DATA CENTER AND HEAT DISSIPATING CONTROL SYSTEM THEREOF
A data center includes a portable container, a number of server systems, and a number of nozzles. The server systems are installed in the container. Two opposite sides of each server system are respectively a hot aisle and a cold aisle. The nozzles are arranged in the ground under the cold aisles to supply cold airflow. The nozzles of each cold aisle are arranged in a number of rows parallel to two adjacent server systems. Heights of the cold airflow from the nozzles of each cold aisle form a step mode from the two adjacent server systems to the middle of the corresponding cold aisle.
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1. Technical Field
The present disclosure relates to data centers, and particularly to a container data center and a heat dissipating control system thereof.
2. Description of Related Art
With increasing heavy duty use of on-line applications, the need for computer data centers has increased rapidly. Data centers are centralized computing facilities that include many servers, often arranged on server racks or shelves, and one rack or shelf with some servers can be considered a server system. In a data center, there are some cold aisles and some hot aisles each defined between two adjacent server systems, and the cold aisles are used to supply cold airflow for the server systems. One common heat dissipating control system in the cold aisles is to arrange a lot of nozzles under the ground, and some cold airflow is supplied from under the ground and blow to the cold aisles through the nozzles. The heights of the cold airflow from the nozzles are generally the same, but the heat dissipating requirements of different servers in different height layers are different, for example, the heat dissipating requirement of a lower server is greater than the heat dissipating requirement of a higher server. Therefore, if the heights of the cold airflow are very high, the highest server which may not need so much cold airflow would waste more electricity than needed. Therefore, there is room for improvement in the art.
Many aspects of the present embodiments can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present embodiments. Moreover, in the drawings, all the views are schematic, and like reference numerals designate corresponding parts throughout the several views.
The disclosure, including the accompanying drawings, is illustrated by way of example and not by way of limitation. It should be noted that references to “an” or “one” embodiment in this disclosure are not necessarily to the same embodiment, and such references mean at least one.
Referring to
Referring to
In one embodiment, the nozzles 30 are arranged in a plurality of rows parallel to the server systems 20 (In
Referring to
A1*V1=A2*V2
1/2*m*V22=m*g*h (friction ignored)
Therefore:
V2=A1*V1/A2; V2=√{square root over (2gh)}
And
h=(V1*A1/A2)2/2g.
As we know, the initial speed V1 of the cold airflow at the airflow outlet 31 is known, therefore, the height h of the cold airflow from the nozzle 30 can be controlled by adjusting the relationship between the two areas A1 and A2 according the above last formula, which is very convenient.
It is to be understood, however, that even though numerous characteristics and advantages of the embodiments have been set forth in the foregoing description, together with details of the structure and function of the embodiments, the disclosure is illustrative only, and changes may be made in details, especially in matters of shape, size, and arrangement of parts within the principles of the embodiments to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Claims
1. A data center comprising:
- a portable container;
- a plurality of server systems installed in the container, wherein two opposite sides of each of the plurality of server systems respectively has a hot aisle and a cold aisle; and
- a plurality of nozzles arranged in the ground under the cold aisles to supply cold airflow to the cold aisles, wherein the nozzles of each of the cold aisles are arranged in a plurality of rows parallel to two corresponding adjacent server systems, heights of the cold airflow from the nozzles of each of the cold aisles form a step mode from the two adjacent server systems to the middle of the corresponding cold aisle.
2. The data center of claim 1, wherein each of the plurality of nozzles is a hollow circular truncated cone, an upper opening of each of the plurality of nozzles is an airflow outlet and a lower opening of each of the plurality of nozzles is an airflow intake.
3. The data center of claim 2, wherein a height h of the cold airflow from one of the plurality of nozzles is adjusted by the following formula: h=(V1*A1/A2)2/2g, where V1 is an initial speed of the cold airflow at the airflow outlet, A1 is an area of the airflow outlet, A2 is an area of the airflow intake, g is the acceleration of gravity.
4. A heat dissipating control system used to dissipate heat for a server system, the heat dissipating control system comprising:
- a plurality of nozzles arranged in the ground of one side of the server system, to supply cold airflow to the side of the sever system;
- wherein the plurality of nozzles are arranged in a plurality of rows parallel to the server system, heights of the cold airflow from the plurality of nozzles form a step mode from the server system.
5. The heat dissipating control system of claim 4, wherein each of the plurality of nozzles is a hollow circular truncated cone, an upper opening of each of the plurality of nozzles is an airflow outlet and a lower opening of each of the plurality of nozzles is an airflow intake.
6. The heat dissipating control system of claim 5, wherein a height h of the cold airflow from one of the plurality of nozzles is adjusted by the following formula: h=(V1*A1/A2)2/2g, where V1 is an initial speed of the cold airflow at the airflow outlet, A1 is an area of the airflow outlet, A2 is an area of the airflow intake, g is the acceleration of gravity.
Type: Application
Filed: Sep 2, 2010
Publication Date: Mar 1, 2012
Applicant: HON HAI PRECISION INDUSTRY CO., LTD. (Tu-Cheng)
Inventor: HUNG-CHOU CHAN (Tu-Cheng)
Application Number: 12/875,096
International Classification: F28F 13/00 (20060101);