AIR TRANSPORTABLE MODULAR SHIPPING CONTAINER FOR DATA CENTERS
20230209764 ยท 2023-06-29
Inventors
Cpc classification
H05K7/20827
ELECTRICITY
H05K7/20745
ELECTRICITY
E04H5/02
FIXED CONSTRUCTIONS
International classification
H05K7/14
ELECTRICITY
H05K7/20
ELECTRICITY
E04H5/02
FIXED CONSTRUCTIONS
Abstract
This invention describes the use of pre-packaged air shipping containers for delivery of edge data center equipment. The containers are capable of rapid deployment and positioning at the edge data center delivery site to minimize time between the order of equipment and deployment of a functioning edge data center. The containers allow for easy access, and rapid repair/replacement of modular edge data center equipment.
Claims
1. A modular data center comprising: a first container, disposed within the first container are: at least one cabinet with electronic equipment disposed therein; at least one cooling unit; and a heat shield, the heat shield positioned to establish a cold aisle air space on one side of the heat shield within the first container and a hot aisle air space on the opposite side of the heat shield within the container.
2. The modular data center according to claim 1, further comprising a second container having a power supply disposed therein.
3. The modular data center according to claim 2, wherein the power supply provides power to the at least one cooling unit and electronic equipment.
4. The modular data center according to claim 1, wherein each of the at least one cooling units comprise an evaporator, a condenser, and at least one fan.
5. The modular data center according to claim 1, wherein the first container comprises a plurality of panels comprising: a floor panel; a back panel; a front panel; a roof panel; and side panels.
6. The modular data center according to claim 5, wherein dimensions of the plurality of panels are configured for optimal storage within an airplane cargo space.
7. The modular data center according to claim 5, wherein the plurality of panels create an airtight seal around the at least one cabinet, the at least one cooling unit, the heat shield, the cold aisle air space, and the hot aisle air space.
8. The modular data center according to claim 7, wherein the back panel and the front panel each comprise a plurality of selectively openable louvers.
9. The modular data center according to claim 8, wherein the cold aisle air space and the hot aisle air space each have at least one temperature sensor and at least one pressure sensor disposed therein.
10. The modular data center according to claim 9, wherein the selectively openable louvers are configured to move from a closed position to an open position when either the at least one temperature sensor or the at least one pressure sensor read a value exceeding a predetermined threshold value.
11. The modular data center according to claim 1, wherein the first container comprises a plurality of panels comprising: a floor panel; a back panel; a front panel; a main roof panel substantially parallel to the floor panel; an angled roof panel disposed between the main roof panel and the front panel; and side panels.
12. The modular data center according to claim 11, wherein dimensions of the plurality of panels are configured for optimal storage within an airplane cargo space.
13. The modular data center according to claim 11, wherein the plurality of panels create an airtight seal around the at least one cabinet, the at least one cooling unit, the heat shield, the cold aisle air space, and the hot aisle air space.
14. The modular data center according to claim 13, wherein the back panel and the front panel each comprise a plurality of selectively openable louvers.
15. The modular data center according to claim 14, wherein the cold aisle air space and the hot aisle air space each have at least one temperature sensor and at least one pressure sensor disposed therein.
16. The modular data center according to claim 15, wherein the selectively openable louvers are configured to move from a closed position to an open position when either the at least one temperature sensor or the at least one pressure sensor read a value exceeding a predetermined threshold value.
17. A modular data center comprising: a storage unit, disposed within the storage unit are: a first container, disposed within the first container are: at least one cabinet with electronic equipment disposed therein; at least one cooling unit; and a heat shield, the heat shield positioned to establish a cold aisle air space on one side of the heat shield within the first container and a hot aisle air space on the opposite side of the heat shield within the container; a second container having a power supply disposed therein, the power supply providing power to the at least one cooling unit and electronic equipment; and storage unit air space.
18. The modular data center according to claim 17, wherein the first container and second container each comprise a plurality of panels comprising: a floor panel; a back panel; a front panel; a roof panel; and side panels, such that the plurality of panels create an airtight seal around the at least one cabinet, the at least one cooling unit, the heat shield, the cold aisle air space, and the hot aisle air space, and separates the cold aisle air space and the hot aisle air space from the storage unit air space.
19. The modular data center according to claim 18, wherein the storage unit comprises an entry door and at least one selectively removable access panel.
20. The modular data center according to claim 18, wherein the storage unit comprises a backup cooling unit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] These and other aspects and features of the present invention will become apparent to those of ordinary skill in the art upon review of the following description of specific embodiments of the invention in conjunction with the accompanying figures, wherein:
[0018]
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[0025]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0026] The present invention generally provides apparatus and methods for using modular, air-transportable containerized data center unit components, and heat management associated with the same that allow for rapid deployment, delivery, and implementation of edge data centers. In some embodiments the invention provides distinct partitioning of air flowing from cold aisles through electronic equipment, into hot aisles as heated air, which is then processed by cooling units into cooled air blown back into the cold aisles by fans, all within a modular, airtight container unit.
[0027]
[0028] Disposed within the airtight container unit 100 is at least one but preferably a plurality of electronic equipment cabinets 180. The electronic equipment cabinets 180 and their equipment may be pre-packaged inside of the container 100 and simply connected to the appropriate power and connectivity cabling once delivered to the edge data center location to being their function. Once positioned at the edge data center site, the electronic equipment cabinets may remain within the container unit 100, and only need to be properly positioned and connected to begin their functions. The electronic equipment cabinets 180 store heat producing electronic equipment such as servers. Shown adjacent to the electronic equipment cabinets 180 in
[0029] The heat shield 185 may comprise a plastic curtain, steel or plastic panel, plexiglass, or any other suitable material. The heat shield 185 preferably comprises at least one layer of heat insulating material. The heat shield is fixed in a position contacting the main roof panel(s) 130, first side panel(s) 160, second side panel(s) 70, and top surfaces of the cabinets 180 and fan units 181/182 to seal air between cold aisle air space 183 and hot aisle air space 184, and preventing heat from transferring between cold aisle air space 183 and hot aisle air space 184. This configuration directs all of the air in the cold aisle air space 183 into the electronic equipment within the cabinet 180 when they are in operation. The electronic equipment then exhausts heated air into the hot aisle air space 184.
[0030] To recycle air back into the cold aisle air space 183, fan units 181/182 intake heated air within the hot aisle air space 184. Evaporator units and condenser units of the fan units 181 process the heated air converting it to cooled air, and fans blow the cooled air back into cold aisle air space 183. All of the panels of the container unit 100 preferably comprise at least one layer of heat insulating material to prevent heat transfer between the interior air space of the container unit 100 and air outside of the container unit 100.
[0031] In a preferred embodiment the width of the container unit is 10.5 feet wherein the width is defined as the distance between the first side panel(s) 160 and second side panel(s) 170. In this preferred embodiment the length of the container is 8 feet wherein the length is defined as the distance between the front panel(s) 110 and the back panel(s) 120. Also in this preferred embodiment the height of the container is 8 feet wherein the height is defined as the distance between the main roof panel(s) 130 and the floor panel(s) 150. These dimensions are chosen to be optimal for placing the air-transportable container units 100 within the cargo space of a cargo plane.
[0032] In other embodiments the width of the container may be about 10.5 feet, the length may be about 8 feet, and the height may be about 8 feet. In other embodiments the width of the container may be less than 10.5 feet, the length may be less than 8 feet, and the height may be less than 8 feet. In other embodiments the width of the container may be more than 10.5 feet, the length may be more than 8 feet, and the height may be more than 8 feet. The invention contemplates the dimensions of the container may be chosen, selected, and implemented to suit the needs of the particular user.
[0033] The front panel(s) 110 and back panel(s) 120 may comprise a plurality of vertically or horizontally disposed louvers (not shown). The louvers are maintained in a closed position when the electronic equipment is in use to maintain the airtight seal of the container unit 100. Positioned within the each of the cold aisle air space and hot aisle airspace are at least one temperature sensor and pressure sensor. The temperature sensors and pressure sensors communicate temperature and pressure values for their respective air spaces to a control unit. When the control unit reads a temperature or pressure that exceeds a predetermined safety value, the control unit sends signals that open the louvers of the respective side or sides necessary, breaking the airtight seal of the container unit 100. As an emergency backup, the air space outside of the container unit 100 is kept at a temperature at or below the temperature of the cold aisle air space, as discussed in further detail below.
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[0039] The data center storage facility 500 preferably comprises a curved or angled roof 530. Such roof configurations prevent buildup of water, snow, or other elements that may cause the roof to break or leak. The curved or angled roof serves as a safety mechanism preventing damage to the electronic equipment, power, and cooling components stored within the data center storage unit.
[0040]
[0041] The containers housing chiller units 520 and power supply units 540 may be either stored within the data center storage facility or outside of the data center storage facility. Power cabling is provided from the power supply units to the equipment and components within the container units by common methods known within the art.
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[0044] Data center storage units 500 may be provided within a facility, outside a facility, or adjacent to and sharing a common wall 900 with a facility. Multiple data center storage units may be disposed adjacent to each other.
[0045] Although the present invention has been particularly described with reference to embodiments thereof, it should be readily apparent to those of ordinary skill in the art that various changes, modifications and substitutes are intended within the form and details thereof, without departing from the spirit and scope of the invention. Accordingly, it will be appreciated that in numerous instances some features of the invention will be employed without a corresponding use of other features. Further, those skilled in the art will understand that variations can be made in the number and arrangement of components illustrated in the above figures.