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IEEE-1588 Slave Clocks

Meinberg Slave Clock devices simplifies a migration towards PTP/IEEE 1588-2008 by providing a wide range of legacy time synchronization outputs.

  • Product Summary
  • Product Details
    • Standard: IEEE 1588-2008 (PTPv2) compliant Ordinary Clock (slave)
    • Transport: UDP/IPv4 and IEEE 802.3 Layer 2, End-to-End and Peer-to-Peer delay mechanisms
    • Accuracy: approx. ±100 ns on pulse outputs relative to the Grandmaster after initial synchronization
    • Frequency output: 10 MHz, BNC connector, TTL level, 50 Ohm impedance
    • Pulse output: PPS (Pulse Per Second), BNC connector, TTL level, 200 ms pulse width
    • Time code outputs: IRIG B002, B122, B003, B123, IEEE 1344, AFNOR — AM sine wave or DCLS (pulse-width modulated)
    • Optional telecom output: E1 mode, 2.048 kHz / 2.048 Mbps, 75 Ohm unbalanced or 120 Ohm balanced
    • Network interface: 10/100 Mbit Ethernet (RJ45)
    • Configuration interface: RS-232 serial terminal
    • Form factor: 1U/63HP rack chassis (335 x 43 x 250 mm)
    • CPU/OS: ARM-compatible 500 MHz CPU, 256 MB RAM, Linux (nano kernel)
    • Oscillator: high-precision OCXO HQ as standard
  • Acts as a bridge for legacy equipment during migration to PTP networks Offers multiple output formats: IRIG, PPS, 10 MHz and optional E1 Fully compliant IEEE 1588-2008 (PTPv2) ordinary clock Easy management via web interface, SSH/Telnet menu, or serial terminal Compact 1U rack chassis with low power consumption High-quality OCXO oscillator for stable output signals

Product Summary

  • Standard: IEEE 1588-2008 (PTPv2) compliant Ordinary Clock (slave)
  • Transport: UDP/IPv4 and IEEE 802.3 Layer 2, End-to-End and Peer-to-Peer delay mechanisms
  • Accuracy: approx. ±100 ns on pulse outputs relative to the Grandmaster after initial synchronization
  • Frequency output: 10 MHz, BNC connector, TTL level, 50 Ohm impedance
  • Pulse output: PPS (Pulse Per Second), BNC connector, TTL level, 200 ms pulse width
  • Time code outputs: IRIG B002, B122, B003, B123, IEEE 1344, AFNOR — AM sine wave or DCLS (pulse-width modulated)
  • Optional telecom output: E1 mode, 2.048 kHz / 2.048 Mbps, 75 Ohm unbalanced or 120 Ohm balanced
  • Network interface: 10/100 Mbit Ethernet (RJ45)
  • Configuration interface: RS-232 serial terminal
  • Form factor: 1U/63HP rack chassis (335 x 43 x 250 mm)
  • CPU/OS: ARM-compatible 500 MHz CPU, 256 MB RAM, Linux (nano kernel)
  • Oscillator: high-precision OCXO HQ as standard

Product Details

Acts as a bridge for legacy equipment during migration to PTP networks Offers multiple output formats: IRIG, PPS, 10 MHz and optional E1 Fully compliant IEEE 1588-2008 (PTPv2) ordinary clock Easy management via web interface, SSH/Telnet menu, or serial terminal Compact 1U rack chassis with low power consumption High-quality OCXO oscillator for stable output signals

Brief overview of IEEE-1588 Slave Clocks

Meinberg Slave Clock devices simplifies a migration towards PTP/IEEE 1588-2008 by providing a wide range of legacy time synchronization outputs.

Teknoa helps organizations with product selection, technical positioning, integration and after-sales support for Meinberg solutions.

Time, frequency, NTP/PTP and synchronization

Meinberg solution context

Meinberg provides reliable time sources for critical infrastructure through LANTIME NTP servers, IMS modular systems, microSync products, PTP grandmaster clocks, GNSS and IRIG synchronization solutions.

Positioned for accurate time distribution, log integrity and compliance in energy, telecom, finance, defense, broadcasting, data center and industrial automation projects.

Official manufacturer source Meinberg Teknoa guide
Product family / related solutions
  • LANTIME time servers
  • IMS modular synchronization platform
  • microSync compact grandmaster systems
  • GNSS antenna and receiver options
Use cases
  • Critical log and event timestamping
  • Industrial synchronization with PTP grandmaster clocks
  • Reliable time distribution in finance and telecom networks
Selection criteria
  • NTP/PTP comparison
  • GNSS antenna and holdover scenarios
  • IEEE 1588 profile selection
  • LANTIME, IMS and microSync differences