Server air cross-transfer blanking for datacenter cooling systems
Systems and methods for cooling a datacenter are disclosed. In at least one embodiment, one or more blanks may be associated with a motorized subsystem and can be used with one or more server openings on a rack, so that the motorized subsystem can cause the one or more blanks to close or open an individual server opening based in part on a change within the individual server opening.
1 . A datacenter cooling system, comprising:
one or more blanks, wherein the one or more blanks are sized to block an individual server opening;
a motorized subsystem, wherein the one or more blanks are movable by the motorized subsystem with respect to the individual server opening; and
one or more sensors mounted proximate the individual server opening and configured to detect an absence of a server tray in the individual server opening or a presence of the server tray in the individual server opening, wherein the motorized subsystem is to cause the one or more blanks to block airflow through a cross-section of the individual server opening based on first sensor data from the one or more sensors indicating the absence of the server tray from the individual server opening or to unblock airflow through the cross-section of the individual server opening based on second sensor data from the one or more sensors indicating the presence of the server tray in the individual server opening.
2 . The datacenter cooling system of claim 1 , further comprising:
stowing areas to stow the one or more blanks when opened with respect to the individual server opening.
3 . The datacenter cooling system of claim 1 , further comprising:
at least one sensor associated with the individual server opening, the at least one sensor to enable determination of the presence or the absence of the server tray in the individual server opening.
4 . The datacenter cooling system of claim 3 , wherein the at least one sensor is further to enable determination of a change in air pressure or temperature associated with the individual server opening.
5 . The datacenter cooling system of claim 1 , further comprising:
at least one processor to receive sensor inputs from at least one sensor, the at least one processor to activate or deactivate the motorized subsystem to cause the one or more blanks to close or to open the individual server opening based in part on the sensor inputs.
6 . The datacenter cooling system of claim 5 , further comprising:
one or more neural networks to receive the sensor inputs from at least one sensor associated with the individual server opening, the one or more neural networks to infer the presence or the absence of the server tray in the individual server opening.
7 . The datacenter cooling system of claim 1 , further comprising:
at least one physical connector coupled with the motorized subsystem to enable movement of the one or more blanks based in part on the motorized subsystem activated in one or more directions.
8 . The datacenter cooling system of claim 1 , further comprising:
a default configuration associated with the motorized subsystem or the one or more blanks, the default configuration to enable the one or more blanks to be in an open or a closed configuration with respect to the individual server opening and with the motorized subsystem being in a deactivated configuration.
9 . The datacenter cooling system of claim 1 , further comprising:
an override configuration associated with the one or more blanks to enable override of the motorized subsystem.
10 . The datacenter cooling system of claim 9 , further comprising:
at least one processor to cause a change in an air cooling subsystem to reduce an air pressure difference within the individual server opening during opening or closing of the individual server opening by the motorized subsystem.
11 . A processor comprising one or more circuits, the one or more circuits to receive, from one or more sensors mounted proximate an individual server opening in a rack and configured to detect an absence of a server tray in the individual server opening or a presence of the server tray in the individual server opening, a first sensor input indicative of the presence of the server tray in the individual server opening or a second sensor input indicative of the absence of the server tray from the individual server opening, the processor to cause a motorized subsystem to cause one or more blanks to block airflow through a cross-section of the individual server opening based on the second sensor input indicating the absence of the server tray from the individual server opening or to unblock airflow through the cross-section of the individual server opening based on the first sensor input indicating the presence of the server tray in the individual server opening.
12 . The processor of claim 11 , further comprising:
an input to receive at least one of the first sensor input or the second sensor input, the first sensor input or the second sensor input associated with the presence or the absence of the server tray in the individual server opening.
13 . The processor of claim 12 , wherein at least one of the first sensor input or the second sensor input is further associated with a change in air pressure or temperature associated with the individual server opening.
14 . The processor of claim 11 , further comprising:
an output to the motorized subsystem, the output to indicate a change for the one or more blanks or to indicate a default position for the one or more blanks.
15 . The processor of claim 11 , further comprising:
one or more neural networks to receive at least one of the first sensor input or the second sensor input and to infer the presence or the absence of the server tray in the individual server opening.
16 . A method for datacenter cooling system, comprising:
providing one or more blanks actuatable by a motorized subsystem;
determining, using one or more sensors mounted proximate an individual server opening in a rack, a presence or an absence of a server tray in the individual server opening, wherein the one or more blanks are sized to block the individual server opening; and
enabling the motorized subsystem to cause the one or more blanks to block airflow through a cross-section of the individual server opening based on first sensor data from the one or more sensors indicating the absence of the server tray from the individual server opening or to unblock airflow through the cross-section of the individual server opening based on second sensor data from the one or more sensors indicative the presence of the server tray in the individual server opening.
17 . The method of claim 16 , further comprising:
enabling stowing areas to stow the one or more blanks when opened with respect to the individual server opening.
18 . The method of claim 16 , further comprising:
receiving, in at least one processor, at least one sensor input associated with at least one sensor that is associated with the individual server opening;
determining, using the at least one processor, the presence or the absence of the server tray in the individual server opening; and
causing activation or deactivation of the motorized subsystem.
19 . The method of claim 18 , further comprising:
enabling one or more neural networks to receive the at least one sensor input from the at least one sensor; and
enabling the one or more neural networks to infer the presence or the absence of the server tray in the individual server opening.
20 . The method of claim 16 , further comprising:
enabling a default configuration or an override configuration to be associated with the motorized subsystem or the one or more blanks, the default configuration to enable the one or more blanks to be in an open or a closed configuration with respect to the individual server opening and with the motorized subsystem being in a deactivated configuration, and the override configuration associated with the one or more blanks to enable override of the motorized subsystem.