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Glossary

DHCP / Dynamic Host Configuration Protocol

What is DHCP and what is it used for?

Dynamic Host Configuration Protocol (DHCP) is a network management protocol that automates the assignment of IP addresses and other essential network parameters to devices on a network. When a device connects to a network, it sends a DHCP discovery message, seeking available DHCP servers. The server then responds by offering an available IP address along with settings such as the subnet mask, default gateway, and DNS servers. Once the device accepts this offer, it configures itself with the provided information, enabling network communication. 

DHCP is used to simplify network administration by eliminating the need for manual IP configuration. This is particularly beneficial in large, dynamic environments where devices frequently join and leave the network. It helps reduce configuration errors, ensures efficient IP address management, and enhances network reliability. Furthermore, DHCP supports various scenarios, including dynamic IP allocation for mobile devices and fixed IP assignments for specific clients through reservations. Its flexibility and efficiency make DHCP indispensable in both home networks and industrial environments. 

DHCP in Context of TCP/IP

DHCP is an integral part of the TCP/IP protocol stack, playing a crucial role in managing IP address allocation within a network. The TCP/IP stack, which stands for Transmission Control Protocol/Internet Protocol, is the fundamental suite of protocols that enable communication over the internet and most private networks. 

DHCP operates primarily within the IP layer of this stack. When a device (client) seeks to join a network, it begins with a broadcast message, known as a DHCP discovery message, targeting available DHCP servers within the network. This request takes place within the application layer protocols and is transported using User Datagram Protocol (UDP) at the transport layer, highlighting the layers' collaboration within the TCP/IP stack. 

Upon receiving the discovery message, a DHCP server assigns an IP address from its pool and responds with a DHCP offer that includes the IP address as well as essential network parameters such as the subnet mask, default gateway, and DNS servers. The client then accepts this offer and configures itself accordingly, ensuring seamless connectivity. 

By automating the IP address configuration process, DHCP eliminates manual setup, reduces errors, and enhances the efficiency of network management, especially in dynamic environments where devices frequently connect and disconnect. Its role within the TCP/IP protocol stack streamlines network operations and ensures reliable IP address management and effective communication across devices. 

 

DHCP in Industrial Communication

DHCP has not yet been used in traditional fieldbus networks such as PROFIBUS or Modbus RTU, as these work with predefined communication standards and protocols that are not based on the IP protocol suite and therefore do not support the dynamic assignment of IP addresses. 

However, over the course of the 1990s and into the 2000s, there were increasing efforts to make standard Ethernet technology usable for industrial purposes and to benefit from a wide range of advantages. These include improved performance, lower costs and the integration of diverse systems along the entire automation pyramid. However, as standard Ethernet could not meet the high requirements of industrial applications, Industrial Ethernet and Real-Time Ethernet protocols such as Open Modbus/TCP and EtherNet/IP were developed, which are based on the Internet Protocol and therefore also use DHCP. These protocols often rely on DHCP to automate the assignment of IP addresses to networked devices such as controllers, sensors and actuators. This automation enables fast and error-free setup of these devices and ensures smooth and efficient network operation. 

By employing DHCP, industrial Ethernet protocols streamline device integration, promote flexibility, and ensure scalability within the network. This is particularly useful in dynamic industrial environments where devices frequently join and leave the network. Thus, DHCP enhances network reliability, reduces administrative overhead, and supports seamless communication and interoperability among a wide range of industrial devices. 

Advantages for Industrial Communication

DHCP offers several technical advantages in industrial communication networks, as follow: 

  • Dynamic IP Address Assignment

    Dynamic allocation not only optimizes IP address utilization but also significantly reduces the risk of address conflicts, which is particularly beneficial in large-scale industrial networks with a multitude of devices. 

  • Centralized Management

    It allows network administrators to configure and monitor DHCP settings from a central location, streamlining network administration tasks and ensuring consistency across the network. 

  • Flexibility and Scalability

    New devices can easily join the network and obtain IP addresses dynamically, while devices that are no longer needed release their IP addresses back to the DHCP pool for reuse. 

  • Reduced Configuration Errors

    By automating the configuration process, DHCP minimizes human intervention and the likelihood of misconfigured devices, thereby enhancing network reliability and stability. 

  • Integration with Industrial Protocols

    DHCP's compatibility with industrial communication protocols such as Ethernet/IP and Modbus/TCP simplifies network configuration for industrial devices. 

  • Fault Tolerance and High Availability

    DHCP supports these requirements through redundant server configurations. These configurations provide failover mechanisms and redundant hardware setups, ensuring uninterrupted DHCP services and minimizing network downtime in the event of server failures. 

  • Enhanced Security

    DHCP snooping, port security, and DHCP authentication. These features help prevent unauthorized access to network resources and mitigate DHCP-related security threats, safeguarding industrial communication networks against potential vulnerabilities. 

Hilscher's Industrial Ethernet Portfolio

As a market leader Hilscher offers a wide range of products for industrial communication in RTE networks. The netX technology and the multiprotocol-capable SoCs (System on Chips) based on it are at the forefront. These can be integrated into industrial components - such as controllers, sensors or actuators - as highly integrated communication interfaces. Thanks to the associated firmware, which can be loaded onto the chip as required for the required protocol stack, Hilscher supports component manufacturers and automation specialists in the development of flexible solutions for use in a wide variety of RTE networks – for example for PROFINET, EtherCAT, EtherNet/IP, CC-Link IE or Ethernet POWERLINK

Based on the netX communication controllers, Hilscher developed different embedded modules and the PC and fieldbus cards of the cifX family (which are available in all common form factors - from PCI and PCIe to the smallest multiprotocol-capable PC cards on the automation market in M.2 format). These communication interfaces already include the necessary chip peripherals and are therefore faster to integrate. 

In addition, gateways, switches and network and communication diagnostic devices support the smooth operation of fieldbus networks. 

Next to RTE systems, Hilscher's components for industrial communication networks also support the most common fieldbus protocols - such as PROFIBUS, Modbus, CC-Link or DeviceNet

The portfolio is rounded off by the netFIELD ecosystem for Managed Industrial IoT. From the edge gateway to the cloud platform for centralized container management, netFIELD offers everything you need to develop modern applications in line with Industry 4.0

 

Our products

AIFX-V2-RE

用于基于 PC 的自动化通讯板卡

CIFX 104-RE\F

用于基于 PC 的自动化通讯板卡

CIFX M223090AE-RE\F

用于基于 PC 的自动化通讯板卡

CIFX 90E-RE\MR\F

用于基于 PC 的自动化通讯板卡

NIC 50-RE

用于无自带主处理器的简单从站设备的通讯

COMX 51CN-RE

用于自动化的灵活通讯模块

EU5C-SWD-ETHERCAT

SmartWire-DT 连接到实时以太网 EtherCAT 系统

CIFX 104-RE-R

用于基于 PC 的自动化通讯板卡

NRPLFW-ECS

用于 NRP 52-RE 和 NRP 51-RE 的完整版,含 6 小时支持

NJEB-E

适用于任何带有 PCI Express 的 netJACK

NT 100-RE-DP

用于高要求转换的高端网关

NJ 100DN-RE

可随时安装在输送链中

AIFX-RE

用于基于 PC 的自动化通讯板卡

NRP 52-RE

即可焊锡的 netX 设计,邮票大小

NT 100-RE-DN

用于高要求转换的高端网关

CIFX 50-RE

用于基于 PC 的自动化通讯板卡

NRP H90

经过全面测试的超紧凑 NETX 90设计

NRPLFW-PLS

用于 NRP 52-RE 和 NRP 51-RE 的完整版,含 6 小时支持

NHST-T100-EN/EIM

用于 DIN 导轨的 LAN 控制 EtherNet/IP 扫描器

CIFX 50E-CCIES

用于基于 PC 的自动化通讯板卡

NIC 50-RE/NHS

用于无自带主处理器的简单从站设备的通讯

NT 100-RE-CC

用于高要求转换的高端网关

AIFX-RE\M12

用于基于 PC 的自动化通讯板卡

NIC 52-RE

用于无自带主处理器的简单从站设备的通讯

CIFX 80-RE

用于基于 PC 的自动化通讯板卡

NT 50-DP-EN

经济的入门级网关,用于简单转换

CIFX 104-RE-R\F

用于基于 PC 的自动化通讯板卡

NRPLFW-EIS-IOT

用于 NRP 51-RE 的完整版,含 6 小时支持

NICEB-REFO

带光纤电缆的评估平台netIC

NT 100-RE-EN

用于高要求转换的高端网关

CIFX 104C-RE-R\F

用于基于 PC 的自动化通讯板卡

CIFX 90E-RE\MR\ET\F

用于基于 PC 的自动化通讯板卡

CIFX 70E-RE

用于基于 PC 的自动化通讯板卡

NXHX 500-ETM

NT 50-CO-EN

经济的入门级网关,用于简单转换

CIFX 104C-RE

用于基于 PC 的自动化通讯板卡

CIFX 90E-RE\ET\F

用于基于 PC 的自动化通讯板卡

NIC 50-REFO/PNS

用于带有光纤电缆连接的简单从站设备的通讯

COMX 51CA-RE

用于自动化的灵活通讯模块

NT 151-RE-RE

两个实时以太网网络之间的数据传输

NT 100-RE-RS

用于高要求转换的高端网关

NJEB-D

适用于具有双端口内存或SPI的每个netJACK

NRPEB 51-RE

配备 NRP 51-RE

NXHX 51-ETM

NICEB-RE

单个评估平台,适用于所有实时以太网协议

COMX 51CA-RE\R/ECS

用于半导体制造设备市场的模块

LIC/SCP

NetANALYZER 的完美扩展

NT 50-DN-EN

经济的入门级网关,用于简单转换

CIFX HPCIE90-RE\F

用于基于 PC 的自动化通讯板卡

NRP H90(预加载)

经过全面测试和加载的超紧凑 netX 90 设计

COMX 100CA-RE

用于自动化的灵活通讯模块

EU5C-SWD-POWERLINK

SmartWire-DT 连接到实时以太网 POWERLINK 系统

NMR-TFE-RE

永久诊断接入点

CIFX 70E-CCIES

用于基于 PC 的自动化通讯板卡

NXHX 90-JTAG

NIC 52-REFO

用于带有光纤电缆连接的简单从站设备的通讯

NANL-B500G-RE

以太网分析变得更便捷

NXHX 52-JTAG

NRP 51-RE

即可焊锡的 netX 设计,邮票大小

NRP H90\F8D8

经过全面测试的超紧凑 netX 90设计

NFD-3090-ECS-IOLM\W

netFIELD IO-Link Wireless Master – 通过灵活连接实现简单解决方案

NFD-3090-EIS-IOLM\W

netFIELD IO-Link Wireless Master – 通过灵活连接实现简单解决方案

CIFX 104C-RE\F

用于基于 PC 的自动化通讯板卡

CIFX 50E-RE\ET

用于基于 PC 的自动化通讯板卡

CIFX 104-RE

用于基于 PC 的自动化通讯板卡

CIFX 90E-RE\F

用于基于 PC 的自动化通讯板卡

NRP H90\F8D8(预加载)

经过全面测试和预加载的超紧凑 netX 90 设计

NT 100-RE-CO

用于高要求转换的高端网关

CIFX 104C-RE-R

用于基于 PC 的自动化通讯板卡

CIFX M3042100BM-RE\F

用于基于 PC 的自动化通讯板卡

CIFX 70E-RE\MR

用于基于 PC 的自动化通讯板卡

NRPLFW-EIS

用于 NRP 52-RE 和 NRP 51-RE 的完整版,含 6 小时支持

NT 151-CCIES-RE/PNS

CC-Link IE Field与PROFINET之间的数据耦合

CIFX 90E-RE\NHS\F

用于基于 PC 的自动化通讯板卡

NXHX 90-MC

NFD-3090-PNS-IOLM\W

netFIELD IO-Link Wireless Master – 通过灵活连接实现简单解决方案

NT 50-RS-EN

经济的入门级网关,用于简单转换

CIFX 50E-RE

用于基于 PC 的自动化通讯板卡

NRPLFW-PNS

用于 NRP 52-RE 和 NRP 51-RE 的完整版,含 6 小时支持

COMX 100CN-RE

用于自动化的灵活通讯模块

EU5C-SWD-PROFINET

SmartWire-DT 连接到实时以太网 PROFINET 系统

NRPLFW-PNS-IOT

用于 NRP 51-RE 的完整版,含 6 小时支持

COMXEB

适用于所有 comX 类型的开发平台

NHST-T100-EN/PNM

用于 DIN 导轨的 LAN 控制 PROFINET IO 控制器

NT 50-CC-EN

经济的入门级网关,用于简单转换

NJ 100EN-RE

可随时安装在输送链中

NXHX 50-ETM

NL 51N-DPL

升级 PROFIBUS 从站到 PROFINET

NHST-T100-EN/ECM

用于 DIN 导轨的 LAN 控制 EtherCAT 主站

CIFX 90-RE\F

用于基于 PC 的自动化通讯板卡

NHST-T100-EN

用于DIN导轨的局域网控制实时以太网主站

NJ 51D-RE/PNS

可随时安装在输送链中

NS 90-RE-SPE

单对以太网转换为工业以太网

CIFX M224290BM-RE\F

用于基于 PC 的自动化通讯板卡

NFA-PND-OTP

通过智能 IO 设备使 PROFINET 系统支持工业物联网

NXEB 90-SPE

NANL-B500G-RE BUNDLE

用于以太网分析的完整软件包

NSHIELD 90-RE

PROFINET IO-Device RT pre-certification CC-B

Exclusively for netX-based developments

PROFINET IO-Device RT & IRT pre-certification CC-C

Exclusively for netX-based developments

EtherNet/IP Adapter pre-certification

Exclusively for netX-based developments

EtherCAT Slave pre-certification

Exclusively for netX-based developments

COMX 90CA-RE

Flexible communication module for automation

CIFX PCIE90-RE

CRA-compliant communication for PC-based automation

CIFX LPCIE90-RE

CRA-compliant communication for PC-based automation

NRP H90IC\F8D8

netX 90 chip carrier

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