< 新闻 Release

支持6G时代数据中心间的高容量、高速通信

2023年11月30日

KDDI株式会社(总部位于千代田区), Tokyo; President 和 CEO: Makoto Takahashi, 以下, “KDDI”), KDDI研究有限公司. 总部位于藤野市, Saitama; President: Hajime Nakamura, 以下, “KDDI研究”), 住友电工株式会社. (总部设在大阪市, Osaka; President: Osamu Inoue, 以下简称“住友电工”), 古川电机株式会社.有限公司. (总部设在千代田区, Tokyo; President: Hideya Moridaira, 以下简称“古川电机”), 及化验室, LLC (headquartered in United States; 以下 “OFS”) have conducted successful experiments on ultrawideb和 optical fiber transmission with a transmission b和width of 115.2太赫兹(大约比常规c波段宽24倍), 世界上最大的传输容量:484tbps, transmission distance: 31 km) (注1) in optical fiber transmission experiments using st和ard optical fiber diameter. This was done by combining uncoupled 12-core optical fiber that has 12 independent cores densely arranged in a 250-μm coating (注2), 与标准光纤的尺寸相同, 宽带o波段光纤放大器(BDFA).

在6G时代, it is expected that far more 和 diverse data will flow through networks than at present due to the spread of IoT (Internet of Things) devices 和 mobility services, 进一步扩大光纤通信容量以支持网络是十分必要的. 这次的成功在于支持高容量的技术, 6G时代数据中心之间的高速通信. 此外, the same transmission capacity can be secured with fewer fiber cores since the transmission capacity per optical fiber can be greatly exp和ed, 和 this technology is expected to enable the use of ordinary conduits 和 facilities with less space occupied.

无花果. 1:这次是结果. These results were reported as a post-deadline paper (注3) at ECOC 2023 (European Conference on Optical Communications), 光通信技术领域最大的国际学术会议之一, 于10月1日至5日举行, 2023.

背景: 为了支持6G时代的网络,需要进一步扩大光纤通信的容量. Transmission capacity per optical fiber can generally be increased by using wavelength division multiplexing, 其中光的波长稍微改变以进行多路传输. 直到现在, KDDI研究, 住友电气, 和古川电气一直致力于多芯光纤的实际应用, 它们在一根光纤中有多个芯 (注4). 2023年3月, KDDI研究, 古电, 和OFS进行了成功的o波段相干密集波分复用(DWDM)传输 (注5) 利用o波段的实验, 它的传输带宽大约是C波段和l波段的两倍 (注6). 此外, 2023年3月, 住友电气 presented a high-density uncoupled 12-core optical fiber with a coating diameter of 250 μm, 标准光纤直径相同, 使其成为制造高密度光缆的理想材料 (注7).

时间结果: KDDI, KDDI研究, 住友电气, 古电, 和OFS已经成功进行了传输带宽为115的大容量传输实验.2太赫兹 by using the high-density uncoupled 12-core optical fiber with a coating diameter of 250 μm 和 combining it with O-b和 coherent DWDM transmission technology, 这能显著降低核间串扰的影响. 详情请参阅附录.

(附录) 个别公司的角色

  • KDDI和KDDI研究
Development of bi-directional O-b和 coherent DWDM transmission technology that enables high-capacity transmission

无花果. 2: 双向o波段相干DWDM传输系统图像
  • 古川电气和OFS
Development of O-b和 Bismuth-doped optical fiber amplifier that efficiently compensates optical fiber loss over a wide b和width in a single unit

无花果. 3: o波段掺铋光纤放大器的组成.
WDM:波分复用器,PDM:偏振分复用
  • 住友电气
Development of high-density uncoupled 12-core optical fiber that significantly improves transmission capacity per fiber

无花果. 4: Image of a 12-core optical fiber (right) with 12 cores densely arranged in the same st和ard 250 μm coating outer diameter as conventional optical fiber (left)

The O-b和 has an advantage in that it can reduce the signal processing load to compensate for wavelength dispersion (注8) 因为波长色散的影响小于c波段的影响, but it has a drawback that the quality of the optical signal is easily degraded due to nonlinear optical effects (注9). 因此, o波段一直被认为不适合增加光纤通信系统的容量. KDDI研究 has developed O-b和 coherent DWDM transmission technology that enables high-capacity transmission by suppressing nonlinear optical effects through optimization of the transmission power of optical signals. Wavelength division multiplexing of more optical signals is effective in increasing the capacity of optical fiber communication, 但这需要能够放大更宽波段的光纤放大器. 由古川电气和OFS开发的BDFA可以放大整个o波段的光信号, 哪个比c波段和l波段加起来还要宽. This experiment showed that an ultrawideb和 comparable to the C+L b和 can be achieved by amplifying coherent DWDM signals over 9.6太赫兹在o波段. 此外, 采用多芯光纤, 其中,在一根光纤中布置多个芯,作为光信号的路径, 每根光纤的传输容量可以通过芯数来扩展. 住友电气 has focused on the fact that optical signals in the O-b和 are more strongly confined by the core than in the C-b和, 和 it has developed an uncoupled 12-core optical fiber with 12 independent cores densely clustered within the st和ard optical fiber outer diameter of 250 μm. 事实证明, 通过结合这三种技术, 每根光纤的总可用带宽可扩展到115.2太赫兹, 并成功进行了484tbps的大容量传输实验. This is the world’s largest b和width 和 transmission capacity in a demonstration experiment for a single wavelength b和, 不是多个波段的组合.

未来展望: 在未来, 收发器的研究和开发将继续进行, 光纤放大器, 和 digital signal processing algorithms toward the practical application of ultrawideb和 O-b和 coherent DWDM transmission systems, 目的是进一步提高数据中心之间的传输能力. Part of this research 和 development is the result of Project JPNP20017 commissioned by the New Energy 和 工业 Technology Development Organization (NEDO), 一个国家研究和发展机构.

(注1)
KDDI研究于2023年10月20日进行的调查

(注2)
多芯光纤,包层直径标准,可使用现有光缆.

(注3)
截止日期后的论文:在一般论文提交截止日期(截止日期后)之后被接受的论文。. 论文选择在会议期间进行, 只有高度评价的研究结果才有机会被报道.

(注4)
新闻稿 2022年3月28日(日语)
Development 和 Demonstration of World-leading Technologies that 公司rease Submarine Optical Cable Capacity with Multicore Fiber.

(注5)
Coherent dense wavelength division multiplexing (DWDM) transmission: Coherent transmission is a method of transmitting a larger volume of data than conventional intensity modulation-direct detection technology by using the properties of light as waves as well as the light intensity. Dense wavelength division multiplexing (DWDM) is a method of densely multiplexing wavelengths in WDM (Wavelength Division Multiplexing) technology, 增加光纤的传输密度.

(注6)
新闻稿 2023年5月18日
Utilization of ultrawide b和s to increase the capacity of optical fiber communication: The world’s first successful O-b和 coherent high-density wavelength division multiplexing transmission experiment.

(注7)
T. 哈亚希,. 井上,Y. 铃木,Y. Norisugi K. 川,我. Takano T. 长岛,T. Hirama K. 武田,Y. 下田和F. 佐藤:“Ultra-High-Density Microduct电缆,非耦合12芯光纤,标准250µm涂层,光纤通信会议(OFC) 2023, 技术文摘系列(光学出版集团), 2023), 纸Tu2C.2.

(注8)
波长色散:光在不同波长以不同速度传播的现象. 因为光信号包含稍微不同的波长成分, 传播距离越长, 由于波长色散造成的光信号畸变越多.

(注9) Nonlinear optical effect: A phenomenon in which an optical signal interferes with a component of its own optical signal or a component of another optical signal multiplexed to a different wavelength, 造成光信号失真.

调查:
KDDI研究有限公司. 公共关系组

住友电工株式会社.

古川电机株式会社.有限公司. 公关部

知识库

我们的科学家和工程师创造了成为行业标准的产品和解决方案. 我们在我们的网站上公布他们的结果和最重要的出版物.知识库电子书

 

They discuss a wide variety of topics ranging from our suggested solutions to technical problems to breakthroughs in numerous products.

 

浏览我们的知识库