Showing posts with label 5G network. Show all posts
Showing posts with label 5G network. Show all posts

6/08/2020

10,000 5G base stations will be added every week? What are the features of 5G?

One of the hot spots in China in 2020 is to accelerate the deployment of 5G networks and expand 5G applications. According to public data from the government, more than 10,000 5G base stations will be added in China every week. This shows that 2020 will be the explosive first year of China’s 5G base station construction, and 5G will also enter a new era of development.
What is 1G~5G network?
1G network is the first generation of mobile communication technology that first appeared in 1983. It uses analog voice signals to send and receive, and the call quality is not good. Each region has its own common standards, such as TACS in the United Kingdom, AMPS in the United States, RTMI in Italy, etc., leading to widespread failure.
2G network is the second generation of mobile communication technology using digital signals. It has SMS and fax functions on the basis of 1G, and the call quality is also better than 1G. During this period, there are already mobile phones, but only a simple call function.
3G third-generation communication technology can process images, music and videos, provide Web browsing, teleconferencing and e-commerce information services. It also has the global standard IMT-2000. It also defines China’s W-CDMA, CDMA2000 and TD-SCDMA communication standards.
The 4G fourth-generation communication technology integrates 3G and WLAN, and can transmit high-quality video images.
5G refers to the “fifth generation”, that is, the fifth generation mobile communication system or the fifth generation mobile network technology, which is the expansion and upgrade of 4G technology.
Some people have summarized these generations of mobile communication technologies: 2G opened the text era, 3G opened the image era, 4G opened the video era, and 5G is about to start the era of Internet of Everything. 5G has three main characteristics: “High rate, low latency and large capacity”.
1G, 2G, 3G, 4G, 5G
High speed
High speed is the most intuitive user experience. The 5G network speed has been greatly improved, reaching a maximum of 10Gbit/s, and the theoretical transmission speed is one hundred times faster than the previous 4G LTE cellular network.
Low latency
The simplest understanding of low latency is that when you enter a URL in a web browser, you must wait for two time delays to complete the process of opening a web page. Confirmation time requested by the user; and the time required to send text, images, and video to the user. This is the network delay.
5G technology can effectively reduce the delay and increase the data transmission rate. The response time can be reduced from the average 50ms (0.05s) of 4G to 1-2 milliseconds (0.001-0.002s). Similarly, the data transmission speed can be increased from 0.02-0.03Gbps to 0.1-5.0Gbps, which means that we can load the entire webpage in 1 second.
Low latency will provide reliable and extremely low latency for applications with high real-time performance, such as games, video, live broadcasting, Internet of Vehicles and industrial control, thus creating countless possibilities.
High capacity
Existing 4G base stations have only a dozen antennas, but 5G base stations can support hundreds of antennas. These antennas can form a large-scale antenna array through Massive MIMO technology, which means that the base station can simultaneously transmit and receive signals from more users. As a result, the capacity of the mobile network has increased tens of times or more. The large-capacity features of 5G will play a greater role in the Internet of Things, smart homes, smart cities, and real-time logistics tracking.
Micro base station
In the 2G era, the signal of one large signal tower can covers a small town. In the 3G/4G era, a large number of small base stations need to be deployed. In densely populated areas, more than ten small base stations need to be deployed every 100 meters. In the 5G era, the use of millimeter waves has increased bandwidth. The number of users is 100 times that of 4G and the network speed is 100 times that of 4G. This means that only a few large base stations need to be established, but small base stations are widely distributed. This is the micro base station of 5G network.
4G VS 5G
4G uses lower frequency bands, and one large base station can covers 2 to 40 kilometers. As the communication technology is deployed to the high frequency band of 5G, the diffraction ability of electromagnetic waves becomes weak, and the transmission distance and coverage are relatively small. Therefore, 5G must use multiple micro base stations to cover the same base station area.
HYC Co., Ltd. can provide customers with a full range of passive WDM modules for 5G fronthaul transmission. As a leading fiber optic cable manufacturer, HYC has 20 years of OEM ODM experience for passive optical devices. It has a strong R&D team and strong production capacity, and can provide customers with one-stop customized optical communication passive basic equipment design, research and development and manufacturing services. Its production line includes optical fiber connectors, optical fiber jumpers, PLC splitters, WDM wavelength division multiplexers, MEMS optical switches, etc.

6/03/2020

What is 5G Fronthaul,Middlehaul,Backhaul?

5G network has three parts, Access Network, Bearer Network, and Core Network. The access network is also Radio Access Network(RAN), which is mainly composed of base stations.


So what does the base station include? The base station usually includes BBU (mainly responsible for signal modulation), RRU (mainly responsible for radio frequency processing), feeder (connecting RRU and antenna) and antenna (mainly responsible for the conversion between the guided wave on the cable and space wave in the air.

Each base station in 4G network has a BBU, which is directly connected to the core network. In 5G networks, the access network is no longer composed of BBU, RRU and antenna. Iit is reconstructed into the following three functional entities: CU (centralized unit), DU (distributed unit) and AAU (active antenna unit). The original 4G RRU and antenna are combined into AAU, and BBU is divided into CU and DU. DU sank to AAU. One CU can be connected to multiple DUs.

The 4G network has fronthaul and backhaul. But in the 5G network, it is divided into three parts. The AAU connected to the DU is called 5G Fronthaul. A part of the DU connected to the CU is Middlehaul, and the backhaul is the communication carrier between the CU and the core network.
HYC Co., Ltd has been dedicated to the manufacture of passive optical devices for 20 years, and has a strong R&D team and strong production capacity. HYC can provide one-stop OEM ODM services for design, R&D and manufacturing. The production line has optical fiber connectors, adapters, plc splitters, wdm, mems optical switches, etc.
www.hyc-system.com

7/19/2019

HYC Supply WDM Series for 5G Networks

With the rapid development of 5G networks, the demand in long-distance and large capacity bandwidth increased rapidly. It is an important requirement for the bearer network in the 5G era to increase network capacity through bandwidth increasing and to have the ability to smoothly expand bandwidth in the future. HYC has launched a series of WDM modules based on 5G network applications.
The LAN WDM LGX module of HYC is a wavelength division multiplexing technology based on TFF (thin film filter), which is suitable for central office terminal (COT) and remote terminal (RT). This LAN WDM uses zero-dispersion wavelength to make the optical signal more flat and stable in the transmission process and avoid signal crosstalk; 800GHz channel space enables customers to have more channel choices and increase the transmission capacity of zero-dispersion wavelength. It has low insertion loss, high isolation, and wide operating temperature(-40 ~ +85 ℃).
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DWDM has 100 GHz, 200 GHz channel spacing, which is suitable for long-distance, large-capacity trunk network, or ultra-large capacity MAN core nodes. This 5G DWDM module is designed for central office terminal (COT) and remote terminal (RT), with LGX or ABS packages. The common configuration is 4, 8, 12 and 16 channels. Custom extension (EXT) port and OTDR port for 4G networks are also available upon request.
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5G is moving toward maturity and large-scale deployment. The application of passive WDM technology can flexibly meet the requirements of 5G base station construction, greatly save the optical fiber resources, and increase broadband by several times or even dozens of times to meet the ultimate needs of users.

7/12/2019

DWDM for Fiber Optic Capacity Expansion

Dense wavelength-division multiplexing (DWDM) is the most popular WDM technology with telecommunications and cable companies because of its ability to handle so much data. It helps to expand the capacity of an existing fiber optic backbones and get it ready for 5G deployments.
How do DWDM works? It combines and transmits multiple signals of different wavelengths simultaneously on the same fiber. For example, if an optical fiber has a capacity of 2.5 Gb/s, DWDM can multiplex 8 OC-48 signals into a single optical fiber, which can expand the optical fiber capacity from 2.5 Gb/s to 20 Gb/s. The common configuration is 4, 8, 16, 32 and 40 channels. Currently, because of DWDM, single fibers have been able to transmit data at speeds up to 400Gb/s.
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Wavelength spacing
The most difference between CWDM and DWDM is the spacing of wavelength which causes the number of wavelength or channels that can be used. That’s the difference between “Coast” and “Dense”. CWDM channels each consume 20 nm of space. Instead of the 20 nm spacing in CWDM, DWDM uses either 50, 100 or 200 GHz spacing which allows many more wavelengths to be packed onto the same fiber. The common channels of CWDM are 8 to 18, while DWDM can even up to 40 channels.
Long distance
Compared with CWDM, DWDM is designed for long-haul transmission with its tighter wavelength spacing. With the help of EDFAs(Erbium Doped-Fiber Amplifiers) to boost the strength of the signal, DWDM systems can work over thousands of kilometers.
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With 5G on the way, service providers need to get the most bandwidth out of their current fiber networks.  DWDMallows carriers to get the most out of their valuable fiber assets.  Expansion is easy to achieve without the need to change or replace the existing network.