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Link Vue SystemOfferSafety for Human and Assets(ALERT 24X7)
• Link Vue Systemwill offer Product and SupportEnd 2 End Solutions from Concept Design Engineering ,BOQ , Installation
• Electrical Safety Earthing ,lightning ,SurgeProtection, Automation ,ProtocolConverter, Networking LAN ,Fiber, Wireless, CCTV, Fire
Alarm, Access Controls,SecuritySystem,PIDS, Street LightLED ,IndustrialPlug and Socket , Freedom Connectorsfor Building Wiring,
MC 4 Connectors ,Cable and Connectors for Electric Vehicle,
• We invite Architect,Electrical Consultant , MEP Consultant,Electrical Vehicle Charging Infra,Solar PV Power ,High Energy Battery
Storage,SubstationAutomation,RT-DAS Projects,Oil & Gas ,Tunnel Rail Road, Rail Transportation,AirportInfra, Building Infra,Telecom
Infra ,SmartCity
• EPC Companies, Electrical Project Contractors,ProjectEngineering Departments.
• We are also Inviting for Distribution and Dealer Network of our products in India, Bangladesh,Australia and Singapore
• We kindly advise your Engineering Design Team Handling Electrical , C&I, Automation,Signal & Telecom, and Electro Mechanical ,
EPC Project to review our Catalogue and allow us to meet .
• We are also available for web-meeting, Presentationas required by customer
CCTVand StreetLightLEDInstalationLargestProgrammein India (National
CitizenSafetyAgenda/Programme by Central and States)
• Installation Of Street Light under No Dark Place Citizen Safety Programmes
• Installation of CCTV in all Public Places to Monitor and Safety of Citizen
• Hotels,Hospitals, Market’s Shopping Centers ,Cinema Halls School,Universities ,
Animal Zoo Park ,Public Garden and Enterianment Parks,Car Parking , Railway
Station ,Bus Station,Airports, Police Station ,Banks, Prision Jails,Goverment and
Pvt Offices,Defense , Oil and Gas Refineries , Storage Terminals ,Pipe Line and
Despach Terminal Station ,Various Industrial Manufacturing Plants and logistic
Warehouses.
• Mendatory for Public Transportaion Like Bus , Indian Railways,Metro Rail
Coaches,Lifts .
• Mendatory Installation of CCTV Cameras by EXCISE Department for Liquir
Manufacturing ,Stocking and Selling in the Bottling Plants In order to monitor the
bottling operations and dispatches of liquor, an integrated CCTV mechanism
should be installed in the bottling plants.
• Survey Through Drones using CCTV
Lan Networking Infrastructure
CCTV Installation Solution for Indoor and Out door
BuildingAutomation andControlSystems
BACS has become and will continue to be increasingly common in the built environment, converging many diversebuilding systems as computing technology
developed and connectivity became moreavailable. Section 3 introduces the premise of Building Automation and ControlSystems (BACS), including the many terms
used such as Building Automation Systems (BAS), Building Management Systems (BMS), Building Energy Management System(BEMS), IntelligentBuildings (IB) and
increasingly, SmartBuildings and even Smart Cities. (Anautomatedsystem, where building services andprocesses, communicate witheachother toexchange
digital, analogue or other forms of information, toa central control point)
WithLink-vue Freedomto Monitor ,AccessandControl Remotely
Monitoringand SecuritySurveillanceyour Plant
StoreYour Powerand Supplyas per LoadDemand
FuturePowerGenerationand UtilitiesNo Boundaries
ElectricVehicle ChargingInformation
India GuideProject for Electrical Charging Infrastructure
YourBestPartnerfor SolutionDataCommunication & Networking
BestProductEasyInstallation and EasyMaintenance
Selectionof RightSurgeProtectionand Installationis is your Hand(TECHNICAL AwareneSS)
Electrical circuits may be connected to ground (earth) for several reasons. Earthing serves as:
•Personal protection
•Property/ operational protection
•Potential grading earthing
•Electro-magnetic pulses protection
•Lightning protection
In mains powered equipment, exposed metal parts are connected to ground so that if, due to any fault conditions, a “line” supply voltage connection occurs to any
such conductive parts, the current flow will then be such that any protective equipment installed for either overload or “leakage” protection will operate and
disconnect the line voltage.
This is done to prevent harm resulting to the user from coming in contact with any such dangerous voltage in a situation where the user may, at the same time, also
come in contact with an object at ground/earth potential. Connection to ground also limits the build-up of static electricity when handling flammable products or
electrostatic-sensitive devices.
Earthing should include:
Low electrical resistance(Max1.00 Ohm)
Abilityto conduct stable voltage,even at weather changes
Long life expectancy, i.e. high resistance against corrosion
EarthingforEquipmentsas perLatestElectricalSafetyIndianStandard
Earthingis Nothinglessthan Engineering
MaintenanceFreeEarthingValueCalcullation& CostingPer PIT
• BOQ Per Earthing PIT
• 17.2mm Copper Bonded 3 Mtr ROD=1
• Earth Enhance Compound(Value 0.012
Ohm) Qty -30 KG
• Earthing Clamp Connector for
Connecting FLAT STRIP/Conductor - 01
• Earthing Strip /Conductor as per
Equipment Load /Fault Current -10
Mtrs
• High Quality Industrial Plastic PIT Cover
BeGenuineBuyGenuine InstallationbyProfessional
LightningKillsand DestroyYourValuableAssets
No lightningprotection system is 100% effective. A system designed in compliancewith the
standarddoes not guarantee immunity from damage. Lightning protection is an issue of
statisticalprobabilitiesand risk management. A system designed in compliancewith the
standardshould statisticallyreduce the risk to below a pre-determined threshold. The risk
management process provides a framework for this analysis.An effective lightning
protection system needs to controla variety of risks. While the current of the lightningflash
creates a number of electrical hazards, thermal and mechanicalhazards also need to be
addressed. Risk to persons (and animals) include: • Direct flash • Step potential• Touch
potential• Side flash • Secondary effects: – asphyxiation from smoke or injury due to fire –
structural dangers such as fallingmasonry from point of strike – unsafe conditionssuch as
water ingress from roof penetrationscausing electrical or other hazards, failureor
malfunctionof processes, equipmentand safety systemsRisk to structures & internal
equipment include: • Fire and/or explosiontriggered by heat of lightningflash, its
attachmentpoint or electrical arcing of lightning current within structures • Fire and/or
explosiontriggered by ohmic heating of conductors or arcing due to melted conductors •
Punctures of structure roofing due to plasma heat at lightningpoint of strike • Failure of
internalelectrical and electronic systems • Mechanicaldamage including dislodgedmaterials
at point of strike
LightningChargeThreat to Humanand Valuable Infrastructure
Atmospheric discharges are a powerful natural phenomenon. Lightning can reach a power of several hundred gigawatts and can have a destructive or disturbing effect on
electrical systems located miles away from the point where the lightning strikes.Damage caused by direct lightning strikes is generally serious, with large conomic consequences.
As an example, the electrical switchboard can catch fire, causing devastation of industrial equipment and even the building. The best and only way to avoid this is the installation
of an ELP.Atmospheric discharges can determine various phenomena in an electrical system, resulting both from direct and indirect lightning strikes.
Direct lightning strikes on lightning rods/conductors (LPS, Lightning Protection System) or external conductive elements (antennas, metallic pipes/guttering etc.).Galvanic
coupling When lightning strikes the lightning conductor or roof of an earthed building directly, the current flows to earth and through the power supply lines. The resistance of
the PE system, when dispersing the lightning current, causes an increase in the PE conductor up to several thousand volts (ohmic effect). On the other hand, the potential of the
active conductors remains at 230 V for the phases and zero for the neutral (remote potential of the transformer). The electrical equipment connected between the power supply
network and earth can break their isolation and some of the lightning current flows through them, resulting in damage.
Direct lightning strike on aerial power lines. Conductive coupling When lightning strikes a low voltage aerial power line, very strong currents flow through it, entering the
buildings it supplies and giving rise to large overvoltage surges. The large amount of energy entering directly into the system causes faults and failures of electrical or electronic
equipment connected to the power supply.
Indirect lightning strikes.Electromagnetic coupling The electromagnetic field created by atmospheric discharges in the vicinity of aerial electricity lines or electrical systems
generates an overvoltage surge in each loop of the circuit. The electricity lines incorporate loops since the neutral or PE is connected repeatedly to earth (every two or three
poles).
Even lightning striking the external protection system (LPS) creates a surge in the loops formed by the electrical system wiring.With a range of hundreds of yards or even miles, the
electromagnetic field generated in cloud lightning can create sudden voltage increases.In these cases the damage, less spectacular than in the previous cases, can still have a
permanent effect on the most sensitive electronic equipment such as computers, photocopiers and security and communications systems.
The following curve summarizes the cumulative frequency of the lightning strikes with respect to their intensity, according to the results of this enormous measuring campaign:
– 1.27% of the lightning strikes are greater than 100 kA
– 0.33% of the lightning strikes are greater than 150 kA
– 0.1% of the lightning strikes are greater than 200 kA
– 0.03% of the lightning strikes are greater than 250 kA
Technologyand Design WorkTo-Gather(SAFE)
UL SPD Types - Per 1449 4th Edition
Type 1- One port. permanently connected SPDs, except for watt- hour meter socket enclosure, intended for installation between the secondary of the service transformer and the line side of the
service equpment overcurrent device, as well as the load side, including watt-hour meter socket enclosures and Molded Case SPDs intended to be installed without an extemal overcurrent
protective device. Type 1 SPDs for use in PV systems can be connected between the PV aarry and the main service disconnect.
DIN-RAIL SPDs are open Type 1.
Type 2- Permanently connected SPDs intended for installation on the load side of the service equipment overcurrent device, including SPDs located at the branch panel and Model Case SPDs.
Type 3 - Point of utilization SPDs, installed at a minimum conductor length of 10 meters (30 feet) from the electrical service panel to the point of utilization, for example cord connected, direct
plug-in receptacle type and SPDs installed at the utilization equipment being protected. See marking in 80.3. The distance (10 meters) is exclusive of conductors provided with or used to attach
SPDs.
Note: type 2 and 3 SPDs ware previously known as TVSSs,
Type 4 - Component Assemblies - Component assembly consisting of one or more Type 5 components together with a disconnect (integral or external) or a means of complying with the limited
current tests in 44.4.
Type 1, 2, 3 Component Assemblies - Consists of a Type 4 component assembly with internal or external short
circuitprotection.
Type 5 - Discrete component surge suppressors such as MOVS that may be mounted on a PVVB connected by its leads or provided within an enciosure with mounting means and wiring
terminations. V/Uπ----nominal systemvoltage.
A nominal value assigned to designate a system of a given voltage class in accordance w ANSI CB4,1. Typical voltages include 120 208, 240, 277, 347, 480,600O Vac.
V --- Voltage Protection RatingA ring selected from a list of preferred values as given inToble 63. 1 of UL 1449 4th Edition andassigned to each mode of protection. The value of V is determined as
the nearest highest value taken from Table 63.1 to the measured limiting voltage determined during the surge test using the compination wave generator at a setting of 6 kV, 3kA. It is also known
as let-through voltage.
Guide to Surge Protection Devices (SPDs): selection, application and theory
The following common terminologies, as recognised by BS EN 61643/IEC 62305 are used throughout SPD specifications in order to aid correct selection and aredefined as follows:
Nominal Voltage UO is the line voltage to Earth a.c. voltage of the mains system (derived from the nominal system voltage) for which the SPD is designed to is the voltage by which the power
systemis designated -e g. 230V.
Maximum Continuous Operating Voltage Uc is the maximum RMS voltage that may be continuously applied to the SPD's mode of protection e.g. phase to neutralmode. This is equivalent to the
SPD's rated peak voltage.
Temporary Overvoltage UT is the stated test value of momentary voltage increaseor overvoltage that the power SPD must withstand safely for a defined time.Temporary overvoltages,
typically lasting up to several seconds, usually
originate from switching operations or wiring faults (for example, sudden load rejection, single phase faults) as well as mains abnormalities such as ferro-resonance effects and harmonics.
Impulse Current Amp is defined by three parameters, a current peak with a chargeand a specific energy typically simulated with the 10/350us waveform to represent partial lightning
currents. This waveform is used with peak Imp current value stated. for the mains Type 1 SPD Class I test and typically for data telecom SPD TestCategory D.
Nominal Discharge Current /nspdis a defined nominal peak current value through the SPD, with an 8/20µs current waveshape. This is used for classification of mains SPDs(Class Il test) and also
for preconditioning of SPDs In Class I and Class IItests.
Maximum Discharge Current /maxis the peak current value through the SPD, with an B/20us waveshape. Imax is
declared for mains Type 2 SPDs in accordance to the test sequence of the Class Il operating duty test. In general, max is greater than /nspd.
SurgeThreat andRisktoEquipment’s
SurgeProtectionInstallation Application /Equipment
BeGenuineBuyGenuine InstallationbyProfessional
Director:- Mr. Manish Khatri
Head Marketing & Sales:- Mr. Mahesh Chandra Manav
India
Link Vue SystemPvt Ltd
Head Office: I-19, Karampura, New Moti Nagar, New Delhi, (India).
Mobile: +91-9811247237
Tel: +91 11 45597781
Email:manav.chandra@linkvuesystem.com Email:manish@linkvuesystem.com Website: www.linkvuesystem.com
Australia Sydney
Link Vue Systems Pty Ltd
2 BRUCE STREET, BLACKTOWN NSW 2148,
Sydney, Australia Mobile:+61-423064098,
Email:pawandeep@linkvuesystem.com Mobile: +91-9811247237,
Email:manav.chandra@linkvuesystem.com
Singapore
Mobile: +91-9811247237,
Email:manav.chandra@linkvuesystem.com
Bangladesh
Mobile: +91-9811247237,
Email:manav.chandra@linkvuesystem.com
50

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Link vue system offer safety for human and assets (alert 24 x7)

  • 1. Link Vue SystemOfferSafety for Human and Assets(ALERT 24X7)
  • 2.
  • 3. • Link Vue Systemwill offer Product and SupportEnd 2 End Solutions from Concept Design Engineering ,BOQ , Installation • Electrical Safety Earthing ,lightning ,SurgeProtection, Automation ,ProtocolConverter, Networking LAN ,Fiber, Wireless, CCTV, Fire Alarm, Access Controls,SecuritySystem,PIDS, Street LightLED ,IndustrialPlug and Socket , Freedom Connectorsfor Building Wiring, MC 4 Connectors ,Cable and Connectors for Electric Vehicle, • We invite Architect,Electrical Consultant , MEP Consultant,Electrical Vehicle Charging Infra,Solar PV Power ,High Energy Battery Storage,SubstationAutomation,RT-DAS Projects,Oil & Gas ,Tunnel Rail Road, Rail Transportation,AirportInfra, Building Infra,Telecom Infra ,SmartCity • EPC Companies, Electrical Project Contractors,ProjectEngineering Departments. • We are also Inviting for Distribution and Dealer Network of our products in India, Bangladesh,Australia and Singapore • We kindly advise your Engineering Design Team Handling Electrical , C&I, Automation,Signal & Telecom, and Electro Mechanical , EPC Project to review our Catalogue and allow us to meet . • We are also available for web-meeting, Presentationas required by customer
  • 4.
  • 5.
  • 6. CCTVand StreetLightLEDInstalationLargestProgrammein India (National CitizenSafetyAgenda/Programme by Central and States) • Installation Of Street Light under No Dark Place Citizen Safety Programmes • Installation of CCTV in all Public Places to Monitor and Safety of Citizen • Hotels,Hospitals, Market’s Shopping Centers ,Cinema Halls School,Universities , Animal Zoo Park ,Public Garden and Enterianment Parks,Car Parking , Railway Station ,Bus Station,Airports, Police Station ,Banks, Prision Jails,Goverment and Pvt Offices,Defense , Oil and Gas Refineries , Storage Terminals ,Pipe Line and Despach Terminal Station ,Various Industrial Manufacturing Plants and logistic Warehouses. • Mendatory for Public Transportaion Like Bus , Indian Railways,Metro Rail Coaches,Lifts . • Mendatory Installation of CCTV Cameras by EXCISE Department for Liquir Manufacturing ,Stocking and Selling in the Bottling Plants In order to monitor the bottling operations and dispatches of liquor, an integrated CCTV mechanism should be installed in the bottling plants. • Survey Through Drones using CCTV
  • 7.
  • 9. CCTV Installation Solution for Indoor and Out door
  • 10.
  • 11.
  • 12. BuildingAutomation andControlSystems BACS has become and will continue to be increasingly common in the built environment, converging many diversebuilding systems as computing technology developed and connectivity became moreavailable. Section 3 introduces the premise of Building Automation and ControlSystems (BACS), including the many terms used such as Building Automation Systems (BAS), Building Management Systems (BMS), Building Energy Management System(BEMS), IntelligentBuildings (IB) and increasingly, SmartBuildings and even Smart Cities. (Anautomatedsystem, where building services andprocesses, communicate witheachother toexchange digital, analogue or other forms of information, toa central control point)
  • 13.
  • 14. WithLink-vue Freedomto Monitor ,AccessandControl Remotely
  • 15.
  • 17. StoreYour Powerand Supplyas per LoadDemand
  • 20. India GuideProject for Electrical Charging Infrastructure
  • 21.
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  • 27.
  • 28. Selectionof RightSurgeProtectionand Installationis is your Hand(TECHNICAL AwareneSS) Electrical circuits may be connected to ground (earth) for several reasons. Earthing serves as: •Personal protection •Property/ operational protection •Potential grading earthing •Electro-magnetic pulses protection •Lightning protection In mains powered equipment, exposed metal parts are connected to ground so that if, due to any fault conditions, a “line” supply voltage connection occurs to any such conductive parts, the current flow will then be such that any protective equipment installed for either overload or “leakage” protection will operate and disconnect the line voltage. This is done to prevent harm resulting to the user from coming in contact with any such dangerous voltage in a situation where the user may, at the same time, also come in contact with an object at ground/earth potential. Connection to ground also limits the build-up of static electricity when handling flammable products or electrostatic-sensitive devices. Earthing should include: Low electrical resistance(Max1.00 Ohm) Abilityto conduct stable voltage,even at weather changes Long life expectancy, i.e. high resistance against corrosion
  • 31. MaintenanceFreeEarthingValueCalcullation& CostingPer PIT • BOQ Per Earthing PIT • 17.2mm Copper Bonded 3 Mtr ROD=1 • Earth Enhance Compound(Value 0.012 Ohm) Qty -30 KG • Earthing Clamp Connector for Connecting FLAT STRIP/Conductor - 01 • Earthing Strip /Conductor as per Equipment Load /Fault Current -10 Mtrs • High Quality Industrial Plastic PIT Cover
  • 32.
  • 34. LightningKillsand DestroyYourValuableAssets No lightningprotection system is 100% effective. A system designed in compliancewith the standarddoes not guarantee immunity from damage. Lightning protection is an issue of statisticalprobabilitiesand risk management. A system designed in compliancewith the standardshould statisticallyreduce the risk to below a pre-determined threshold. The risk management process provides a framework for this analysis.An effective lightning protection system needs to controla variety of risks. While the current of the lightningflash creates a number of electrical hazards, thermal and mechanicalhazards also need to be addressed. Risk to persons (and animals) include: • Direct flash • Step potential• Touch potential• Side flash • Secondary effects: – asphyxiation from smoke or injury due to fire – structural dangers such as fallingmasonry from point of strike – unsafe conditionssuch as water ingress from roof penetrationscausing electrical or other hazards, failureor malfunctionof processes, equipmentand safety systemsRisk to structures & internal equipment include: • Fire and/or explosiontriggered by heat of lightningflash, its attachmentpoint or electrical arcing of lightning current within structures • Fire and/or explosiontriggered by ohmic heating of conductors or arcing due to melted conductors • Punctures of structure roofing due to plasma heat at lightningpoint of strike • Failure of internalelectrical and electronic systems • Mechanicaldamage including dislodgedmaterials at point of strike
  • 35. LightningChargeThreat to Humanand Valuable Infrastructure Atmospheric discharges are a powerful natural phenomenon. Lightning can reach a power of several hundred gigawatts and can have a destructive or disturbing effect on electrical systems located miles away from the point where the lightning strikes.Damage caused by direct lightning strikes is generally serious, with large conomic consequences. As an example, the electrical switchboard can catch fire, causing devastation of industrial equipment and even the building. The best and only way to avoid this is the installation of an ELP.Atmospheric discharges can determine various phenomena in an electrical system, resulting both from direct and indirect lightning strikes. Direct lightning strikes on lightning rods/conductors (LPS, Lightning Protection System) or external conductive elements (antennas, metallic pipes/guttering etc.).Galvanic coupling When lightning strikes the lightning conductor or roof of an earthed building directly, the current flows to earth and through the power supply lines. The resistance of the PE system, when dispersing the lightning current, causes an increase in the PE conductor up to several thousand volts (ohmic effect). On the other hand, the potential of the active conductors remains at 230 V for the phases and zero for the neutral (remote potential of the transformer). The electrical equipment connected between the power supply network and earth can break their isolation and some of the lightning current flows through them, resulting in damage. Direct lightning strike on aerial power lines. Conductive coupling When lightning strikes a low voltage aerial power line, very strong currents flow through it, entering the buildings it supplies and giving rise to large overvoltage surges. The large amount of energy entering directly into the system causes faults and failures of electrical or electronic equipment connected to the power supply. Indirect lightning strikes.Electromagnetic coupling The electromagnetic field created by atmospheric discharges in the vicinity of aerial electricity lines or electrical systems generates an overvoltage surge in each loop of the circuit. The electricity lines incorporate loops since the neutral or PE is connected repeatedly to earth (every two or three poles). Even lightning striking the external protection system (LPS) creates a surge in the loops formed by the electrical system wiring.With a range of hundreds of yards or even miles, the electromagnetic field generated in cloud lightning can create sudden voltage increases.In these cases the damage, less spectacular than in the previous cases, can still have a permanent effect on the most sensitive electronic equipment such as computers, photocopiers and security and communications systems. The following curve summarizes the cumulative frequency of the lightning strikes with respect to their intensity, according to the results of this enormous measuring campaign: – 1.27% of the lightning strikes are greater than 100 kA – 0.33% of the lightning strikes are greater than 150 kA – 0.1% of the lightning strikes are greater than 200 kA – 0.03% of the lightning strikes are greater than 250 kA
  • 37.
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  • 40. UL SPD Types - Per 1449 4th Edition Type 1- One port. permanently connected SPDs, except for watt- hour meter socket enclosure, intended for installation between the secondary of the service transformer and the line side of the service equpment overcurrent device, as well as the load side, including watt-hour meter socket enclosures and Molded Case SPDs intended to be installed without an extemal overcurrent protective device. Type 1 SPDs for use in PV systems can be connected between the PV aarry and the main service disconnect. DIN-RAIL SPDs are open Type 1. Type 2- Permanently connected SPDs intended for installation on the load side of the service equipment overcurrent device, including SPDs located at the branch panel and Model Case SPDs. Type 3 - Point of utilization SPDs, installed at a minimum conductor length of 10 meters (30 feet) from the electrical service panel to the point of utilization, for example cord connected, direct plug-in receptacle type and SPDs installed at the utilization equipment being protected. See marking in 80.3. The distance (10 meters) is exclusive of conductors provided with or used to attach SPDs. Note: type 2 and 3 SPDs ware previously known as TVSSs, Type 4 - Component Assemblies - Component assembly consisting of one or more Type 5 components together with a disconnect (integral or external) or a means of complying with the limited current tests in 44.4. Type 1, 2, 3 Component Assemblies - Consists of a Type 4 component assembly with internal or external short circuitprotection. Type 5 - Discrete component surge suppressors such as MOVS that may be mounted on a PVVB connected by its leads or provided within an enciosure with mounting means and wiring terminations. V/Uπ----nominal systemvoltage. A nominal value assigned to designate a system of a given voltage class in accordance w ANSI CB4,1. Typical voltages include 120 208, 240, 277, 347, 480,600O Vac. V --- Voltage Protection RatingA ring selected from a list of preferred values as given inToble 63. 1 of UL 1449 4th Edition andassigned to each mode of protection. The value of V is determined as the nearest highest value taken from Table 63.1 to the measured limiting voltage determined during the surge test using the compination wave generator at a setting of 6 kV, 3kA. It is also known as let-through voltage. Guide to Surge Protection Devices (SPDs): selection, application and theory The following common terminologies, as recognised by BS EN 61643/IEC 62305 are used throughout SPD specifications in order to aid correct selection and aredefined as follows: Nominal Voltage UO is the line voltage to Earth a.c. voltage of the mains system (derived from the nominal system voltage) for which the SPD is designed to is the voltage by which the power systemis designated -e g. 230V. Maximum Continuous Operating Voltage Uc is the maximum RMS voltage that may be continuously applied to the SPD's mode of protection e.g. phase to neutralmode. This is equivalent to the SPD's rated peak voltage. Temporary Overvoltage UT is the stated test value of momentary voltage increaseor overvoltage that the power SPD must withstand safely for a defined time.Temporary overvoltages, typically lasting up to several seconds, usually originate from switching operations or wiring faults (for example, sudden load rejection, single phase faults) as well as mains abnormalities such as ferro-resonance effects and harmonics. Impulse Current Amp is defined by three parameters, a current peak with a chargeand a specific energy typically simulated with the 10/350us waveform to represent partial lightning currents. This waveform is used with peak Imp current value stated. for the mains Type 1 SPD Class I test and typically for data telecom SPD TestCategory D. Nominal Discharge Current /nspdis a defined nominal peak current value through the SPD, with an 8/20µs current waveshape. This is used for classification of mains SPDs(Class Il test) and also for preconditioning of SPDs In Class I and Class IItests. Maximum Discharge Current /maxis the peak current value through the SPD, with an B/20us waveshape. Imax is declared for mains Type 2 SPDs in accordance to the test sequence of the Class Il operating duty test. In general, max is greater than /nspd.
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  • 48. Director:- Mr. Manish Khatri Head Marketing & Sales:- Mr. Mahesh Chandra Manav India Link Vue SystemPvt Ltd Head Office: I-19, Karampura, New Moti Nagar, New Delhi, (India). Mobile: +91-9811247237 Tel: +91 11 45597781 Email:manav.chandra@linkvuesystem.com Email:manish@linkvuesystem.com Website: www.linkvuesystem.com Australia Sydney Link Vue Systems Pty Ltd 2 BRUCE STREET, BLACKTOWN NSW 2148, Sydney, Australia Mobile:+61-423064098, Email:pawandeep@linkvuesystem.com Mobile: +91-9811247237, Email:manav.chandra@linkvuesystem.com Singapore Mobile: +91-9811247237, Email:manav.chandra@linkvuesystem.com Bangladesh Mobile: +91-9811247237, Email:manav.chandra@linkvuesystem.com 50