IP Library › Granted Patent US 12,607,198
Granted Patent B2
US 12,607,198 · App. 18/568,255 · Granted Apr 21, 2026

Nozzle for a fan assembly

Inventors: Philip Tennison Reilly (Gloucester, GB); Samuel Douglas Clifford (Malmesbury, GB); Ben Thomas Edmonds (Swindon, GB)
Assignee: Dyson Technology Limited
F04D29/4246F04D25/08F04D29/464F05D2240/128F05D2250/52
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Quick Facts
Patent No.
US 12,607,198
App. No.
18/568,255
Granted
Apr 21, 2026
Kind
B2
Abstract

A nozzle for a fan assembly is described. The nozzle includes a first duct through which a first airflow moves, and a second duct through which a second airflow moves. The first duct has a first outlet for emitting the first airflow, and the second duct has a second outlet for emitting the second airflow. The first and the second outlets are arranged such that the first and second airflows collide to generate a combined airflow having a direction defined by the relative flow rates of the first and second airflows. The second duct has a constant restriction, and the first duct has a variable restriction to vary the flow rate of the first airflow.

Claims (42)

1 . A nozzle for a fan assembly, the nozzle comprising:

a housing having a base defining an inlet, the base arranged substantially parallel to a horizontal substrate that supports the fan assembly;

a first duct through which a first airflow moves, the first duct having a first outlet for emitting the first airflow; and

a second duct through which a second airflow moves, the second duct having a second outlet for emitting the second airflow,

wherein:

the first and second outlets are arranged such that the first and second airflows collide to generate a combined airflow having a direction defined by the relative flow rates of the first and second airflows, and the first and second outlets are arranged such that the first airflow is emitted along a first flow axis, the second airflow is emitted along a second flow axis, and the first flow axis and the second flow axis intersect at an angle between 120 and 160 degrees relative to the base,

the first duct is movable between a maximum flow position and a minimum flow position such that the first outlet has a variable restriction and is configured to vary the flow rate of the first airflow, and

the second duct is fixed such that the second outlet is unrestricted and is configured to provide the second airflow at a constant flow rate.

2 . The nozzle as claimed in claim 1 , wherein the first and the second outlets are arranged such that the first airflow is emitted in an upward direction relative to a base of the nozzle, and the second airflow is emitted in a downward direction relative to the base.

3 . The nozzle as claimed in claim 1 , wherein the nozzle comprises a body moveable to vary the restriction of the first duct.

4 . The nozzle as claimed in claim 3 , wherein the body is located within or forms part of the first duct.

5 . The nozzle as claimed in claim 3 , wherein the body is moveable to vary a size of the first outlet.

6 . The nozzle as claimed in claim 3 , wherein the body comprises a portion of the first duct.

7 . The nozzle as claimed in claim 6 , wherein the portion slides relative to a further portion of the first duct.

8 . The nozzle as claimed in claim 7 , wherein the portion is located downstream of the further portion, and the portion slides over an outer surface of the further portion.

9 . The nozzle as claimed in claim 3 , wherein the nozzle comprises an actuator for moving the body, the actuator comprising an electric motor.

10 . A fan assembly comprising the nozzle as claimed in claim 1 .

11 . The fan assembly as claimed in claim 10 , wherein the restriction of the first duct is variable between a maximum size and a minimum size, the combined airflow has a first flow direction when the restriction is at the maximum size and a second flow direction when the restriction is at the minimum size, and the first and second flow directions differ by at least 45 degrees.

12 . The fan assembly as claimed in claim 10 , wherein the restriction of the first duct is variable to a size in which, when the fan assembly rests on a horizontal surface, the combined airflow has a flow direction having an angle of between −10 and +10 degrees relative to the horizontal surface.

13 . The fan assembly as claimed claim 10 , wherein, when the fan assembly rests on a horizontal surface, the first airflow is emitted from the first outlet in an upward direction and the second airflow is emitted from the second outlet in a downward direction.

14 . A nozzle for a fan assembly, the nozzle comprising:

a substantially spherical or ellipsoid housing;

a first duct through which a first airflow moves, the first duct having a first outlet for emitting the first airflow;

a second duct through which a second airflow moves, the second duct having a second outlet for emitting the second airflow; and

a curved or dome-shaped guide body extending between the first and second outlets, and arranged such that airflows emitted from the first and second outlets attach to a surface of the guide body by virtue of the Coanda effect,

wherein:

the first and second outlets are arranged such that the first and second airflows collide to generate a combined airflow having a direction defined by the relative flow rates of the first and second airflows,

the first duct is movable between a maximum flow position and a minimum flow position such that the first outlet has a variable restriction and is configured to vary the flow rate of the first airflow, and

the second duct is fixed such that the second outlet has a constant restriction, and

the second outlet emits the second airflow with a constant flow rate.

15 . The nozzle as claimed in claim 14 , wherein the first and second outlets are arranged such that the first airflow is emitted along a first flow axis, the second airflow is emitted along a second flow axis, and the first flow axis and the second flow axis intersect at an angle of between 120 and 160 degrees.

16 . The nozzle as claimed in claim 14 , wherein the first and the second outlets are arranged such that the first airflow is emitted in an upward direction relative to a base of the nozzle, and the second airflow is emitted in a downward direction relative to the base.

17 . The nozzle as claimed in claim 14 , wherein the nozzle comprises a body moveable to vary the restriction of the first duct.

18 . The nozzle as claimed in claim 17 , wherein the body is a portion of the first duct that slides relative to a further portion of the duct.

19 . A nozzle for a fan assembly, the nozzle comprising:

a housing having a base configured to attach the fan assembly, the base arranged substantially parallel to a horizontal substrate supporting the fan assembly;

a first duct through which a first airflow moves, the first duct having a first outlet for emitting the first airflow; and

a second duct through which a second airflow moves, the second duct having a second outlet for emitting the second airflow,

wherein:

the first and second outlets are arranged such that the first airflow is emitted in an upward direction relative to the base of the nozzle, and the second airflow is emitted in a downward direction relative to the base of the nozzle and the first and second airflows collide to generate a combined airflow having a direction defined by the relative flow rates of the first and second airflows,

the first duct is movable between a maximum flow position and a minimum flow position such that the first outlet has a variable cross section and is configured to vary the flow rate of the first airflow, and

the second outlet is fixed such that it has a fixed cross section and is configured to emit the second airflow with a constant flow rate.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 24, 2024
From: REILLY, PHILIP TENNISON; CLIFFORD, SAMUEL DOUGLAS; EDMONDS, BEN THOMAS
To: DYSON TECHNOLOGY LIMITED
Reel/Frame 067813/0502 →
Priority Claims (1)
GB 2108927 · Jun 22, 2021 · national
Continuity (1)
Related Publication 20240271634A1 · Aug 15, 2024
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