Aircraft Drive System
The present invention includes an aircraft drive system comprising a main rotor gearbox comprising a first and a second input; a first drive system comprising a first engine reduction gearbox connecting a first engine to the first input of the main rotor gearbox at a reduced shaft speed; and a second drive system independent from and redundant with the first drive system, the second drive system comprising a second engine reduction gearbox connecting a second engine to the second input of the main rotor gearbox at the reduced shaft speed.
1 . An aircraft drive system comprising:
a main rotor gearbox comprising a first and a second input;
a first drive system comprising a first engine reduction gearbox connecting a first engine to the first input of the main rotor gearbox at a reduced shaft speed; and
a second drive system independent from and redundant with the first drive system, the second drive system comprising a second engine reduction gearbox connecting a second engine to the second input of the main rotor gearbox at the reduced shaft speed.
2 . The drive system of claim 1 , wherein the first and second engine reduction gearboxes comprises a plurality of gears that reduce a shaft speed from the first and second engines from 10,000 or greater revolutions per minute at an input of the first and second engine reduction gearboxes, respectively, to about 6,000 or fewer revolutions per minute at an output of the first and second engine reduction gearboxes.
3 . The drive system of claim 1 , further comprising a drive shaft with flexible couplings connecting each of the first and second engine reduction gearboxes to the first and second inputs of the main rotor gearbox, respectively.
4 . The drive system of claim 1 , wherein each of the first and second engine reduction gearboxes is independently lubricated and cooled.
5 . The drive system of claim 1 , wherein each of the first and second engine reduction gearboxes are configured to be independently decoupled from the main rotor gearbox.
6 . The drive system of claim 1 , wherein an output shaft comprises a tail rotor disc brake and calipers for slowing or stopping the drive system.
7 . The drive system of claim 1 , wherein the main rotor gearbox comprises a low speed overhung planetary gear system.
8 . The drive system of claim 1 , further comprising a drive shaft assembly connected to an output of the main rotor gearbox, wherein the drive shaft assembly comprises one or more drive shafts, each of the drive shafts connected to one or more bearing assemblies, the drive shaft assembly having a proximal and a distal end, and an intermediate gear box connected to the distal end of the one or more drive shafts, wherein the intermediate gear box is connected to a tail rotor gearbox via a tail rotor drive shaft.
9 . The drive system of claim 1 , further comprising at least one of: one or more accessory gearboxes, one or more cooling fans, or one or more oil pumps, one or more hydraulic power packs, or one or more generators, each connected directly or indirectly to the main rotor gearbox independently.
10 . The drive system of claim 1 , further comprising an oil cooler mounted directly to the main rotor gearbox.
11 . The drive system of claim 1 , further comprising: a first accessory gearbox connecting the main rotor gearbox with one or more accessories, the first accessory gearbox having a non-pressurized lubrication system independent from a lubrication system associated with the main rotor gearbox; and a second accessory gearbox connecting the main rotor gearbox with one or more accessories, the second accessory gearbox having a non-pressurized lubrication system independent from a lubrication system associated with the main rotor gearbox, wherein the second accessory gearbox is independent from and redundant with the first accessory gearbox.
12 . The drive system of claim 1 , further comprising two or more hydraulic power packs wherein each of the two or more hydraulic power packs is independent from and redundant with the other hydraulic power packs.
13 . The drive system of claim 1 , further comprising two or more oil cooler blowers wherein each of the two or more oil cooler blowers is independent from and redundant with the other oil cooler blowers.
14 . The drive system of claim 1 , further comprising two or more generators wherein each of the two or more generators is independent from and redundant with the other generators.
15 . A method of providing redundant power to a main rotor gearbox comprising:
providing the main rotor gearbox comprising a first and a second input;
connecting a first drive system comprising a first engine reduction gearbox connecting a first engine to the first input of the main rotor gearbox at a reduced shaft speed; and
connecting a second drive system independent from and redundant with the first drive system, the second drive system comprising a second engine reduction gearbox connecting a second engine to the second input of the main rotor gearbox at the reduced shaft speed.
16 . The method of claim 15 , wherein the first and second engine reduction gearboxes comprises a plurality of gears that reduce a shaft speed from the first and second engines from 10,000 or greater revolutions per minute at an input of the first and second engine reduction gearboxes, respectively, to about 6,000 or fewer revolutions per minute at an output of the first and second engine reduction gearboxes.
17 . The method of claim 15 , further comprising connecting a drive shaft with flexible couplings between each of the first and second engine reduction gearboxes and the first and second inputs of the main rotor gearbox, respectively.
18 . The method of claim 15 , wherein each of the first and second engine reduction gearboxes is independently lubricated and cooled.
19 . The method of claim 15 , wherein each of the first and second engine reduction gearboxes are configured to be independently decoupled from the main rotor gearbox.
20 . The method of claim 15 , wherein an output shaft comprises a tail rotor disc brake and calipers for slowing or stopping the drive system.
21 . The method of claim 15 , wherein the main rotor gearbox comprises a low speed overhung planetary gear system.
22 . The method of claim 15 , further comprising connecting a drive shaft assembly to an output of the main rotor gearbox, wherein the drive shaft assembly comprises one or more drive shafts, each of the drive shafts connected to one or more bearing assemblies, the drive shaft assembly having a proximal and a distal end, and an intermediate gear box connected to the distal end of the one or more drive shafts, wherein the intermediate gear box is connected to a tail rotor gearbox via a tail rotor drive shaft.
23 . The method of claim 15 , further comprising providing at least one of: one or more accessory gearboxes, one or more cooling fans, or one or more oil pumps, one or more hydraulic power packs, or one or more generators, each connected directly or indirectly to the main rotor gearbox independently.
24 . The method of claim 15 , further comprising mounting an oil cooler directly to the main rotor gearbox.
25 . The method of claim 15 , further comprising mounting a first accessory gearbox connecting the main rotor gearbox with one or more accessories, the first accessory gearbox having a non-pressurized lubrication system independent from a lubrication system associated with the main rotor gearbox; and a second accessory gearbox connecting the main rotor gearbox with one or more accessories, the second accessory gearbox having a non-pressurized lubrication system independent from a lubrication system associated with the main rotor gearbox, wherein the second accessory gearbox is independent from and redundant with the first accessory gearbox.
26 . The method of claim 15 , further comprising mounting two or more hydraulic power packs wherein each of the two or more hydraulic power packs is independent from and redundant with the other hydraulic power packs.
27 . The method of claim 15 , further comprising mounting two or more oil cooler blowers wherein each of the two or more oil cooler blowers is independent from and redundant with the other oil cooler blowers.
28 . The method of claim 15 , further comprising mounting two or more generators wherein each of the two or more generators is independent from and redundant with the other generators.
29 . A helicopter, comprising:
a fuselage;
a main rotor gearbox comprising a first and a second input coupled to the fuselage;
at least a first and a second engine;
a first drive system comprising a first engine reduction gearbox connecting a first engine to the first input of the main rotor gearbox at a reduced shaft speed;
a second drive system independent from and redundant with the first drive system, the second drive system comprising a second engine reduction gearbox connecting a second engine to the second input of the main rotor gearbox at the reduced shaft speed; and
a rotor system connected to the main rotor gearbox to provide flight.