Scalable Secure Hybrid Electrical-Optical Switched Network with Optical Wavelength Tunable Transceivers
20170366881 · 2017-12-21
Inventors
Cpc classification
International classification
Abstract
A method for creating a hybrid electric and optical data center network is provided with a plurality of servers, a plurality of ToR/EoR switches, and an optical central switch. Each of the plurality servers maintains an electronic connection with a corresponding ToR/EoR switch from the plurality of switches. The plurality of ToR/EoR switches is interconnected to each other electronically and optically. The optical central switch in conjunction with a plurality of tunable transceivers allows a signal originating from any of the plurality of the servers, to traverse the data center network to reach any destination server. To do so, wavelength switching takes place via the plurality of transceivers at each of the ToR/EoR switches. Simultaneously, space switching takes place within the center switch. By utilizing the method, intra data center bandwidth is optimized and the network the method is utilized in is non-blocking.
Claims
1. A method for creating a hybrid electric and optical data center network, the method comprises the steps of: providing a plurality of servers and an optical central switch; providing a plurality of top-of-the-rack (ToR)/end-of-the-rack (EoR) switches, wherein each of the plurality of servers is electronically connected to a corresponding ToR/EoR switch from the plurality of ToR/EoR switches; communicatively coupling the plurality of ToR/EoR switches amongst each other through a network of optical pathways and a network of electronic pathways, wherein the optical central switch is communicatively coupled to a subset of routable optical pathways within the network of optical pathways; generating a wavelength-tunable signal at an arbitrary server from the plurality of servers; transmitting the wavelength-tunable signal from the corresponding ToR/EoR switch associated to the arbitrary server to the optical central switch through the subset of routable optical pathways; optically directing the wavelength-tunable signal with the optical central switch in order to direct the wavelength-tunable signal to a specific server from the plurality of servers; and transmitting the wavelength-tunable signal from the optical central switch to the corresponding ToR/EoR switch of the specific server through the subset of routable optical pathways.
2. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 1 further comprises the steps of: providing at least one outgoing assembly for each optical routed pathway, wherein the outgoing assembly includes a plurality of transceivers and a combiner; generating the wavelength-tunable signal with the plurality of transceivers; and multiplexing the wavelength-tunable signal with the combiner before transmitting the wavelength-tunable signal to the optical central switch.
3. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 2 further comprises the steps of: providing a tunable optical filter for the outgoing assembly; and modifying the wavelength-tunable signal with the tunable optical filter before transmitting the wavelength-tunable signal to the optical central switch.
4. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 1 further comprises the steps of: providing an optional electrical transceiver for each of the plurality of ToR/EoR switches; and communicably coupling the optional electrical transceiver to the network of electrical pathways.
5. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 1 further comprises the steps of: providing an optional non-wavelength specific transceiver for each of the plurality of ToR/EoR switches; and communicably coupling the optional non-wavelength specific transceiver to the network of optical pathways, outside of the subset of routable optical pathways.
6. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 1 further comprises the steps of: providing an optional fixed wavelength transceiver for each of the plurality of ToR/EoR switches; and communicably coupling the optional fixed wavelength transceiver to the subset of routable optical pathways.
7. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 8, wherein the optional fixed wavelength transceiver is a dense wavelength division multiplexing (DWDM) grid.
8. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 1 further comprises the steps of: providing optional fixed wavelength transceiver for each of the plurality of ToR/EoR switches; and communicably coupling the optional fixed wavelength transceiver to the network of optical pathways, outside of the subset of routable optical pathways.
9. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 10, wherein the optional fixed wavelength transceiver is a dense wavelength division multiplexing (DWDM) grid.
10. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 1 further comprises the steps of: providing at least one tunable wavelength transceiver for each of the plurality of ToR/EoR switches; and communicably coupling the at least one tunable wavelength transceiver to the subset of routable optical pathways.
11. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 1 further comprises the steps of: providing at least one outgoing assembly for each optical routed pathway, wherein the outgoing assembly includes an optical amplifier; and amplifying the wavelength-tunable signal with the optical amplifier before transmitting the wavelength-tunable signal to the optical central switch.
12. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 11, wherein the optical amplifier is an Erbium-doped fiber amplifier (EDFA).
13. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 1 further comprises the steps of: providing a plurality of internal demultiplexers, a plurality of space switches, and a plurality of internal combiners for the optical central switch, wherein each of the plurality of internal demultiplexers is communicatively coupled with each of the plurality of space switches, and wherein each of the plurality of space switches is communicatively coupled with each of the plurality of internal combiners; receiving the wavelength-tunable signal with an arbitrary internal demultiplexer from the plurality of internal demultiplexers, wherein the arbitrary internal demultiplexer is associated to the arbitrary server; routing the wavelength-tunable signal from the arbitrary internal demlutiplexer through a least traffic-burdened switch from the plurality of space switches; and routing the wavelength-tunable signal from the least traffic-burdened switch to a specific internal combiner, wherein the specific internal combiner is associated to the specific server.
14. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 13, wherein each of the plurality of space switches includes an equal number of inputs and outputs.
15. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 1 further comprises the steps of: providing at least one incoming assembly for each optical routed pathway, wherein the incoming assembly includes an incoming demultiplexer and a plurality of transceivers; demultiplexing the wavelength-tunable signal with the incoming demultiplexer; and distributing the wavelength-tunable signal to the plurality of transceivers.
16. The method for creating a hybrid electric and optical data center network, the method as claimed in claim 15 further comprises the steps of: providing an optical amplifier for each of the plurality of transceivers; and amplifying the wavelength-tunable signal with the optical amplifier before receiving the wavelength-tunable signal with the plurality of transceivers.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAIL DESCRIPTIONS OF THE INVENTION
[0014] All illustrations of the drawings are for the purpose of describing selected versions of the present invention and are not intended to limit the scope of the present invention.
[0015] The present invention introduces a method for creating a hybrid electrical and optical network to maximize efficiency and affect non-blocking traffic within a data center. In order to maximize efficiency and affect non-blocking traffic, the present invention uses electrical switches and a wavelength switching within tunable transceivers in conjunction with a software defined network to effectively direct the traffic within a data center. The present invention provides significant saving on capital expenditure, operational expenditure, and power consumption in the constantly growing data centers. Moreover, the present invention maximizes intra data center bandwidth, minimizes packet switching blockages, and promotes non-blocking optical switching.
[0016] As illustrated in
[0017] As illustrated in
[0018] As illustrated in
[0019] As illustrated in
[0020] As mentioned earlier, when being combined into a single fiber with the use of the combiner 13, the wavelength-tunable signal can encounter a notable optical loss. To address the optical loss, the outgoing assembly 11 for each optical routed pathway includes an optical amplifier 16 as seen in
[0021] The space switching portion of the present invention is executed as part of the optical central switch 1. As seen in
[0022] For the wavelength-specific signal to reach the specific server, the present invention is provided with at least one incoming assembly 17 for each optical routed pathway. To execute the process of transmitting the wavelength-tunable signal to the specific server, the incoming assembly 17 includes an incoming demultiplexer 18 and a plurality of transceivers 12. The wavelength-tunable signal is demultiplexed with the incoming demultiplexer 18. Next, the wavelength-tunable signal is received with the use of the plurality of transceivers 12 so that the wavelength-tunable signal reaches the specific server. The present invention provides a pre-optical amplifier 30 for each of the plurality of transceivers 12 so that the wavelength-tunable amplifier can be amplified before the wavelength-tunable signal is received by the plurality of transceivers 12.
[0023] The tunability of the present invention enables software defined network (SDN) and network function virtualization (NFV) orchestration. More specifically, the present invention eliminates the need to closely monitor traffic patterns and alter software and hardware for efficiency. The present invention also provides transparent integration between the electrical packet switching and optical packet switching. To do so, the present invention directs traffic by considering switching time and buffering the traffic according to the switching time. Thus, no data loss occurs during the optical or electric switching.
[0024] The present invention can be used to establish optimal and flexible network communication internal to data centers with linearly scalable switches. To do so, the present invention combines electrical packet switching and optical circuit switching to obtain a conceptually non-blocking network. Moreover, the present invention enhances network security on the wavelength level so that the cost of securing is also reduced.
[0025] Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.