IP Library Granted Patent US 12,355,249
Granted Patent B2
US 12,355,249 · App. 18/237,177 · Granted Jul 8, 2025

Systems and methods for distributing electric power from a multi-phasic power source to a plurality of electronic devices

Inventors: Christophe Maurice Thibaut (Noyelles les Seclin, FR); Miroslaw Piotr Klaba (Roubaix, FR)
Assignee: OVH
H02J3/26H02J2310/16H02J2310/52
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Quick Facts
Patent No.
US 12,355,249
App. No.
18/237,177
Granted
Jul 8, 2025
Kind
B2
Abstract

System and method for distributing electric power from a multi-phasic power source to electronic devices, the electric power being carried by a plurality of phases. The method comprises distributing, via a plurality of multi-way switching devices, electric power from the power source to a plurality of electronic devices, each multi-way switching device corresponding to a given electronic device and being configured to distribute a present phase thereto, accessing information about power consumption of the electronic devices, determining, based on said information, a present degree of electrical imbalance of the power source, and in response to the present degree of electrical imbalance being greater than a threshold, executing a load balancing routine including determining an adjusted phase to be distributed to at least one of the electronic devices and causing the at least one multi-way switching device to switch to an adjusted switching state.

Claims (56)

1. A method for distributing electric power in a datacenter rack assembly from a multi-phasic power source to a plurality of rack-mounted electronic devices, the electric power being carried by a plurality of phases generated by the multi-phasic power source, the method comprising:

monitoring, by a sensor assembly directly connected to the multi-phasic power source, initial operational phase parameter data of each phase generated by the multi-phasic power source, the initial operational phase parameter data including one or more of frequency, amplitude, offsets, and zero crossings of intensity or voltage parameters;

distributing, via a plurality of multi-way switching devices, mono-phasic electric power from the multi-phasic power source to a plurality of power outlets that are each electrically connected to one of the plurality of rack-mounted electronic devices, each multi-way switching device corresponding to a given rack-mounted electronic device and being configured to distribute a present phase among the plurality of phases to the corresponding power outlet;

accessing, for each power outlet, power consumption data comprising information about a power consumption of a corresponding rack-mounted electronic device;

determining, based on the power consumption data and the initial operational phase parameter data of the sensor assembly, a present degree of electrical imbalance of an electrical quantity of the multi-phasic power source, the present degree of electrical imbalance being indicative of an imbalance between amounts of electric power consumed by the plurality of rack-mounted electronic devices on each one of the plurality of phases; and

in response to the determined present degree of electrical imbalance being greater than a pre-determined threshold, executing a load balancing routine comprising:

determining an adjusted phase to be distributed to at least one of the plurality of power outlets by at least one multi-way switching device of the plurality of multi-way switching devices;

detecting a first zero-cross of one of an intensity and a voltage of a first phase of the plurality of phases, the first phase being relied upon to provide electric power to the electronic device corresponding to the at least one multi-way switching device;

causing, in response to detecting the first zero-cross, the at least one multi-way switching device to disconnect a power outlet, of the plurality of power outlets, that corresponds to the at least one multi-way switching device;

detecting a second zero-cross of one of an intensity and a voltage of the adjusted phase; and

causing, in response to detecting the second zero-cross, the at least one multi-way switching device to switch to an adjusted switching state to distribute the adjusted phase to the power outlet, of the plurality of power outlets, that corresponds to the at least one multi-way switching device.

2. A method for distributing electric power in a datacenter rack assembly from a multi-phasic power source to a plurality of rack-mounted electronic devices, the electric power being carried by a plurality of phases generated by the multi-phasic power source, the method comprising:

monitoring, by a sensor assembly directly connected to the multi-phasic power source, initial operational phase parameter data of each phase generated by the multi-phasic power source, the initial operational phase parameter data including one or more of frequency, amplitude, offsets, and zero crossings of intensity or voltage parameters;

distributing, via a plurality of multi-way switching devices, mono-phasic electric power from the multi-phasic power source to a plurality of power outlets that are each electrically connected to one of the plurality of rack-mounted electronic devices, each multi-way switching device corresponding to a given rack-mounted electronic device and being configured to distribute a present phase among the plurality of phases to the corresponding power outlet:

accessing, for each power outlet, power consumption data comprising information about a power consumption of a corresponding rack-mounted electronic device;

determining, based on the power consumption data and the initial operational phase parameter data of the sensor assembly, a present degree of electrical imbalance of an electrical quantity of the multi-phasic power source, the present degree of electrical imbalance being indicative of an imbalance between amounts of electric power consumed by the plurality of rack-mounted electronic devices on each one of the plurality of phases;

in response to the determined present degree of electrical imbalance being greater than a pre-determined threshold, executing a load balancing routine comprising:

determining an adjusted phase to be distributed to at least one of the plurality of power outlets by at least one multi-way switching device of the plurality of multi-way switching devices; detecting a first zero-cross of one of an intensity and a voltage of the present phase;

causing, in response to detecting the first zero-cross, the at least one multi-way switching device to disconnect, a power outlet, of the plurality of power outlets, that corresponds to the at least one multi-way switching device;

detecting a second zero-cross of one of an intensity and a voltage of a transitionary phase of the plurality of phases, the second zero-cross being an immediate zero-cross of one of an intensity and a voltage of any phase of the plurality of phases consecutive to the first zero-cross; and

causing in response to detecting the second zero-cross, the at least one multi-way switching device to switch to a transitionary switching state to distribute the transitionary phase to the power outlet, of the plurality of power outlets, that corresponds to the at least one multi-way switching device.

3. The method of claim 2 , further comprising:

repeating the load balancing routine; and

terminating the repeating the load balancing routine in response to the at least one multi-way switching device distributing the adjusted phase to the power outlet, of the plurality of power outlets, that corresponds to the at least one multi-way switching device.

4. The method of claim 1 , further comprising repeating the load balancing routine periodically.

5. The method of claim 4 , wherein a period of time between two consecutive executions of the load balancing routine is greater than a pre-determined time threshold.

6. A non-transitory computer-readable medium comprising computer-readable instructions that, upon being executed by a datacenter system comprising a controller, a multi-phasic power source, a plurality of rack-mounted electronic devices coupled to a respective power outlet, and a plurality of multi-way switching devices each corresponding to a given rack-mounted electronic device, cause the datacenter system controller to perform the method of claim 1 .

7. A datacenter rack assembly power distribution unit for distributing electric power from a multi-phasic power source to a plurality of rack-mounted electronic devices, the power distribution unit comprising:

a controller;

a power inlet for receiving electric power from the multi-phasic power source, electric power being carried by a plurality of phases generated by the multi-phasic power source;

a sensor assembly, directly connected to the power inlet and the controller, that is configured to monitor initial operational phase parameter data of each phase generated by the multi-phasic power source, the operational phase parameter data including one or more of frequency, amplitude, offsets, and zero crossings of intensity or voltage parameters;

a plurality of power outlets for distributing mono-phasic electric power to the plurality of rack-mounted electronic devices, each power outlet comprising:

a power sensing device communicably connected to the controller, the power sensing device being configured to determine power consumption data corresponding to a power consumption of a corresponding electronic device of the plurality of rack-mounted electronic devices electrically connected to the power outlet and transmit said power consumption data to the controller; and

a plurality of multi-way switching devices operatively connected between the power inlet and the plurality of power outlets, the plurality of multi-way switching devices being communicably connected to the controller, each multi-way switching device being configured to distribute a given phase of the plurality of phases to a corresponding power outlet for generating mono-phasic electric power for the corresponding power outlet;

wherein the controller is configured to execute a load balancing routine comprising:

determining, based on the power consumption data received from the power sensing device of each of the plurality of power outlets and the initial operational phase parameter data of the sensor assembly, a present degree of electrical imbalance of the multi-phasic power source, the present degree of electrical imbalance being indicative of an amount of electric power consumed by the plurality of rack-mounted electronic devices on each of the plurality of phases;

determining, in response to the determined present degree of electrical imbalance being greater than a pre-determined threshold, an adjusted phase to be distributed to at least one of the plurality of power outlets by at least one corresponding multi-way switching device of the plurality of multi-way switching devices;

detecting a first zero-cross of one of an intensity and a voltage of a first phase of the plurality of phases, the first phase being relied upon to provide electric power to a power outlet, of the plurality of power outlets, that corresponds to the at least one multi-way switching device;

causing, in response to detecting the first zero-cross, the at least one multi-way switching device to disconnect, the power outlet, of the plurality of power outlets, that corresponds to the at least one multi-way switching device;

detecting a second zero-cross of one of an intensity and a voltage of the adjusted phase; and

causing, in response to detecting the second zero-cross, the at least one multi-way switching device to switch to an adjusted switching state to distribute the adjusted phase to the power outlet, of the plurality of power outlets, that corresponds to the at least one multi-way switching device.

8. The power distribution unit of claim 7 , wherein the controller is further configured to, for the at least one multi-way switching device:

detect a second zero-cross of a transitionary phase, the second zero-cross being an immediate zero-cross of any phase of the plurality of phases consecutive to the first zero-cross; and

cause in response to the second zero-cross of the transitionary phase, the at least one multi-way switching device to switch to a transitionary switching state to distribute the transitionary phase to the power outlet, of the plurality of power outlets, that corresponds to the at least one multi-way switching device.

9. The power distribution unit of claim 8 , wherein the controller is configured to:

repeat an execution of the load balancing routine; and

end the repeating the execution of the load balancing routine in response to the at least one multi-way switching device distributing the adjusted phase to the power outlet, of the plurality of power outlets, that corresponds to the at least one multi-way switching device.

10. The power distribution unit of claim 7 , wherein the controller is configured to execute the load balancing routine periodically.

11. The power distribution unit of claim 7 , further comprising a plurality of inlet phase sensing devices for sensing an electric power of each phase of the multi-phasic power source at the power inlet.

12. The power distribution unit of claim 11 , wherein the controller is configured to execute the load balancing routine in response to at least one of the plurality of inlet phase sensing devices detecting a loss of at least one phase of the multi-phasic power source.

13. The power distribution unit of claim 7 , wherein the power inlet is configured to receive a tri-phasic electric power from a tri-phasic power source.

14. The method of claim 2 , further comprising repeating the load balancing routine periodically.

15. The method of claim 14 , wherein a period of time between two consecutive executions of the load balancing routine is greater than a pre-determined time threshold.

16. A non-transitory computer-readable medium comprising computer-readable instructions that, upon being executed by a datacenter system comprising a controller, a multi-phasic power source, a plurality of rack-mounted electronic devices coupled to a respective power outlet, and a plurality of multi-way switching devices each corresponding to a given rack-mounted electronic device, cause the datacenter system controller to perform the method of claim 3 .

17. The method of claim 1 , further comprising receiving, by a power inlet, a tri-phasic electric power from a tri-phasic power source.

18. The power distribution unit of claim 10 , wherein a period of time between two consecutive executions of the load balancing routine is greater than a pre-determined time threshold.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 1, 2023
From: THIBAUT, CHRISTOPHE MAURICE; KLABA, MIROSLAW PIOTR
To: OVH
Reel/Frame 064778/0624 →
Priority Claims (1)
EP 22306281 · Aug 30, 2022 · regional
Continuity (1)
Related Publication 20240072542A1 · Feb 29, 2024
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