IP Library › Granted Patent US 10,220,954
Granted Patent B2
US 10,220,954 · App. 15/495,645 · Granted Mar 5, 2019

Aerial system thermal control system and method

Inventors: Wei Sun (Hangzhou, CN); Tong Zhang (Hangzhou, CN); Mengqiu Wang (Hangzhou, CN)
Assignee: Zero Zero Robotics Inc
B64D33/08B64C15/12B64C39/024B64D47/08H01L23/3675H01L23/467H05K7/20154H05K7/20209B64C2201/027B64C2201/042B64C2201/108B64C2201/14B64C2201/182
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Quick Facts
Patent No.
US 10,220,954
App. No.
15/495,645
Granted
Mar 5, 2019
Kind
B2
Abstract

An aerial vehicle including a set of rotors, a processor configured to configured to control the set of rotors for aerial vehicle flight, and a housing defining a plurality of cooling channels, wherein, for each rotor of the set, a projection of the processor and the cooling channels onto the respective rotor plane does not intersect the swept area of the rotor, and a distance from the rotor axis of a first rotor of the set to a cooling channel is less than 75% of a rotor diameter of the first rotor. A method for aerial vehicle operation, including providing an aerial vehicle including a rotor, a processor, and a housing, flying the aerial vehicle, and, while flying the aerial vehicle, actively cooling the processor, including, at the rotor, forcing airflow toward the processor.

Claims (36)

1. An aerial vehicle comprising:

a set of rotors, each rotor of the set defining a respective rotor axis, a respective rotor plane normal to the respective rotor axis, and a respective swept area within the respective rotor plane, wherein the rotor axes are substantially non-collinear;

a processor configured to control the set of rotors for aerial vehicle flight;

a housing defining a housing interior and a plurality of cooling channels, the housing interior fluidly coupled to an ambient environment by the plurality of cooling channels, the processor arranged within the housing interior, each rotor of the set rotationally coupled to the housing about the respective rotor axis; and

a rotor housing mechanically coupled to the housing, the rotor housing enclosing a rotor of the set and defining a plurality of airflow apertures fluidly connecting the rotor to an ambient environment, wherein each aperture is smaller than a threshold size;

wherein:

for each rotor of the set, a projection of the processor and the cooling channels onto the respective rotor plane does not intersect the respective swept area; and

a distance from the rotor axis of a first rotor of the set to a cooling channel of the plurality is less than 75% of a rotor diameter of the first rotor.

2. The aerial vehicle of claim 1 , wherein the rotor axes of the set of rotors are substantially parallel.

3. The aerial vehicle of claim 2 , wherein the swept areas of the set of rotors are substantially coplanar.

4. The aerial vehicle of claim 3 , wherein the aerial vehicle defines a lateral plane intersecting the processor and each rotor of the set.

5. The aerial vehicle of claim 3 , wherein:

the set of rotors comprises four rotors; and

for each rotor of the set, a respective rotor diameter is greater than 40% of a longest dimension of a convex hull of a projection of the aerial system onto the respective rotor plane.

6. The aerial vehicle of claim 1 , wherein the processor is arranged within a convex hull of the rotor axes of the set of rotors.

7. The aerial vehicle of claim 1 , wherein a processor distance from the rotor axis of the first rotor to the processor is less than 75% of a rotor diameter of the first rotor.

8. The aerial vehicle of claim 1 , wherein, for each rotor of the set, a sum of the swept areas of the set of rotors is greater than 50% of an area of a convex hull of a projection of the aerial system onto the respective rotor plane.

9. The aerial vehicle of claim 1 , further comprising a heatsink thermally coupled to a broad face of the processor, the heatsink arranged within the housing interior.

10. An aerial vehicle comprising:

a set of rotors, each rotor of the set defining a respective rotor axis, a respective rotor plane normal to the respective rotor axis, and a respective swept area within the respective rotor plane, wherein the rotor axes are substantially non-collinear;

a processor configured to control the set of rotors for aerial vehicle flight; and

a housing defining a housing interior and a plurality of cooling channels, the housing interior fluidly coupled to an ambient environment by the plurality of cooling channels, the processor arranged within the housing interior, each rotor of the set rotationally coupled to the housing about the respective rotor axis;

wherein:

for each rotor of the set, a projection of the processor and the cooling channels onto the respective rotor plane does not intersect the respective swept area; and

for each rotor of the set, a sum of the swept areas of the set of rotors is greater than 50% of an area of a convex hull of a projection of the aerial system onto the respective rotor plane.

11. The aerial vehicle of claim 10 , wherein the rotor axes of the set of rotors are substantially parallel.

12. The aerial vehicle of claim 11 , wherein the swept areas of the set of rotors are substantially coplanar.

13. The aerial vehicle of claim 12 , wherein the aerial vehicle defines a lateral plane intersecting the processor and each rotor of the set.

14. The aerial vehicle of claim 13 , wherein:

the set of rotors comprises four rotors; and

for each rotor of the set, a respective rotor diameter is greater than 40% of a longest dimension of a convex hull of a projection of the aerial system onto the respective rotor plane.

15. The aerial vehicle of claim 14 , wherein the processor is arranged within a convex hull of the rotor axes of the set of rotors.

16. The aerial vehicle of claim 10 , wherein a processor distance from the rotor axis of the first rotor to the processor is less than 75% of a rotor diameter of the first rotor.

17. The aerial vehicle of claim 10 , further comprising a rotor housing mechanically coupled to the housing, the rotor housing enclosing a rotor of the set and defining a plurality of airflow apertures fluidly connecting the rotor to an ambient environment, wherein each aperture is smaller than a threshold size.

18. The aerial vehicle of claim 10 , further comprising a heatsink thermally coupled to a broad face of the processor, the heatsink arranged within the housing interior.

19. The aerial vehicle of claim 10 , wherein a distance from the rotor axis of a first rotor of the set to a cooling channel of the plurality is less than 75% of a rotor diameter of the first rotor.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 8, 2018
From: ZERO ZERO ROBOTICS INC.
To: HANGZHOU ZERO ZERO TECHNOLOGY CO., LTD
Reel/Frame 044563/0200 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 2, 2017
From: SUN, WEI; ZHANG, TONG; WANG, MENGQIU
To: ZERO ZERO ROBOTICS INC.
Reel/Frame 042218/0956 →
Priority Claims (4)
CN 2015 1 0487412 · Aug 10, 2015 · national
CN 2015 1 0487415 · Aug 10, 2015 · national
CN 2015 1 0487744 · Aug 10, 2015 · national
CN 2015 1 0547151 · Aug 31, 2015 · national
Continuity (11)
Continuation In Part 15349749 · Nov 11, 2016
Continuation In Part PCTCN2016070583 · Jan 11, 2016
Continuation In Part PCTCN2016070579 · Jan 11, 2016
Continuation In Part PCTCN2016070581 · Jan 11, 2016
Continuation In Part PCTCN2015099339 · Dec 29, 2015
Provisional Application 62353337 · Jun 22, 2016
Provisional Application 62353344 · Jun 22, 2016
Provisional Application 62326792 · Apr 24, 2016
Provisional Application 62326600 · Apr 22, 2016
Provisional Application 62099512 · Jan 4, 2015
Related Publication 20170225796A1 · Aug 10, 2017
Cited By (3)
US 12,269,605 US 12,466,572 US 12,747,027