1. A method of operating a disk array unit comprising a first housing and at least one second housing, the method comprising steps of:
receiving an indication that a switch device changed from an ON position to an OFF position, and in response thereto:
changing operating states of first storage devices in the first housing and in the at least one second housing from a READY state to a POWER-SUPPLY-OFF state whereby each first storage device substantially does not consume any power;
reducing a fan operating speed of a fan unit disposed in the at least one second housing;
changing operating states of one or more second storage devices in the at least one second housing to a NOT-READY operating state, wherein each of the one or more second storage devices does not respond to data IO requests but does respond to non-data IO requests;
ceasing operation of a fan unit disposed in the first housing by removing power therefrom; and
ceasing operation of third storage devices in the first housing by removing power therefrom.
2. The method of claim 1 further comprising halting service to a host computer connected to the disk array further in response to detecting that main power has been removed from the disk array.
3. The method of claim 1 further comprising performing a de-staging of data whereby unwritten data is written to storage devices contained in the first housing and in the at least one second housing.
4. The method of claim 1 wherein the step of changing operating states of first storage devices includes sending one or more commands from a controller disposed in the first housing to the first storage devices.
5. The method of claim 1 wherein the step of changing operating states of second storage devices includes sending one or more commands from a controller disposed in the first housing to the second storage devices.
6. The method of claim 1 wherein the step of reducing a fan operating speed includes at least sending a third command to a controller disposed in the at least one second housing.
7. A disk array apparatus comprising:
a power switch having an ON position and an OFF position;
a first housing comprising a first controller and a first fan unit;
at least one second housing comprising a second controller and a second fan unit;
a plurality of first storage devices disposed in the first housing and in the at least one second housing; and
a plurality of second storage devices disposed in the first housing and in the at least one second housing,
wherein the first controller is configured to detect that the power switch transitioned from the ON position to the OFF position, and in response thereto:
changes operating states of the first storage devices from a READY state to a POWER-SUPPLY-OFF state whereby each first storage device substantially does not consume any power;
reduces a fan operating speed of the second fan unit;
changes operating states of any second storage device disposed in the second housing to a NOT-READY operating state, wherein said any second storage device does not respond to data IO requests but does respond to non-data IO requests;
removes power from the first fan unit; and
removes power from any second storage device disposed in the first housing.
8. The apparatus of claim 7 wherein the first housing further comprises a first power supply having a power switch, the first power supply providing power for the fist housing, wherein the at least one second housing further comprises a second power supply having a power switch, the second power supply providing power for the at least one second housing, wherein the first and second power supplies were in a state of providing power to their respective housings when the power switch transitioned from the ON position to the OFF position.
9. The apparatus of claim 7 wherein each second storage device is a disk drive configured to provide SCSI Enclosure Services functionality and Enclosure Service Interface functionality.
10. The apparatus of claim 7 further comprising at least an additional second housing comprising a plurality of the second storage devices.
11. The apparatus of claim 7 wherein the first controller is configured to send a command to the second controller in order to reduce the fan operating speed of the second fan unit.
12. A method of operating a disk array unit comprising a first housing and at least one second housing, the method comprising steps of:
receiving an indication that a switch device transitioned from an OFF position state to an ON position, and in response thereto:
providing power to one or more second storage devices disposed in the first housing;
providing power to a fan unit disposed in the first housing thereby operating the fan unit;
changing operating states of the one or more second storage devices disposed in the first housing and operating states of one or more second storage devices disposed in the second housing to a READY state;
increasing a fan operating speed of a fan unit disposed in the at least one second housing from a first operating speed to a second operating speed; and
changing operating states of one or more first storage devices disposed in the first housing and in the at least one second housing from a NOT-READY state to the READY state.
13. The method of claim 12 wherein the step of changing operating states of one or more second storage devices includes providing power to the second storage devices whereby the second storage devices begin operating in the NOT-READY state.
14. The method of claim 12 further comprising initiating service with a host computer.
15. A disk array apparatus comprising:
a power switch having an ON position and an OFF position;
a first housing comprising a first controller, a first fan unit, and a first power supply;
at least one second housing comprising a second controller, a second fan unit, and a second power supply;
a plurality of first storage devices disposed in the first housing and in the at least one second housing; and
a plurality of second storage devices disposed in the first housing and in the at least one second housing,
wherein the first controller is configured to detect that the power switch transitioned from the OFF position to the ON position, and in response thereto:
the first power supply is operated to provide power to any second storage device disposed in the first housing and to provide power to the first fan unit;
operating states of the second storage devices are changed to a READY state;
a fan operating speed of the fan unit of said at least on second housing is increased from a first operating speed to a second operating speed; and
operating states of the first storage devices are changed from a NOT-READY state to the READY state.
16. The apparatus of claim 15 wherein the first power supply and the second power supply provide power to the first storage devices to provide power to the first storage devices, whereby the first storage devices begin operating in the NOT-READY state.
17. The apparatus of claim 15 wherein each second storage device is a disk drive configured to provide SCSI Enclosure Services functionality and Enclosure Service Interface functionality.
18. The apparatus of claim 15 wherein the first and second power supplies were in a state of providing power respectively to the firsts and second housings at the time the power switch transitioned from the ON position to the OFF position.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A braking apparatus of an aerial refueling boom system, the braking apparatus comprising:
a pulley about which a cable wraps at least partially thereabout, wherein the pulley is configured to be operably mounted to and carried by a first tube of the boom system and to rotate in response to movement of a second tube relative to the first tube as a result of an operable connection of the cable to the second tube; and
a lock having open and actuated positions and also operably mounted to and carried by the first tube of the boom system, wherein the lock in the actuated position is configured to engage the pulley so as to prevent rotation of the pulley and to also prevent extension of the second tube relative to the first tube, and wherein the lock is configured to be actuated by a reduction in performance attributable to a malfunction of an actuation source that at least partially controls a position of the second tube relative to the first tube,
wherein the lock comprises a brake having calipers on opposite sides of the pulley, and wherein the brake is configured to have the calipers in the open position to permit rotation of the pulley in an instance in which the actuation source is operational and to have the calipers in the actuated position so as to engage the pulley and to prevent further rotation of the pulley in an instance in which the performance of the actuation source is reduced as a result of the malfunction of the actuation source.
2. A braking apparatus of claim 1 wherein the lock further comprises a spring configured to actuate the calipers and to move the calipers from the open position to the actuated position, wherein the spring is configured to be compressed such that the calipers remain in the open position while the actuation source is operational, and wherein the spring is configured to extend so as to cause the calipers to move to the actuated position and to engage the pulley in an instance in which the performance of the actuation source is reduced.
3. A braking apparatus of claim 2 wherein the actuation source comprises a hydraulic pressure source, wherein the lock further comprises a housing in which the spring and the calipers are disposed, and wherein the housing further defines a port for receiving hydraulic fluid from the hydraulic pressure source which compresses the spring while the hydraulic pressure source is operational and continues to provide hydraulic fluid under pressure.
4. An aerial refueling boom system comprising:
first and second tubes, wherein the second tube is at least partially nested within the first tube, and wherein the second tube is also configured to be actuated by an actuation source so as to move relative to the first tube;
a pulley about which a cable wraps at least partially thereabout, wherein the pulley is operably mounted to and carried by the first tube and configured to rotate in response to movement of the second tube relative to the first tube as a result of an operable connection of the cable to the second tube; and
a lock having open and actuated positions and also operably mounted to and carried by the first tube of the boom system, wherein the lock in the actuated position is configured to engage the pulley so as to prevent rotation of the pulley and to also prevent extension of the second tube relative to the first tube, and wherein the lock is configured to be actuated by a reduction in performance attributable to a malfunction of the actuation source,
wherein the lock comprises a brake having calipers on opposite sides of the pulley, and wherein the brake is configured to have the calipers in the open position to permit rotation of the pulley in an instance in which the actuation source is operational and to have the calipers in the actuated position so as to engage the pulley and to prevent further rotation of the pulley in an instance in which the performance of the actuation source is reduced as a result of the malfunction of the actuation source.
5. An aerial refueling boom system of claim 4 wherein the lock further comprises a spring configured to actuate the calipers and to move the calipers from the open position to the actuated position, wherein the spring is configured to be compressed such that the calipers remain in the open position while the actuation source is operational, and wherein the spring is configured to extend so as to cause the calipers to move to the actuated position and to engage the pulley in an instance in which the performance of the actuation source is reduced.
6. An aerial refueling boom system of claim 5 wherein the actuation source comprises a hydraulic pressure source, wherein the lock further comprises a housing in which the spring and the calipers are disposed, and wherein the housing further defines a port for receiving hydraulic fluid from the hydraulic pressure source which compresses the spring while the hydraulic pressure source is operational and continues to provide hydraulic fluid under pressure.