• S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch

S5755-H24UTM4X4Y2C Switch

24x10GE Multi-GE/4x25GE SFP28/4x100GE QSFP28
Model: S5755-H24UTM4X4Y2C

  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • S5755-H24UTM4X4Y2C Switch
  • Description

  • Application Scenario

CloudEngine S5755-H series High-Quality Multi-GE Switches are brand-new full-1/2.5/5/10GE switches developed by Huawei for the Wi-Fi 6/Wi-Fi 7. Building on Huawei's unified Platform, the CloudEngine S5755-H implements the data plane through ASICs and boasts various IDN features. For example, the VXLAN functionality implements network virtualization. With these merits, the CloudEngine S5755-H can function as core switches for small-sized campus networks and branches of medium- and large-sized campus networks, and also work as access switches for Metropolitan Area Network. CloudEngine S5755-H can provide a maximum of 48 10GE Multi-GE ports, which is a good choice for WLAN APs to connect to a switch in the high-quality campus networks.

Specification of S5755-H24UTM4X4Y2C
Ports 12 × 10/100/1000M Base-T Ethernet ports, 12 ×100M/1/2.5/5/10G Base-T  Ethernet ports, 4 x 1/10GE SFP+, 4 x 1/10/25GE SFP28, 2 x 40/100GE QSFP28 ports
Dimensions (H x W x D, mm)  43.6 x 442 x 335
Chassis height  1 U 
Chassis weight (including packaging) 7.53kg
ETH port  Supported 
Console port (RJ45) Supported 
USB port USB 2.0
CPU Frequency 2 GHz
CPU Cores 4
Memory (RAM) 4 GB 
Flash memory 2 GB
Power supply type 
  • 600 W PoE AC (pluggable)
  • 1000 W PoE AC (pluggable)
  • 1000 W PoE DC (pluggable)
Rated voltage range 
  • AC input : 100 V AC to 130V AC, 200 V AC to 240 V AC, 50/60 Hz
  • High-Voltage DC input: 240V DC
  • DC input : -48 VDC to -60 V DC
Maximum voltage range
  • AC input: 90 V AC to 290V AC, 45 Hz to 65 Hz
  • High-Voltage DC input: 190V DC to 290V DC
  • DC input: -38.4V DC to -72V DC
Maximum power consumption
  • 100% traffic under the ATIS standard, dual power supplies, and without PoE:
  • 135 W (all ports used)
  • 124 W (2 x 100GE ports not used)
  • Full PoE load, two 1000 W power modules: 1823 W (PoE:1645 W)
Typical power consumption 30% traffic under the ATISstandard, dual power supplies:
  • 128 W (all ports used)
  • 117 W (2 x 100GE ports not used)
Static power consumption 74 W 
Heat dissipation mode  Air cooling for heat dissipation, intelligent fan speed adjustment
Number of fan modules
Airflow  Air intake from left, front, and right and air exhaust from rear
Maximum heat dissipation of the device
  • 100% traffic under the ATIS standard, dual power supplies, and without PoE:
  • 460.63 (all ports used)
  • 423.10 (2 x 100GE ports not used)
  • Full PoE load, two 1000W power modules: 6220.26
Long-term operating temperature
  • 0-1800 m: -5°C to 45°C
  • 1800-5000 m: The operating temperature decreases 1°C every time the altitude increases 220 m
Short-term operating temperature
  • 0-1800 m: -5°C to 50°C
  • 1800-5000 m: The operating temperature decreases 1°C every time the altitude increases 220 m
Storage temperature -40°C to +70°C 
Relative humidity 5%–95% (non-condensing)
Operating altitude 5000 m
Noise at normal temperature(acoustic power) 30% PoE load: 51.70 dBA
Noise at normal temperature(acoustic pressure) 30% PoE load: 39.7 dBA 
Surge protection specification(power port)
  • AC power port: ±6 kV in differential mode, ±6 kV in common mode
  • DC power port: ±2 kV in differential mode, ±4 kV in common mode
MTBF (years)  59.77 
MTTR(hours) 
Availability > 0.99999 
Certification
  • EMC certification
  • Safety certification
  • Manufacturing certification

What is a Switch?
A switch is a device that enables communication between two or more IT devices, such as computers, servers, printers, and more. It helps devices within a network share resources, including printers, file storage, internet access, and application processing. In simple terms, a switch acts as a "traffic hub" in a network.

Key Characteristics:

  • Intelligent Forwarding: Unlike a basic hub, a switch intelligently directs data packets only to the intended recipient device based on MAC addresses.

  • Efficient Communication: This targeted data transmission reduces unnecessary traffic, enhances network performance, and improves security within the local network.

  • Scalability: Switches come in various sizes, from small desktop models for home/office use to large modular switches for enterprise data centers.

Common Applications:

  • Connecting devices within a Local Area Network (LAN)

  • Building enterprise networks, data centers, or home networks

  • Supporting resource sharing and collaborative workflows

In summary, a switch is a fundamental networking device that efficiently manages and directs data flow, ensuring smooth and reliable communication between connected devices.



Core Functions of a Switch
The primary functions of a switch include:

  1. VLAN Segmentation – Enhances network security by isolating traffic into separate virtual networks.

  2. Targeted Forwarding – Improves network performance by accurately identifying and forwarding data only to the intended destination device.

  3. Traffic Control – Optimizes network reliability and stability through mechanisms like Quality of Service (QoS) and loop prevention (e.g., Spanning Tree Protocol).

  4. Link Aggregation – Increases bandwidth and provides redundancy by combining multiple physical links into a single logical channel.

    Working Principle of a Switch
    A switch operates at either the Data Link Layer (Layer 2) or the Network Layer (Layer 3) of the OSI model:

    • Layer 2 Switch: Forwards data based on MAC addresses.

    • Layer 3 Switch: Forwards data based on IP addresses.

    A switch continuously learns the MAC addresses of connected devices and records them in its MAC address table.
    The core processes include:

    1. Learning: Records the source MAC address and its corresponding port.

    2. Forwarding: Precisely forwards frames to the destination port based on the target MAC address.

    3. Flooding: If the target MAC address is not found in the table, the switch broadcasts the frame to all ports (except the source port).

    4. Update: Periodically refreshes the MAC address table to ensure accuracy and remove stale entries.