IP Library › Granted Patent US 12,471,566
Granted Patent B2
US 12,471,566 · App. 18/464,977 · Granted Nov 18, 2025

Automatic animal feeding system for presenting and securing food pods

Inventors: Peter Franklin (Austin, TX); Jeffrey Pon (Southlake, TX); Matthew Firlik (Buena Park, CA); Eric Liu (Houston, TX); George Turvey (Brookdale, CA); Charles Putland (Ben Lomond, CA)
Assignee: PAWS FORWARD INC.
A01K5/0283A01K5/0114A01K5/0121A01K5/0128A01K5/0208A01K5/0225A01K5/0233A01K5/025A01K5/0275A01K5/0291A01K29/005G06F21/44G06V10/7715B67B7/38
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Quick Facts
Patent No.
US 12,471,566
App. No.
18/464,977
Granted
Nov 18, 2025
Kind
B2
Abstract

An automatic animal feeding system is provided. Embodiments of the automatic animal feeding system include an automatic food dispenser and a food canister storing food pods. The automatic food dispenser couples to the food canister, receives a food pod form the food canister, removes a cover or lid from the food pod, presents the opened food pod for pet consumption, disposes of the food pod into a disposal compartment that is sealed off from the ambient air, and implements other steps of an automatic feeding process. Aspects of the automatic feeding process can be efficiently implemented, for example, by actuating two motors based on data received from sensors of the automatic animal feeding system. Accordingly, embodiments of the present disclosure provide a compact, control-efficient, self-cleaning automatic animal feeding system that can continuously personalize feeding patterns or feed a pet with little to no human intervention over a period of time.

Claims (20)

1 . An automatic pet feeding system that implements an automatic feeding process, the automatic pet feeding system comprising:

a rotary plate positioned within an enclosure, configured to rotate about an axis, and comprising a food pod holder positioned a radial distance away from the axis, wherein the food pod holder corresponds to a vertical opening extending along a height of the rotary plate; and

a food canister comprising:

at least two chambers each positioned the radial distance away from the axis, wherein each chamber is configured to hold a plurality of vertically stacked food pods; and

a handle coupled to a rod extending along a height of the food canister in between the at least two chambers, wherein the rod comprises a food canister base blade, wherein turning the handle causes the food canister base blade to rotate along the rotary plate to selective lock or unlock the food canister from the enclosure and to selectively expose a food pod of the plurality of vertically stacked food pods to the rotary plate, wherein aligning the food pod holder below the food canister at the radial distance causes the food pod to drop from the food canister into the food pod holder, and wherein the food pod holder is configured to at least partially secure the food pod during at least a portion of the automatic feeding process.

2 . The automatic pet feeding system of claim 1 , wherein the food canister comprises a locking mechanism engageable to selectively remove the food canister from the enclosure of the automatic pet feeding system.

3 . The automatic pet feeding system of claim 1 , wherein the food canister comprises a lid comprising the handle configured to hinge about a first axis and rotate about a second axis to selectively unlock the food canister from the enclosure by rotating the food canister base blade forming a base of the food canister, wherein the food canister base blade allows the food pod to drop when the food canister is in a first orientation, wherein the food canister base blade prevents the food pod from dropping out of the food canister when the food canister is in a second orientation.

4 . The automatic pet feeding system of claim 1 , wherein the food pod holder coaxially aligns with a feeding port on the enclosure, wherein the feeding port coaxially aligns with the food pod holder, such that the feeding port and the food pod holder are equidistant from the axis.

5 . The automatic pet feeding system of claim 1 , comprising a base rotation motor actuatable to cause rotation of the rotary plate, wherein the enclosure and the food canister do not rotate with the rotary plate based on the actuation of the base rotation motor.

6 . The automatic pet feeding system of claim 1 , further comprising a control system, the control system comprising:

one or more processors; and

computer memory having computer-readable instructions embodied thereon, that, when executed by at least one processor of the one or more processors, causes the control system to:

generate and send a first control signal causing a base rotation motor to actuate to cause the rotary plate to rotate until the food pod holder of the rotary plate is positioned under the food canister, and

generate a second control signal causing the base rotation motor to actuate to cause the rotary plate to rotate until the food pod holder of the rotary plate is below a feeding port that coaxially aligns with the food pod holder.

7 . The automatic pet feeding system of claim 1 , wherein the food pod is unopened the food pod drops from the food canister into the food pod holder of the rotary plate.

8 . The automatic pet feeding system of claim 1 , wherein the food pod positioned within the food canister contacts a surface of the rotary plate until the food pod falls into the food pod holder of the rotary plate.

9 . The automatic pet feeding system of claim 1 , further comprising:

a base within the enclosure and having a plurality of pod chambers, the base being rotatable about a center point, wherein the food pod holder and each pod chamber of the plurality of pod chambers are radially equidistant from the center point.

10 . The automatic pet feeding system of claim 9 , wherein the rotary plate is configured to rotate at a different angular velocity than the base based on a gear ratio between the rotary plate and the base, wherein the gear ratio is defined by a gear assembly.

11 . The automatic pet feeding system of claim 1 , wherein the food pod positioned within the food canister contacts a top surface of the rotary plate as the rotary plate rotates and until the food pod holder is directly below the food canister at the radial distance at which point the food pod is gravity fed from the food canister into the food pod holder.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 24, 2023
From: FRANKLIN, PETER; PON, JEFFREY; FIRLIK, MATTHEW; LIU, ERIC; TURVEY, GEORGE; PUTLAND, CHARLES
To: PAWS FORWARD INC.
Reel/Frame 065328/0566 →
Continuity (2)
Provisional Application 63375651 · Sep 14, 2022
Related Publication 20240081280A1 · Mar 14, 2024
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