Lightning protection guide by OBO

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Last revision 2020

Vydal: OBO BETTERMANN s. r. o. Autor: OBO BETTERMANN

Strana 175 z 288

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3.2 182 Surge protection systems for energy systems 3.3.1 180 Industrial applications 3.6 200 Protection circuit 3.2.4.2 236 Installation data cable protection devices 3.1.4 189 Selection criteria 3.3.2.2.3.3.2 185 Type classes surge protection devices 3.1 236 Equipotential bonding data cables 3.3 224 Building and area shielding 3.1.1 218 Topologies 3.3.3.2.4.1.3.2.1.2 183 Electrostatic discharge (ESD) 3.2 180 Residential and office buildings 3.4.1.3.2.2.5 195 Installation requirements 3.6 233 Symmetrical and asymmetrical data transfer 3.3.4 244 High-frequency technology 3.4.1.2 237 Measurement and control technology 3.2.176 The internal lightning protection system 3.3.1 184 Lightning protection zone concept 3.2.2.3.2.1.1.4.1 200 Installation (RCD) 3.3.2.3 181 Potentially explosive areas 3.1.3 187 Protection devices various power supply systems 3.2.2 219 Interference information technology systems 3.1.4 225 Cable shielding 3.2.1.2.3.7 233 Device protection classes 3.2.2.3.3 216 Surge protection systems for data and information technology 3.2.2 183 Types surge voltage 3.1.3.6 214 LED interior lighting 3.3 183 Planning methods 3.2.4.2.2.2.5 211 LED street lighting systems 3.2 201 Wind power plants 3.3.3.2.3.1 183 Switching operations (SEMP) 3.2 183 Temporary and permanent surge voltages 3.2.3 202 Residential and industrial applications 3.2.4 202 PV systems 3.1 177 Equipotential bonding systems 3.3 240 Telecommunications 3.1 182 Lightning discharges 3.2.4 200 Versions 3.2.2.1 216 Planning methods 3.2 179 Versions 3.2.2.5 250 Data technology Chapter The internal lightning protection system TBS Blitzschutz-Leitfaden 2018 / en / 2020/01/10 14:42:40 14:42:40 (LLExport_02613) / 2020/01/10 14:42:54 14:42:54 175 Chapter The internal lightning protection system .1 183 Transient surge voltages 3.1 177 Planning methods 3.1.3.1.5 229 Transmission characteristics 3