IP Library Granted Patent US 12,642,724
Granted Patent B2
US 12,642,724 · App. 18/755,998 · Granted Jun 2, 2026

Patient transport apparatus with electro-mechanical braking system

Inventors: Joseph Adam Upchurch (Houston, TX); Tyler Ethen (Portage, MI); Gary L. Bartley (Kalamazoo, MI); William Dwight Childs (Plainwell, MI); Ryan Ross (New Carlisle, IN)
Assignee: Stryker Corporation
A61G7/0528A61G1/0287A61G7/018A61G7/08A61B2562/0252A61G7/1046A61G7/1067A61G2203/30A61G2203/32
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Quick Facts
Patent No.
US 12,642,724
App. No.
18/755,998
Granted
Jun 2, 2026
Kind
B2
Abstract

A patient transport apparatus comprises a base, a patient support deck, a wheel assembly, and a braking system. The wheel assembly includes a wheel and a braking mechanism. The braking system includes a linkage assembly, a manual actuator, and an electrical braking assembly. The linkage assembly is arranged to place the braking mechanism in a braked state and a released state. The manual actuator moves the linkage assembly manually to place the braking mechanism in the braked state and the released state. The electrical braking assembly includes a driving assembly that moves to a first position and to a second positing that causes the linkage assembly to place the braking mechanism in the braked state and the released state. The linkage assembly is movable relative to the driving assembly to enable the braking mechanism to be manually actuated with the manual actuator.

Claims (30)

1 . A patient transport apparatus comprising:

a support structure including a base arranged for movement along a floor surface, and a patient support deck to support a patient;

a movement mechanism coupled to the base and configured for selective operation between a first state to at least partially inhibit movement of the base along the floor surface in one or more degrees of freedom, and a second state to permit movement of the base along the floor surface in at least one degree of freedom;

a manual operation assembly including a linkage assembly operatively attached to the movement mechanism and defining a positioning slot, and a foot pedal coupled to the linkage assembly and arranged for selective user engagement to move the linkage assembly manually to change operation of the movement mechanism between the first state and the second state; and

an electric operation assembly including a driving assembly having a positioning member disposed in the positioning slot of the linkage assembly, and an electric motor configured to move the positioning member along the positioning slot and into torque transferring engagement with the linkage assembly to electrically change operation of the movement mechanism between the first state and the second state.

2 . The patient transport apparatus of claim 1 , wherein the positioning slot provides a travel path for the positioning member, the travel path sized so that the positioning member is movable along the travel path from a center of the travel path to facilitate relative movement between the driving assembly and the movement mechanism to enable the movement mechanism to be manually actuated with the foot pedal.

3 . The patient transport apparatus of claim 2 , wherein the electric operation assembly includes a drive shaft rotatably coupled to the electric motor, the driving assembly coupled to the drive shaft such that a rotation of the drive shaft rotates the positioning member.

4 . The patient transport apparatus of claim 3 , wherein the driving assembly comprises a driving member coupled to the drive shaft, the positioning member extending from an outer surface of the driving member.

5 . The patient transport apparatus of claim 4 , wherein the linkage assembly comprises an actuation member rotatably coupled to the driving member, the actuation member comprising an outer surface having the positioning slot defined therethrough, the positioning member configured to contact an inner surface of the positioning slot to rotate the actuation member.

6 . The patient transport apparatus of claim 5 , wherein the linkage assembly comprises a link coupled to the actuation member and to the movement mechanism such that a rotation of the actuation member causes the link to operate the movement mechanism to change operation of the movement mechanism between the first state and the second state.

7 . The patient transport apparatus of claim 6 , wherein the actuation member includes a sector gear; and

wherein the link includes an engagement slot configured to receive the sector gear therein, and a plurality of engagement teeth configured to contact the sector gear with the sector gear positioned within the engagement slot.

8 . The patient transport apparatus of claim 7 , wherein the positioning slot comprises a length that is longer than a length of the positioning member such that the sector gear is freely rotatable with respect to the driving member to facilitate relative movement between the driving assembly and the movement mechanism to enable the movement mechanism to be manually actuated with the foot pedal.

9 . The patient transport apparatus of claim 7 , wherein the linkage assembly includes a second engagement slot defined through the link, a second plurality of engagement teeth, and a second sector gear positioned within the second engagement slot to contact the second plurality of engagement teeth; and

wherein the manual operation assembly includes a shaft coupled to the foot pedal and disposed in rotational communication with the second sector gear to move the link when the foot pedal is manually actuated.

10 . The patient transport apparatus of claim 9 , wherein the linkage assembly includes a third engagement slot defined through the link, a third plurality of engagement teeth, a third sector gear positioned within the third engagement slot to engage the third plurality of engagement teeth, and a hex shaft coupled to the third sector gear and to the movement mechanism such that a rotation of the third sector gear rotates the hex shaft to change operation of the movement mechanism between the first state and the second state.

11 . The patient transport apparatus of claim 3 , wherein the electric operation assembly includes a sensor assembly configured to sense a position of the positioning member.

12 . The patient transport apparatus of claim 11 , wherein the electric motor of the electric operation assembly is further configured to move the positioning member along the positioning slot between a first position to place the movement mechanism in the first state, and a second position to place the movement mechanism in the second state.

13 . The patient transport apparatus of claim 12 , wherein the electric motor of the electric operation assembly is further configured to move the positioning member along the positioning slot to a home position between the first position and the second position to allow the linkage assembly to move relative to the driving assembly to enable the movement mechanism to be manually actuated with the foot pedal.

14 . The patient transport apparatus of claim 13 , wherein the sensor assembly comprises:

a position indicator orientated with respect to the positioning member; and

a sensor arm configured to contact the position indicator with the positioning member in the home position.

15 . The patient transport apparatus of claim 14 , wherein the position indicator is coupled to the drive shaft such that a rotation of the drive shaft rotates the position indicator.

16 . The patient transport apparatus of claim 3 , wherein the electrical operation assembly comprises a torque limiting device operable between the electric motor and the positioning member to limit an amount of torque being applied to the positioning member by the electric motor.

17 . The patient transport apparatus of claim 1 , further comprising a wheel assembly coupled to the base and to the movement mechanism; and

wherein the movement mechanism is configured to brake the wheel assembly during operation in the first state, and to release the wheel assembly during operation in the second state.

18 . The patient transport apparatus of claim 1 , further comprising a control assembly including a sensing device to sense a proximity of a user, and a controller coupled to the sensing device and the electrical operation assembly, the controller configured to operate the electric operation assembly upon receiving a signal from the sensing device indicating a sensed proximity of the user.

19 . The patient transport apparatus of claim 18 , wherein the control assembly further includes a position sensor coupled to the controller and configured to sense a position of the movement mechanism, and a state indicator coupled to the controller;

wherein the controller is configured to operate the state indicator to indicate the sensed position of the movement mechanism; and

wherein the state indicator and the sensing device are coupled to the foot pedal.

Assignments (2)
CHANGE OF ADDRESS Recorded Dec 18, 2024
From: STRYKER CORPORATION
To: STRYKER CORPORATION
Reel/Frame 069737/0184 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 2, 2024
From: ETHEN, TYLER; ROSS, RYAN; UPCHURCH, JOSEPH ADAM; BARTLEY, GARY L.; CHILDS, WILLIAM DWIGHT
To: STRYKER CORPORATION
Reel/Frame 068165/0309 →
Continuity (4)
Continuation 17022825 · Sep 16, 2020
Continuation 16210876 · Dec 5, 2018
Provisional Application 62609025 · Dec 21, 2017
Related Publication 20240342031A1 · Oct 17, 2024
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