions (recommended PIP-3AN/0.75A). If there is no need to use the synchronization option of the SO-P8 VADs, it is also possible to mount them through the PIP-1AN/0.375A installation box, observing the following information on the mounting method. If mounting directly on the box is not required, the PIP-2AN/0.375A box can be used to connect the device.

The box should be mounted to the substrate/wall with the required fire resistance. If, for aesthetic reasons, it is not possible to mount the signaling device directly on the PIP box, it is permissible to mount the signaling device to the base that does not have the required fire resistance, while the PIP junction box must be mounted on the base with the required fire resistance (e.g. a situation in which the box PIP is mounted to the ceiling with E90 resistance, while the SO-P8 sounder is mounted in the suspended ceiling). Detailed guidelines for the installation of PIP installation boxes are included in the National Technical Assessment CNBOP-PIB-KOT-2019/2024/0113-3704 (1st edition).

The mounting cover OM-2 is intended for installation in a suspended ceiling. This procedure allows the device to be hidden in the suspended ceiling, which increases the aesthetic value of the installation.

If there is a need to protect the signaling device against mechanical damage at the installation site, the OZ-50-2 protective cover can be used.

Technical data

Type visual alarm device (VAD)
Supply voltage 16-32,5 V DC
Current consumption in off state 0 mA
Current consumption in on state <30 mA*
Power consumption in on state <0,72 W*
Sound output not applicable
Flash frequency 0,5 Hz*
Flash time ~150 ms*
Time between flashes ~1850 ms*
Device category O
Device type Type B
Working temperature from -25°C to +70°C
IP protection degree IP54
IK protection degree IK07
Conductor cross-section 2,5 mm2
Dimensions Ø114×70 mm
Weight ~230 g

*for default settings
(supply voltage Uz=24 V DC, optical shape 3m, flash frequency 0,5 Hz, delay time 0 s)

Additional

Control

Connecting the supply voltage to the appropriate terminals triggers the flashing signal.

click to enlarge

 

Number of microswitch Mark Function
1 M/S Operating mode selection MASTER (ON) / SLAVE (OFF)
2 D0 Delay time selection
3 D1 Delay time selection
4 D2 Delay time selection
5 F0 Flash frequency selection
6 F1 Flash frequency selection
7 L0 Optical shape selection
8 L1 Optical shape selection

Control – devices network

SO-P8 VADs can work in a network. Devices that are to be synchronized with each other should be connected with an additional conductor marked as S. Only one device in the network should be set as MASTER, the rest as SLAVE. The figure below shows an example of a SO-P8 synchronization scheme.

The figure below shows an example of a synchronization scheme.

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SO-P8 devices can also be synchronized with other signaling devices produced by W2:

  • SA-K7N - optical part
  • SAOZ-Pk2 - optical part
  • SAO-P8 - optical part

Notice For correct synchronization, the SO-P8 VADs must flash with a frequency of 0.5 Hz.

Oprtical part

Ceiling mounting – red light

The diagram for the installation of SO-P8 VAD (varieties with red light) on the ceiling is presented below. The table opposite shows the radius of the coverage area depending on the installation height (h) and selected optical shape.

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Ceiling mounting – white light

The diagram for the installation of SO-P8 VAD (varieties with white light) on the ceiling is presented below. The table opposite shows the radius of the coverage area depending on the installation height (h) and selected optical shape.

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Wall mounting

Photometric solids of the SO-P8 VAD – surface intensity >0.4 lx (cross-sections – parallel to the floor). Sections parallel to the floor with the signaling device hung on the wall, made at a distance x from the optical axis of the signaling device. Axes of all graphs scaled in meters. In the figure below, the SO-P8 VAD is mounted on the wall. At a distance (x=4m) from the axis of the signaling device, a cross-section of the photometric solid is presented, where the required lighting intensity is ensured.

click to enlarge

In the drawing, the photometric solid is marked in blue, and the plane of the longitudinal section is marked in purple. In the example above, it is located at a distance of x=4 m from the optical axis of the signaling device (assuming that the signaling device is mounted at a height of 4 m and this height corresponds to the point x=0, y=0, z=0, then the figure on the right the longitudinal section corresponds to the area on the floor, where the illuminance is ≥ 0.4 lx (example for the SO-P8/CC signaling device, 6m solid).

Notice All drawings are included in Operation and Maintenanace Manual.

Flash frequency selection

In order to change the flash frequency of the signaling device, change the settings of the microswitches F0, F1 in accordance with the table below.

Frequency Microswitch position
F0 F1
0,5 Hz ON ON
0,93 Hz OFF ON
1,12 Hz ON OFF
1,3 Hz OFF OFF

Optical shape selection

In order to change the optical shape of the signaling device, change the settings of the L0, L1 microswitches in accordance with the table below.

Optical shape Microswitch position
L0 L1
3m ON ON
6m OFF ON
9m ON OFF
12m OFF OFF

Delay time selection

In order to change the delay time between the VADs operating in the master mode and the next device operating in the slave mode, change the settings of the D0, D1, D2 microswitches in accordance with the table below.

Microswitch Delay time
D0 D1 D2
OFF OFF OFF 0 s
ON OFF OFF 0,1 s
OFF ON OFF 0,2 s
ON ON OFF 0,3 s
OFF OFF ON 0,4 s
ON OFF ON 0,5 s
OFF ON ON 0,6 s
ON ON ON 0,7 s

Video

In the video below:

  • introduction
  • housing
  • features (optical shape selection, flash frequency selection)
  • wave mode
  • synchronization
  • varieties
  • cooperating products W2

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FAQ

SO-P8 visual alarm device (VAD) / Find out the most frequently asked questions and answers about this product

Your questions, our answers: Whether you are a new user or a regular customer, our answer database contains a wealth of information to help you better understand our products. Discover the answers curated by our experts.

What effect does the cross-section of the wires have on voltage drops?

The larger the cross-section of the wires, the lower its resistance and, consequently, the lower the voltage drops. For example, the HDGs 1x2x1.5 mm2 cable has a core resistance of R = 12.1 Ω/km, while the HTKSH 1x2x2.5 mm2 cable has a core resistance of 7.41 Ω/km. In order to calculate the voltage drop, the length of the line should be taken into account and a safety factor related to the length of the wire that may be caught in fire (increase in its resistance) should be assumed.

What is the effect of temperature on the resistance of wires?

The resistance of the wires changes as a function of temperature. According to the ISO curve, the temperature of the PH30 cable operating in fire conditions will be 822°C after 30 minutes and its resistance will increase 4.5x! The temperature of the PH90 cable after 90 minutes will be approximately 955°C and its resistance will increase by almost 5.3x! This should be taken into account when designing the installation and appropriate safety factors should be adopted. The resistance of the cable affects voltage drops and, consequently, whether the device will operate in hazardous conditions or not. Voltage drops can be compensated by increasing the cross-section of the conductors.

How to read and what does the IK protection degree mean?

The PN-EN 50102 (PN-EN 62262) standard provides a classification of the degrees of protection provided by enclosures against external mechanical shocks for devices with a rated voltage not exceeding 72.5 kV. The definitions of the degrees of protection and their markings, the requirements for each marking and a description of the tests performed to check whether the housing meets the requirements of the standard are provided.

The standard presents a classification from 0 to IK10, where IK0 means no protection and IK10 means resistance to an impact with an energy of 20J (the impact of a steel hammer or a ball weighing 5 kg falling on the housing from a height of 40 cm).

Did you know that:

A change to the above has recently been published. standard, which introduces, among other things, a new protection level IK11 (resistance to a 50J impact energy!).

How to read and what does the IP protection degree mean?

Degrees of protection provided by enclosures (IP code) is the full name of the PN-EN 60529 standard. It contains a classification of degrees of protection provided by enclosures of electrical devices with a rated voltage up to 72.5 kV.

The code consists of:

  • first characteristic digit (against the ingress of foreign solids)
  • second characteristic digit (against water ingress)
  • additional letter (before access to hazardous parts)
  • supplementary letter (supplementary information)

For example, according to EN 54-3, EN 54-23 standards, external fire alarms (type B) must provide IP33C protection. This means that the housing provides protection against:

  • access to hazardous parts with a tool (2.5 mm probe)
  • foreign bodies with a diameter of 2.5 mm and larger
  • water spraying (at any angle up to 60° from the vertical)

How to calculate the required battery capacity for the power supply?

The required capacity K [Ah] of the battery(s) can be calculated from the formula:

K=1,25*(I1*t1+I2*t2)

Where:

K – required capacity, in ampere-hours (Ah)

t1 – support time, in hours (h)

t2 – alarm time, in hours (h)

I1 – total current consumed by the fire alarm system in the event of failure of the energy source, in amperes (A)

I2 – total current consumed by the fire alarm system when alarming, in amperes (A)

Where can I find additional information about visual alarm devices?

EN 54-23 Fire detection and fire alarm systems. Fire alarm devices. Visual alarm devices (wersja polska PN-EN 54-23:2010 Systemy sygnalizacji pożarowej — Część 23: Pożarowe urządzenia alarmowe — Sygnalizatory optyczne)

PKN-CEN/TS 54-14:2020-09 Systemy sygnalizacji pożarowej — Część 14: Wytyczne planowania, projektowania, instalowania, odbioru, eksploatacji i konserwacji

STANDARD CNBOP – PIB Nr CNBOP–PIB–0019 Ochrona Przeciwpożarowa SYGNALIZATORY OPTYCZNE

NFPA 72 National Fire Alarm and Signaling Code

COP 0001 Loss prevention code of practice. Code of practice for visual alarm devices used for fire warning. Issue 1.0

Is it possible to build a network of synchronized devices of different types?

It is possible to build a network consisting of following devices: SA-K7N, SA-K5N, SAOZ-Pk2. These signaling devices have the same synchronization mechanism which allows creating networks (synchronization).

What is the wave effect in SO-P8 VADs and in which situations can it be used?

The SO-P8 visual alarm devices in addition to synchronization also have the option of setting flash time delays between devices. Using the D0, D1, D2 micro switches, it is possible to set the time delay in the range from 0 - 0.7 s in 0.1 s increments. In the case when several signaling devices are installed in the corridor, it is possible to create the so-called "Wave effect" with time delays between signaling devices in such a way that the flash will indicate the direction of evacuation.

Attention! This mode is outside the scope of EN 54-23:2010.

How to understand the concept of required illuminance?

The required illuminance according to EN 54-23: 2010 is 0.4 lm / m2 on the surface perpendicular to the direction of the light emitted by the device.

How is the number of VADs estimated?

Shapes of photometric solids for signaling devices manufactured by W2 are available on the website. Depending on the version of the signaling device and the mounting height, the radius of the coverage area changes (part of the space in which the required light intensity is achieved).

For example, for the SO-P8/CC (default settings) the radius of the coverage area (R) for the suggested mounting height (h=3 m) is 4,1 m. This allows to calculate the side length (a) and the square area (Sa) for which the light intensity of 0.4 lux is provided.

 

click to enlarge

Considering that a = (2 x 4,1 m) / √2 ≈ 5,8 m. the square area where the required level of light intensity is assured is about 48,03m2. Based on this, it is possible to estimate the number of signaling devices needed on the x (Lx) axis and y (Ly) axis.

Example:
For example, suppose the room in question has the dimensions of x = 20 m, y = 10 m. In this case, the number of signaling devices needed on the x side will be: Lx = 20 m / 5,8 m ≈ 3,45, while the number of signaling devices on the y side will be Ly = 10 m / 6,93 m ≈ 1,72. Of course, integers should be taken for further estimates, so Lx = 4 and Ly = 2. The total number of VADs needed will finally be Lx * Ly = 4 * 2 = 8.

If the room has an irregular shape, it should be divided into smaller squares. For more detailed calculations, use * .ies files available for download from the website and applications such as DIALux or Calculux, where it is possible to take into account more variables. More information about the arrangement of VADs can be found in the American standard NFPA 72 National Fire Alarm and Signaling Code.

NOTE: The above example is used to illustrate the issue of VADs placement. It is illustrative. Under real conditions, many additional factors should be considered.

What does the IP21C and IP33C code mean?

For type A signaling devices, the manufacturer should ensure a minimum degree of 21C (in accordance with EN 60529: 1991. Degrees of protection provided by enclosures (IP code) - this standard specifies "... a system of classification of degrees of protection, marked with a code, provided by enclosures of electrical devices with rated voltage not more than 72.5 kV ... "), which is synonymous with the fact that the device itself is protected against access by foreign bodies with a diameter greater than or equal to 12.5 mm and against the harmful effects of dripping water penetrating the housing of the device. For the user himself, this is a protection against accessing hazardous parts with fingers.

On the other hand, B type devices should have a degree of protection of at least 33C. According to the standard referred to above, this means protection against the access of foreign objects with a diameter greater than or equal to 2.5 mm and against the harmful effects of sprayed water penetrating the housing of the device. The user is protected against access to hazardous parts, even when using a tool. However, it has to be said that the product should be provided with appropriate measures to restrict access to its interior to remove a part or the entire device, as well as change the mode of operation, e.g. through special tools, codes, hidden screws, seals.

Can VADs be used interchangeably with sounders?

In buildings where, for various reasons, acoustic signaling may be insufficient (e.g. high background noise levels, work requiring the use of personal protective equipment in the form of hearing protectors), optical signaling should also be used, in addition to acoustic signaling. Optical signaling is a supplement to acoustic signaling and should not be used alone.

When is the synchronization of VADs recommended??

EN 54-23:2010, NFPA 72 and LPCB CoP 0001 contain provisions specifying the use of synchronization of flash signals generated by VADs. When devices are installed in close proximity, their frequency / flashing pattern can lead to undesired effects - such as triggering seizures at people suffering from photosensitive epilepsy (for a detailed description of the issue, see LPCB CoP 0001). The NFPA 72 standard additionally states that synchronization should be used when at least two optical VADs are visible from one place in the building.

Certified signaling devices manufactured by W2 with a certified optical element are equipped with the synchronization function (SO-P8, SAO-P8, SGO-Pgw, SAOZ-Pk2, SGO-Pgz3).

What are the advantages of VADs with O category?

Classifying devices as category O is the most flexible approach. The following are the main advantages of the O category over the other two (C and W):

  • thanks to any mounting position (ceiling, wall), the need for double inventory is eliminated (devices of categories C and W can be installed only within their category)
  • no restrictions on the mounting height - for VADs classified as O only the suggested mounting height is given. In the case of a device classified as C-3-y, installation at a height higher than 3 m is not allowed. In this case, use another device, e.g. C-6-y. Suggested mounting height for the O category, e.g. 3 m, does not preclude mounting the device above this height. It should be borne in mind however, that a device with a suggested mounting height of 3 m is likely to cover a smaller area than installed e.g. at a height of 4 m
  • category O devices are not subject to any restrictions - it is possible to create the largest possible coverage area in the form of any cuboid

VADs manufactured by W2 (SO-P8, SAO-P8, SGO-Pgw, SAOZ-Pk2, SGO-Pgz3) have category O.

What does the category (type A, type B) means?

The EN 54-23: 2010 harmonized standard introduces the division into type A (for indoor applications) and type B (for outdoor applications) VADs. This is important from the point of view of the requirements that the device must meet. In short, devices classified as type B must undergo more stringent tests, e.g. they must have a higher degree of IP protection and undergo additional tests that are not required for type A devices. All this means that they can be used both outside and inside buildings where, for example, prolonged high humidity may occur and / or be exposed to high temperatures.

Why does the housing and flash color of VADs sold in Poland have to be red?

Each acoustic or optical signaling device used in the fire alarm system must have appropriate documents confirming compliance with legal requirements.

The first legally required document is a Certificate issued for compliance with a harmonized standard. Currently, compliance with the EN 54-23: 2010 standard, which includes VADs, is issued by the CNBOP-PIB document called Certificate of Constancy of Performance. The standard defines international requirements.

Additional country requirements may exist for some product groups. In the case of sounders and VADs sold in Poland, they are included in the Annex to the Regulation of the Minister of Interior and Administration of 27 April 2010 (item 553). These devices are part of group 11, i.e. elements of warning and evacuation systems. Therefore, it is necessary to issue a Certificate of Approval for them, which confirms the fulfillment of the requirements contained in the above mentioned Regulation. Paragraph 11.5.2.1 defines the required device color and optical signal:

The VAD housing and light color should be red. The inscription "POŻAR" should be placed on the visible surface of the VAD.

It is worth adding that the current harmonized standard EN 54-23: 2010 also includes white as a possible color of the emitted light. Therefore, in countries where there are no additional local restrictions (e.g. similar to the above mentioned regulation), it is also possible to use VADs with white light as well as without the word FIRE. Devices with a certified optical element manufactured by W2 (SO-P8, SAO-P8, SAOZ-Pk2, SGO-Pgw, SGO-Pgz3) have been tested in accordance with the harmonized standard and can also be ordered with white light if necessary.

What requirements should a visual alarm device meet?

The visual alarm device should meet the requirements of the EN 54-23 standard. The fire signal should be clearly visible and different from other signals used indoors.

Visual alarm devices should be numbered and placed in such a way that they are visible from every place in the space where they are used.

Additionally, in Poland, visual alarm devices must meet the requirements contained in the regulation of the Ministry of Internal Affairs and Administration of April 27, 2010.

Where and why are VADs used?

VADs should be used wherever there is a possibility that hearing impaired people are present or hearing protectors are used. Relevant provisions regarding the use of VADs can be found in CEN/TS 54-14:2004 Fire detection and fire alarm systems - Part 14: Guidelines for planning, design, installation, commissioning, use and maintenance

"In zones where acoustic signals may be ineffective, e.g. due to the background noise being too high, hearing impaired among users, or where hearing protectors are probably worn, in addition to acoustic signals, optical signals should be used"

VADs should only be used to supplement acoustic alarm devices and should not be used alone.

“Optical fire alarm devices should only be used in addition to acoustic alarm devices and should not be used alone. Each optical fire alarm should be clearly visible and distinguishable from other optical signals used in the facility.”

What is an visual alarm device (VAD)?

An Visual Alarm Device is a device that generates a flashing light intended to signal a fire hazard to persons in the building.

Do fire alarm devices have protection against reversal of supply voltage polarity?

Tak, sygnalizatory pożarowe posiadają zabezpieczenie przed zmianą polaryzacji napięcia zasilającego.

Do fire alarm devices have a built-in power supply or do they need to be powered from the control panel?

Sygnalizatory pożarowe nie posiadają wbudowanego zasilacza, konieczne jest zapewnienie zewnętrznego źródła zasilania. Do zacisków sygnalizatora powinno być doprowadzone napięcie zgodnie z dokumentacją producenta.

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