Viscous damped stream rotary deflector with internal spiraled damping ribs

11179738 ยท 2021-11-23

Assignee

Inventors

Cpc classification

International classification

Abstract

A viscous damped deflector in accordance with an embodiment of the present disclosure includes at least one sloped spiral rim extending from a lower surface of a top of the viscous damping chamber that rotates with the rotating distributor of the damped deflector, such that viscous fluid in the chamber is pumped to the center of the chamber as the distributor rotates.

Claims

1. A distributor of a rotary sprinkler comprising: a housing member including a plurality of curved grooves formed on a bottom surface thereof to impart torque on the distributor as water flows through the grooves; a shaft positioned along a central axis of the distributor and extending through the distributor such that the distributor is rotatable on the shaft; a viscous chamber formed in the housing and including a viscous material; a stator, fixed to the shaft and positioned in the viscous chamber; and a bearing provided in a top surface of the housing member and, configured to rotatably connect the distributor to the shaft and to form a top of the viscous chamber, such that the distributor rotates on the shaft, wherein the shaft does not pass through the bearing and the bearing seals the top of the viscous chamber, the bearing further comprising at least one rib formed on a bottom surface thereof and extending toward the stator, the at least one rib having a spiral shape and inclined inward toward the shaft and configured to avoid contact with the stator when the sprinkler is in operation.

2. The distributor of claim 1, wherein the viscous material is a high viscosity liquid.

3. The distributor of claim 1, wherein the at least one rib includes a plurality of ribs formed on the bottom surface of the bearing, each rib of the plurality of ribs having a spiral shape and inclined toward the shaft.

4. The distributor of claim 3, wherein each rib of the plurality of ribs is inclined toward the shaft such that the viscous material in the viscous chamber is driven toward the shaft as the distributor rotates.

5. The distributor of claim 1, further comprising a deflector, positioned just upstream of a bottom surface of the housing and connected to the shaft to deflect water away from the viscous chamber.

6. A sprinkler head assembly comprising: a nozzle housing including an inlet for pressurize water and an outlet downstream of the inlet; a rotating deflector, mounted on a central shaft extending through the nozzle housing and operable to deflect a flow of water out of the nozzle assembly; the deflector further comprising: a housing member including a plurality of curved grooves formed on a bottom surface thereof to impart torque on the distributor as water flows through the grooves and is directed out of the nozzle assembly such that the deflector rotates on the central shaft; a viscous chamber formed in the housing member and including a viscous material; a stator, fixed to the central shaft and positioned in the viscous chamber; and a bearing provided in a top surface of the housing member and configured to rotatably connect the distributor to the central shaft and to form a top of the viscous chamber, the bearing further comprising at least one rib formed on a bottom surface thereof and extending toward the stator, the at least one rib having a spiral shape and inclined inward toward the shaft and configured to avoid contact with the stator when the sprinkler head assembly is in operation, wherein the shaft does not pass through the bearing and the bearing seals the top of the viscous chamber.

7. The sprinkler head assembly of claim 6, wherein the viscous material is a high viscosity liquid.

8. The sprinkler head assembly of claim 6, wherein the at least one rib includes a plurality of ribs formed on the bottom surface of the bearing, each rib of the plurality of ribs having a spiral shape and inclined toward the shaft.

9. The sprinkler head assembly of claim 8, wherein each rib of the plurality of ribs is inclined toward the shaft such that the viscous fluid in the viscous chamber is driven toward the shaft as the distributor rotates.

10. The sprinkler head assembly of claim 6, further comprising a deflector, positioned just upstream of a bottom surface of the housing and connected to the shaft to deflect water away from the viscous chamber.

11. A distributor of a rotary sprinkler comprising: a housing member including a plurality of curved grooves formed on a bottom surface thereof to impart torque on the distributor as water flows through the grooves; a shaft positioned along a central axis of the distributor and extending through the distributor such that the distributor is rotatable on the shaft; a viscous chamber formed in the housing and including a viscous material; a stator, fixed to the shaft and positioned in the viscous chamber; and a bearing provided in a top surface of the housing member, configured to rotatably connect the distributor to the shaft and to form a top of the viscous chamber, such that the distributor rotates on the shaft, wherein the shaft does not pass through the bearing and the bearing seals the top of the viscous chamber, the stator further comprising at least one rib formed on a top surface thereof and extending toward the bearing, the at least one rib having a spiral shape and inclined inward toward the shaft and configured to avoid contact with the bearing.

12. The sprinkler head assembly of claim 11, wherein the viscous material is a high viscosity liquid.

13. The sprinkler head assembly of claim 11, wherein the at least one rib includes a plurality of ribs formed on the top surface of the bearing, each rib of the plurality of ribs having a spiral shape and inclined toward the shaft.

14. The sprinkler head assembly of claim 13, wherein each rib of the plurality of ribs is inclined toward the shaft such that the viscous fluid in the viscous chamber is driven toward the shaft as the distributor rotates.

15. The sprinkler head assembly of claim 11, further comprising a deflector, positioned just upstream of a bottom surface of the housing and connected to the shaft to deflect water away from the viscous chamber.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

(1) FIG. 1 is a cross section of a pop-up rotating stream deflector nozzle assembly, which is rotationally driven by the exiting streams with an internal viscous damping fluid and stator cavity in the rotating distributor.

(2) FIG. 2 is an enlarged view of the upper portion of this rotary nozzle assembly with the rotating stream distributor popped up out of the housing.

(3) FIG. 3 shows a side view of the upper bearing member of the rotating stream deflector nozzle assembly of FIG. 1.

(4) FIG. 4 shows a bottom view of the upper bearing member of the rotating stream deflector nozzle assembly of FIG. 1.

DETAILED DESCRIPTION OF THE EMBODIMENTS

(5) FIG. 1 is a cross section of a pop-up rotating stream deflector nozzle assembly housing 20 that is rotationally driven by exiting streams of water. A rotating stream distributor 1 is mounted in the housing 20. The distributor includes a viscous damping chamber 12 that provides for speed control to ensure that the distributor does not over-spin during use.

(6) In FIG. 2, the details of the assembly 20 and distributor 1 are more clearly illustrated. The rotating stream distributor 1 is positioned along the central axis of the nozzle assembly housing 20. The rotating stream distributor 1 is shown in FIG. 2 popped up out of the nozzle assembly housing 20. The lower housing 2 of the distributor 1 has stream collection grooves 30 on its outside bottom surface with off radius components that cause the exiting stream to impart a rotational turning torque on the distributor 1 to rotationally drive it. The speed of rotation is limited by viscous damping in the viscous damping chamber 12 of the distributor.

(7) In particular, the internal stator member 3 is press fitted onto center shaft 4. The upper bearing member 5 is press fitted into the opening 8 of the distributor 1 to be rotationally connected to the rotating distributor 1. A close running clearance is provided between the sloped spiral rib 10 on the bottom surface of the upper bearing member 5 and the stationary damping stator 3.

(8) The open volume between shaft 4 with its press fitted damping stator 3 and the upper bearing member 5 in opening 8 of the rotary distributor 1 in the cavity 12 of the rotary distributor 1 is filled with viscous grease or other viscous fluid. As the distributor 1 rotates with the bearing member 5, based on the action of the exiting water streams, its rotational speed is limited by the small clearance between the stator 3 and the sloped spiral ribs 10. The sloped spiral ribs 10 cause the viscous fluid to be sheared and the inward spiral slope of the ribs 10 also causes the fluid to be pumped towards the center. This increases the fluid pressure at the center which forces any water or air that may have entered the viscous damping cavity 12 to the outside circumference of the damping cavity and along the trailing low pressure edge of the spiral ribs 10. The air and water is then moved by the upward sloping of the internal cavity walls up to the top of the cavity 12. Thus, the ribs 10 aid in viscous braking and ensure that viscosity of the fluid stays more or less constant by ensuring that water and air in the cavity are separated from the viscous fluid.

(9) In an embodiment, a small deflector piece 15 may be provided on the stationary shaft 4 just upstream of the rotating joint between the rotating distributor 1 and the stationary shaft 4 to provide added protection against water being driven into the viscous damping cavity 12.

(10) FIG. 3 illustrates a side view of the bearing member 5 with the inward slope of the spiral ribs 10 more clearly visible. FIG. 4 illustrates a bottom view of the bearing member 5 showing the spiral shape of the spiral ribs 10 more clearly shown.

(11) While the sloped spiral rib 10 is preferably positioned on a bottom surface of the bearing member 5, in the alternative, the rib may be positioned on a top surface of the stator 3 and extend upward toward the bearing. Otherwise, the structure of the rib 10 is substantially the same as described above. That is, the ribs 10 have a spiral shape and are inclined, or sloped toward the shaft 4. In this embodiment, a plurality of ribs 10 may be provided on the top surface of the stator 3, if desired.

(12) Although the present invention has been described in relation to particular embodiments thereof, many other variations and modifications and other uses will become apparent to those skilled in the art.