Control assembly coupled to handle of an implement

Information

  • Patent Grant
  • 11638397
  • Patent Number
    11,638,397
  • Date Filed
    Monday, February 10, 2020
    4 years ago
  • Date Issued
    Tuesday, May 2, 2023
    a year ago
  • Inventors
  • Original Assignees
    • Techtronic Cordless GP (Anderson, SC, US)
  • Examiners
    • Behrens; Adam J
    Agents
    • Michael Best & Friedrich LLP
Abstract
A handle is configured to be coupled to an implement to guide the implement during operation. The handle includes a first member configured to be coupled to a main body of the implement, a second member movably coupled to the first member between a retracted position and an extended position, and a locking mechanism coupled between the first member and the second member. The locking mechanism is moveable between a locked position, in which the second member is fixed relative to the first member, and an unlocked position, in which the second member is movable relative to the first member. The handle also includes a control assembly configured to allow operation of the implement in response to the locking mechanism being moved into the locked position.
Description
FIELD OF THE DISCLOSURE

The present disclosure relates to an implement including a handle (e.g., a telescoping handle), and more particularly to a control assembly coupled to the telescoping handle that controls operation of the implement.


SUMMARY

In one aspect, an implement is configured to be supported on a surface. The implement includes a main body, a working member coupled to the main body, and a motor coupled to the main body. The motor is operable to move the working member. The implement also includes a handle configured to guide the implement during operation. The handle includes a first member coupled to the main body, a second member movably coupled to the first member between a retracted position and an extended position, and a locking mechanism coupled between the first member and the second member, the locking mechanism moveable between a locked position, in which the second member is fixed relative to the first member, and an unlocked position, in which the second member is movable relative to the first member. The implement further includes a control assembly configured to allow operation of the implement in response to the locking mechanism being moved into the locked position.


In another aspect, a handle is configured to be coupled to an implement to guide the implement during operation. The handle includes a first member configured to be coupled to a main body of the implement, a second member movably coupled to the first member between a retracted position and an extended position, and a locking mechanism coupled between the first member and the second member. The locking mechanism is moveable between a locked position, in which the second member is fixed relative to the first member, and an unlocked position, in which the second member is movable relative to the first member. The handle also includes a control assembly configured to allow operation of the implement in response to the locking mechanism being moved into the locked position.


In yet another aspect, a handle is configured to be coupled to an implement to guide the implement during operation. The handle includes a first member configured to be coupled to a main body of the implement, a second member movably coupled to the first member between a retracted position and an extended position, and a locking mechanism coupled between the first member and the second member. The locking mechanism is moveable between a locked position, in which the second member is fixed relative to the first member, and an unlocked position, in which the second member is movable relative to the first member. The handle also includes a control assembly having a control processor configured to detect when the locking mechanism is in the unlocked position, disable operation of the implement when the locking mechanism is in the unlocked position, detect when the locking mechanism is in the locked position, and allow operation of the implement when the locking mechanism is in the locked position.


Other aspects of the disclosure will become apparent by consideration of the detailed description and accompanying drawings.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 is a perspective view of an implement (e.g., a lawnmower) including a telescoping handle in a retracted position.



FIG. 2 is a perspective view of the lawnmower of FIG. 1 illustrating the telescoping handle in an extended position.



FIG. 3 is a detailed perspective view of the telescoping handle of FIG. 1 illustrating a portion of a locking mechanism of the telescoping handle.



FIG. 4 is a first exploded view of the locking mechanism of FIG. 3 interfacing with a control assembly according to one embodiment of the disclosure.



FIG. 5 is a second exploded view of the locking mechanism of FIG. 3.



FIG. 6 is a cross sectional view of the locking mechanism taken along line 6-6 of FIG. 3 illustrating the locking mechanism in a locked position while the telescoping handle is in the retracted position.



FIG. 7 is a cross sectional view of the locking mechanism taken along line 6-6 of FIG. 3 illustrating the locking mechanism in an unlocked position allowing the telescoping handle to move between the retracted position and the extended position.



FIG. 8 is a cross sectional view of the locking mechanism taken along line 6-6 of FIG. 3 illustrating the locking mechanism in the locked position while the telescoping handle is in the extended position enabling operation of the lawnmower.



FIG. 9 is an exploded view of the telescoping handle of FIG. 1 interfacing with a control assembly according to another embodiment of the disclosure.



FIG. 10 is a cross sectional view of the locking mechanism of FIG. 9 illustrating the locking mechanism in a locked position while the telescoping handle is in the retracted position.



FIG. 11 is a cross sectional view of the locking mechanism of FIG. 9 illustrating the locking mechanism in an unlocked position allowing the telescoping handle to move between the retracted position and the extended position.



FIG. 12 is a cross sectional view of the locking mechanism of FIG. 9 illustrating the locking mechanism in the locked position while the telescoping handle is in the extended position enabling operation of the lawnmower.





DETAILED DESCRIPTION

Before any embodiments of the disclosure are explained in detail, it is to be understood that the disclosure is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The disclosure is capable of supporting other embodiments and being practiced or being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting. Terms of degree, such as “substantially,” “about,” “approximately,” etc. are understood by those of ordinary skill to refer to reasonable ranges outside of the given value, for example, general tolerances associated with manufacturing, assembly, and use of the described embodiments.



FIG. 1 illustrates an implement (e.g., a self-propelled, walk-behind lawnmower 10) including a main body 15 supported above a surface 20 by wheels 25 coupled to the main body 15. The main body 15 also includes a motor housing 30 that supports an electric motor and at least one battery pack operable to drive the electric motor. In particular, the electric motor and the battery pack are electrically coupled to a control processor 35 coupled to the main body 15 (e.g., the motor housing 30) for the control processor 35 to selectively control the electric motor. The main body 15 further includes a working member (e.g., a rotatable blade 40) that is driven by the electric motor. In the illustrated embodiment, the electric motor can also drive at least one of the wheels 25 for the lawnmower 10 to be self-propelled. In other embodiments, the implement can be different (e.g., a snow thrower, ground tiller, etc.) such that the working member can be, for example, a snow thrower auger, a ground tilling blade, etc.


With reference to FIGS. 1 and 2, the lawnmower 10 includes a telescoping handle 45 pivotably coupled to the main body 15 about an axis 50 between an operating position (shown in FIGS. 1 and 2) and a storage position (not shown, but where the telescoping handle 45 is pivoted towards the main body 15 about the axis 50 to be positioned above the main body 15). Specifically, the telescoping handle 45 includes a lower portion 55 having two outer members (e.g., outer tubes 60) coupled to the main body 15 about the axis 50. The telescoping handle 45 also includes an upper portion 65 having two inner members (e.g., inner tubes 70) each received within one of the outer tubes 60 such that the telescoping handle 45 is slidable between a retracted position (FIG. 1) and an extended position (FIG. 2). The upper portion 65 also includes at least one actuation member (e.g., an actuation bail 75) electrically coupled to the control processor 35. In other embodiments, the control processor 35 can be coupled to the telescoping handle 45 rather than the main body 15. In further embodiments, the inner tubes 70 can be pivotably coupled to the main body 15 and the outer tubes 60 can include the bail 75. In yet further embodiments, the outer and inner tubes 60, 70 can be pivotably coupled to each other to pivot between the retracted position and the extended position.


As shown in FIG. 3, the telescoping handle 45 includes a locking mechanism 80 coupled between the lower portion 55 and the upper portion 65 of the telescoping handle 45. In the illustrated embodiment, the telescoping handle 45 includes two locking mechanisms 80 each associated with one pair of the outer and inner tubes 60, 70. In other embodiments, the telescoping handle 45 can include one locking mechanism 80 associated with one pair of the outer and inner tubes 60, 70. Both locking mechanisms 80 are substantially similar, as such, only one locking mechanism 80 is discussed in detail below.


With reference to FIGS. 4 and 5, the locking mechanism 80 includes a housing 85 fixed to the outer tube 60 and supports an actuation member (e.g., a lever 90), a cam member 95, a sleeve 100, and a biasing member 105 (e.g., a coil spring). The lever 90 is rotatable about an axis 110 between a locked position (illustrated in solid lines within FIG. 3) and an unlocked position (illustrated in broken lines within FIG. 3). The housing 85 supports the lever 90 to inhibit the lever 90 from linear movement along the axis 110. The illustrated lever 90 includes a post 115 received within an aperture 120 of the cam member 95 and protrusions 125 extending toward the cam member 95. The protrusions 125 engage raised surfaces 130 of the cam member 95 when the lever 90 is in the locked position, and the protrusions 125 engage recessed surfaces 135 of the cam member 95 when the lever 90 is in the unlocked position. The cam member 95 also includes tabs 140 received within slots 145 of the housing 85 (FIG. 6) to inhibit rotation of the cam member 95 about the axis 110, but allow axial movement of the cam member 95 along the axis 110.


With continued reference to FIGS. 4 and 5, the cam member 95 includes a pin 150 received within a bore 155 of the sleeve 100 and ribs 160 received within slots 165 of the sleeve 100. In the illustrated embodiment, the sleeve 100 is coupled to the cam member 95 (e.g., by the engagement between the ribs 160 and the slots 165) such that the sleeve 100 moves with the cam member 95 axially along the axis 110. In other embodiments, the cam member 95 can move relative to the sleeve 100. The illustrated biasing member 105 abuts the outer tube 60 to bias the cam member 95 towards the lever 90. In addition, the axis 110 extends through (e.g., is concentric) with an aperture 170 formed in the outer tube 60, and the pin 150 of the cam member 95 extends through the aperture 170. In other embodiments, the lever 90 can be a push-button actuator moveable along the axis 110, a pivotable actuator moveable transverse to the axis 110, a slidable actuator moveable transverse to the axis 110, etc. operable to move the pin 150.


With continued reference to FIGS. 4 and 5, the lawnmower 10 includes a control assembly 175 in communication with one locking mechanism 80. The illustrated control assembly 175 includes a position sensor 180 coupled to an inner surface 185 of the inner tube 70 such that the position sensor 180 aligns with a lower aperture 190 formed in the inner tube 70. As such, the position sensor 180 moves with the inner tube 70 as the telescoping handle 45 moves between the extended position and the retracted position. The position sensor 180 is electrically coupled to the control processor 35 by wires routed internally through the outer and inner tubes 60, 70. In the illustrated embodiment, the position sensor 180 is a push-button contact switch including a plunger 195 moveable between a first state (e.g., an extended state; FIG. 7) and a second state (e.g., a retracted state; FIG. 8) with the plunger 195 biased into the extended state. In other embodiments, the position sensor 180 can be a different type of switch or sensor (e.g., toggle switch, slide switch, infrared sensor, etc.) that is actuated by direct contact or by proximity of an object. In further embodiments, the lawnmower 10 can include two control assemblies 175, each associated with one locking mechanism 80.


As shown in FIGS. 6-8, the illustrated control assembly 175 enables operation of the lawnmower 10 (e.g., the control processor 35 enables the electric motor to drive the blade 40) when the locking mechanism 80 is in the locked position (FIG. 8) and the telescoping handle 45 is in the extended position (FIG. 2). Conversely, the control assembly 175 disables operation of the lawnmower 10 (e.g., the control processor 35 disables the electric motor) when the locking mechanism 80 is unlocked (FIG. 7) allowing movement of the telescoping handle 45 between the extended position and the retracted position. In addition, the control assembly 175 also disables operation of the lawnmower 10 when the locking mechanism 80 is in the locked position (FIG. 6) and the telescoping handle 45 is in the retracted position (FIG. 1).


In particular, when the telescoping handle 45 is in the retracted position (FIG. 1), the lever 90 can move into the locked position (FIG. 6) such that the protrusions 125 of the lever 90 engage the raised surfaces 130 of the cam member 95. In turn, the cam member 95 is axially moved inwardly toward the outer and inner tubes 60, 70 against the force of the biasing member 105. As shown in FIG. 6, the pin 150 of the cam member 95 extends through an upper aperture 200 (FIG. 2) formed in the inner tube 70 to lock the telescoping handle 45 in the retracted position. As the position sensor 180 is associated with the lower aperture 190—and not the upper aperture 200—of the inner tube 70, the pin 150 does not actuate the position sensor 180. As a result, the control assembly 175 disables operation of the lawnmower 10 (e.g., actuation of the bail 75 will not actuate rotation of the blade 40). In other words, when the locking mechanism 80 is in the locked position and the telescoping handle 45 is in the retracted position, the control processor 35 disables operation of the lawnmower 10.


Once the lever 90 is moved into the unlocked position (FIG. 7), the protrusions 125 slide on the cam member 95 to be received within the recessed surfaces 135 of the cam member 95. In turn, the cam member 95 is axially moved outwardly by the force of the biasing member 105 and the pin 150 is then spaced from the inner tube 70. The telescoping handle 45 can then move from the retracted position (FIGS. 1 and 6) to the extended position (FIGS. 2 and 7) such that the pin 150 aligns with the lower aperture 190 of the inner tube 70 and the position sensor 180. As the pin 150 still does not contact the position sensor 180 when the locking mechanism 80 is in the unlocked position (FIG. 7), the control processor 35 continues to disable operation of the lawnmower 10.


With reference to FIG. 8, the lever 90 is then moved back into the locked position to move the protrusions 125 back into engagement with the raised surfaces 130 of the cam member 95. In turn, the cam member 95 is axially moved inwardly for the pin 150 to be received within the lower aperture 190 of the inner tube 70. The pin 150 also moves to actuate the position sensor 180 by engaging the plunger 195. Accordingly, the control processor 35 detects the telescoping handle 45 is locked in the extended position to enable operation of the lawnmower 10 once the bail 75 is actuated. The control assembly 175 ensures the telescoping handle 45 is in the extended position, which provides a safe distance between the operator of the lawnmower 10 and the blade 40 during operation.



FIGS. 9-12 illustrate a control assembly 375 according to another embodiment for interfacing with the locking mechanism 80. The control assembly 375 is similar to the control assembly 175; therefore, similar components are designated with similar references numbers each incremented by 200. At least some differences and/or at least some similarities between the control assemblies 175, 375 will be discussed in detail below. In addition, components or features described with respect to only one or some of the embodiments described herein are equally applicable to any other embodiments described herein.


The illustrated control assembly 375 is coupled to the locking mechanism 80 such that the inner tubes 70 move relative to the control assembly 375 when the telescoping handle 45 moves between the extended position and the retracted position. In particular, the control assembly 375 includes a position sensor 380 having a first sensor 405 fixed relative to the outer tube 60. In the illustrated embodiment, the first sensor 405 is coupled to the sleeve 100, which is fixed to the outer tube 60. In other embodiments, the first sensor 405 can be spaced from the sleeve 100. The position sensor 380 also includes a second sensor 410 coupled to the pin 150, which moves axially relative to the sleeve 100 and the first sensor 405. Accordingly, the position sensor 380 is a hall effect sensor that detects a position of the second sensor 410 relative to the first sensor 405. The position sensor 380 is electrically coupled to the control processor 35 by wires routed externally relative to the outer and inner tubes 60, 70.


When the telescoping handle 45 is in the retracted position (FIG. 1), the locking mechanism 80 can move into the locked position (FIG. 10) in which the pin 150 extends through the upper aperture 200 of the inner tube 70 to lock the telescoping handle 45 in the retracted position. With reference to FIG. 10, the second sensor 410 is positioned relative to the first sensor 405 (e.g., misaligned with the first sensor 405 along the axis 110) such that the control assembly 375 detects the locking mechanism 80 is in the locked position. In other embodiments, the second sensor 410 can be positioned in alignment with the first sensor 405 when the locking mechanism 80 is in the locked position. In some embodiments, another position sensor can detect when the locking mechanism 80 is in the locked position while the telescoping handle 45 is in the retracted position to disable operation of the lawnmower 10. For example, the control assembly 375 can include a separate position sensor (similar to the position sensor 180) associated with the upper aperture 200 in which the pin 150 engages to disable operation of the lawnmower 10. In further embodiments, the locking mechanism 80 can be moved into a second locked position (different than the locked position shown in FIG. 12) associated with when the telescoping handle 45 is in the retracted position to disable operation of the lawnmower 10.


Once the locking mechanism 80 is moved into the unlocked position (FIG. 11), the second sensor 410 is moved relative to the first sensor 405 (e.g., in alignment with the first sensor 405 along the axis 110) such that the control assembly 375 detects the locking mechanism 80 is in the unlocked position. In other embodiments, the second sensor 410 can be positioned out of alignment with the first sensor 405 when the locking mechanism 80 is in the unlocked position. As a result, the control assembly 375 disables operation of the lawnmower 10.


With reference to FIG. 12, the locking mechanism 80 can move into the locked position in which the pin 150 extends through the lower aperture 190 of the inner tube 70 to lock the telescoping handle 45 in the extended position. The second sensor 410 is then positioned relative to the first sensor 405 (e.g., misaligned with the first sensor 405 along the axis 110) such that the control assembly 375 detects the locking mechanism 80 is in the locked position. Again, in other embodiments, the second sensor 410 can be positioned in alignment with the first sensor 405 when the locking mechanism 80 is in the locked position. Accordingly, the control assembly 375 detects the telescoping handle 45 is locked in the extended position to enable operation of the lawnmower 10 once the bail 75 is actuated.


In other embodiments, the position sensor 380 can be a contact switch or a proximity sensor between the cam member 95 and the sleeve 100/the outer tube 60. For example, the position sensor 380 can be coupled to an outboard surface 415 of the sleeve 100 (FIG. 11). As such, the control assembly 375 enables operation of the lawnmower 10 when an inboard surface 420 of the cam member 95 (FIG. 11) engages or is positioned at a determined distance from the position sensor 380 on the outboard surface 415. The control assembly 375 then disables operation of the lawnmower 10 when the inboard surface 420 of the cam member 95 disengages or is positioned away from the determined distance relative to the position sensor 380 on the outboard surface 415. In further embodiments, the position sensor 380 can be coupled to the cam member 95 (e.g., the inboard surface 420).


In other embodiments, the position sensor 380 can be a contact switch or surface switch positioned between the lever 90 and the cam member 95 to detect relative movement (e.g., rotational relative movement) of the lever 90 and the cam member 95. For example, the position sensor 380 can be coupled to an inboard surface of the lever 90 (in one embodiment, the position sensor 380 can replace at least one of the protrusions 125) such that engagement of the position sensor 380 and the raised surface 130 of the cam member 95 is detected as the locked position of the locking mechanism 80 to allow operation of the lawnmower 10. Conversely, disengagement of the position sensor 380 and the raised surface 130 disables operation of the lawnmower 10. In some embodiments, the position sensor 380 can be coupled to an outboard surface of the cam member 95 (e.g., coupled to the raised surface 130 or the recessed surface 135). In further embodiments, the position sensor 380 can be between the cam member 95 and the housing 85 of the locking mechanism 80 to detect a position of the cam member 95 relative to the housing 85. In yet further embodiments, the locking mechanism 80 can include a clip latch with the position sensor 380 between two opposing contact surfaces of the clip latch.


Although the disclosure has been described in detail with reference to certain preferred embodiments, variations and modifications exist within the scope and spirit of one or more independent aspects of the disclosure as described. Various features and advantages of the disclosure are set forth in the following claims.

Claims
  • 1. An implement configured to be supported on a surface, the implement comprising: a main body;a working member coupled to the main body;a motor coupled to the main body, the motor operable to move the working member;a handle configured to guide the implement during operation, the handle including a first member coupled to the main body,a second member movably coupled to the first member between a retracted position and an extended position, anda locking mechanism coupled between the first member and the second member, the locking mechanism movable between a locked position, in which the second member is fixed relative to the first member, and an unlocked position, in which the second member is movable relative to the first member; anda control assembly configured to allow operation of the implement in response to the locking mechanism being moved into the locked position,wherein the control assembly includes a position sensor in communication with a pin of the locking mechanism, wherein the pin is operable to lock the second member relative to the first member when the locking mechanism is in the locked position, and wherein the pin is operable to allow the second member to move relative to the first member when the locking mechanism is in the unlocked position,wherein the control assembly is configured to disable operation of the implement when the position sensor detects the unlocked position of the locking mechanism, and wherein the control assembly is configured to allow operation of the implement when the position sensor detects the locked position of the locking mechanism, andwherein the position sensor is coupled to the second member such that the position sensor is movable relative to the first member when the first and second members move between the retracted and extended positions.
  • 2. The implement of claim 1, wherein the position sensor is a contact switch, and wherein the pin of the locking mechanism engages the contact switch when in the locked position.
  • 3. The implement of claim 1, wherein the control assembly is configured to allow operation of the implement when the position sensor detects the locked position of the locking mechanism while the first and second members are in the extended position, and wherein the control assembly is configured to disable operation of the implement when the locking mechanism is in the locked position while the first and second members are in the retracted position.
  • 4. The implement of claim 1, wherein the position sensor is coupled to the locking mechanism such that the position sensor is movable with the second member when the first and second members move between the retracted and extended positions.
  • 5. The implement of claim 4, wherein the position sensor is a hall effect sensor operable to detect a relative position of the pin of the locking mechanism.
  • 6. The implement of claim 1, wherein the implement is a lawnmower and the working member is a cutting blade.
  • 7. A handle configured to be coupled to an implement to guide the implement during operation, the handle comprising: a first member configured to be coupled to a main body of the implement;a second member movably coupled to the first member between a retracted position and an extended position;a locking mechanism coupled between the first member and the second member, the locking mechanism movable between a locked position, in which the second member is fixed relative to the first member, and an unlocked position, in which the second member is movable relative to the first member; anda control assembly configured to allow operation of the implement in response to the locking mechanism being moved into the locked position,wherein the control assembly includes a position sensor in communication with a pin of the locking mechanism, wherein the pin is operable to lock the second member relative to the first member when the locking mechanism is in the locked position, and wherein the pin is operable to allow the second member to move relative to the first member when the locking mechanism is in the unlocked position,wherein the control assembly is configured to disable operation of the implement when the position sensor detects the unlocked position of the locking mechanism, and wherein the control assembly is configured to allow operation of the implement when the position sensor detects the locked position of the locking mechanism, andwherein the position sensor is coupled to the second member such that the position sensor is movable relative to the first member when the first and second members move between the retracted and extended positions.
  • 8. The handle of claim 7, wherein the position sensor is a contact switch, and wherein the pin of the locking mechanism engages the contact switch when in the locked position.
  • 9. The handle of claim 7, wherein the control assembly is configured to allow operation of the implement when the position sensor detects the locked position of the locking mechanism while the first and second members are in the extended position, and wherein the control assembly is configured to disable operation of the implement when the locking mechanism is in the locked position while the first and second members are in the retracted position.
  • 10. The handle of claim 7, wherein the position sensor is coupled to the locking mechanism such that the position sensor is movable with the second member when the first and second members move between the retracted and extended positions.
  • 11. The handle of claim 10, wherein the position sensor is a hall effect sensor operable to detect a relative position of the pin of the locking mechanism.
  • 12. A handle configured to be coupled to an implement to guide the implement during operation, the handle comprising: a first member configured to be coupled to a main body of the implement;a second member movably coupled to the first member between a retracted position and an extended position;a locking mechanism coupled between the first member and the second member, the locking mechanism movable between a locked position, in which the second member is fixed relative to the first member, and an unlocked position, in which the second member is movable relative to the first member; anda control assembly including a control processor configured to detect when the locking mechanism is in the unlocked position,disable operation of the implement when the locking mechanism is in the unlocked position,detect when the locking mechanism is in the locked position, andallow operation of the implement when the locking mechanism is in the locked position,wherein the control assembly includes a position sensor in communication with the locking mechanism, and wherein the position sensor is coupled to the second member such that the position sensor is movable relative to the first member when the first and second members move between the retracted and extended positions.
  • 13. The handle of claim 12, wherein the control assembly includes a position sensor coupled to the locking mechanism such that the position sensor is movable with the second member when the first and second members move between the retracted and extended positions.
US Referenced Citations (264)
Number Name Date Kind
1387578 Yost Aug 1921 A
1850326 Kelly Mar 1932 A
1866380 Wagner Jul 1932 A
1896442 Farmer Feb 1933 A
2067916 Haffner et al. Jan 1937 A
2332892 Clemson Oct 1943 A
2347991 Cummings May 1944 A
2484795 Schofield Oct 1949 A
D158847 Flanigan Jun 1950 S
2513685 Smith et al. Jul 1950 A
2515573 Soenksen Jul 1950 A
2658322 Sullivan Nov 1953 A
2672002 Nelson Mar 1954 A
2688834 Kaeser Sep 1954 A
2715808 Heineke Aug 1955 A
2724598 Knarzer Nov 1955 A
2727753 Johnson et al. Dec 1955 A
2757013 Brier Jul 1956 A
2763492 Phelps Sep 1956 A
2786694 Gray Mar 1957 A
2791079 Funk May 1957 A
2791437 Knarzer May 1957 A
2809490 Oeters Oct 1957 A
2817548 Uthemann Dec 1957 A
2821258 Benson et al. Jan 1958 A
2829483 Oeters Apr 1958 A
2849249 Fridolph Aug 1958 A
2965386 Buske Dec 1960 A
2966365 Kortum Dec 1960 A
3004375 Seyffer Oct 1961 A
3035719 McClean May 1962 A
3038737 Lill Jun 1962 A
3089301 Przekop May 1963 A
3116937 Price Jan 1964 A
3130444 Stollsteimer Apr 1964 A
3142950 West Aug 1964 A
3144258 Ottosen et al. Aug 1964 A
3174471 Weglage et al. Mar 1965 A
3203707 Anderson Aug 1965 A
3230695 West Jan 1966 A
3243196 Amis Mar 1966 A
3246909 Siwek Apr 1966 A
3253391 Meldahl May 1966 A
3357716 Musichuk Dec 1967 A
3423103 Maltarp Jan 1969 A
3462924 Price et al. Aug 1969 A
3465505 Krinke Sep 1969 A
3481123 Lessig, III Dec 1969 A
3485017 Duran et al. Dec 1969 A
3496706 Mattson Feb 1970 A
3527469 Gobin Sep 1970 A
3534432 Davies, III et al. Oct 1970 A
3603065 Weber Sep 1971 A
3604187 Weber Sep 1971 A
3642051 Goldner Feb 1972 A
3649997 Thorud Mar 1972 A
3702016 Keesee Nov 1972 A
3747430 Miner Jul 1973 A
3756336 Mattingley Sep 1973 A
3764156 Nepper et al. Oct 1973 A
3816873 Thorud et al. Jun 1974 A
3817547 Erickson Jun 1974 A
3855763 Seifert et al. Dec 1974 A
3950817 McKaig Apr 1976 A
3982082 Thorud et al. Sep 1976 A
3998476 Kazmark, Sr. Dec 1976 A
4003190 Braun et al. Jan 1977 A
4015406 Witt et al. Apr 1977 A
4043102 Uhlinger et al. Aug 1977 A
4044532 Lessig, III Aug 1977 A
4054394 Neuman Oct 1977 A
4071922 Davies, III et al. Feb 1978 A
4108456 Woelffer et al. Aug 1978 A
4110869 Hastings Sep 1978 A
4161639 Nofel Jul 1979 A
4167221 Edmonson et al. Sep 1979 A
4212363 Letner et al. Jul 1980 A
4216363 Nofel Aug 1980 A
4221108 Owens Sep 1980 A
4245456 Zipfel Jan 1981 A
4326370 Thorud Apr 1982 A
4327541 Emory May 1982 A
4362228 Plamper et al. Dec 1982 A
4363206 Schmitt Dec 1982 A
4392538 Goertzen Jul 1983 A
4394893 Kronich et al. Jul 1983 A
4413466 Beugelsdyk et al. Nov 1983 A
4426563 Grogan Jan 1984 A
4428180 Carlson Jan 1984 A
4432191 Schmitt Feb 1984 A
4435105 Rampley Mar 1984 A
4492170 Solomon Jan 1985 A
4503958 Nishio Mar 1985 A
4531347 Schutz Jul 1985 A
4561239 Cook Dec 1985 A
4573307 Wick Mar 1986 A
4596484 Nakatani Jun 1986 A
4599912 Barnard et al. Jul 1986 A
4603478 Anderson Aug 1986 A
4659884 Wollenhaupt Apr 1987 A
4738084 Ogano et al. Apr 1988 A
4753062 Roelle Jun 1988 A
4761092 Nakatani Aug 1988 A
4833935 Roelle May 1989 A
4850182 Barnard et al. Jul 1989 A
4870811 Steele Oct 1989 A
4882897 Oshima et al. Nov 1989 A
4899446 Akiba Feb 1990 A
4936160 Barnard et al. Jun 1990 A
4981011 Olejak Jan 1991 A
4987729 Paytas Jan 1991 A
5020308 Braun et al. Jun 1991 A
5088273 Braun et al. Feb 1992 A
5138824 Oshima et al. Aug 1992 A
5155985 Oshima et al. Oct 1992 A
5163275 Hare et al. Nov 1992 A
5203147 Long Apr 1993 A
5209051 Langdon May 1993 A
5261215 Hartz et al. Nov 1993 A
5269125 Langley, Sr. et al. Dec 1993 A
5307612 Tomiyama et al. May 1994 A
5558210 Jonischus Sep 1996 A
5591109 Strnad Jan 1997 A
5606851 Bruener et al. Mar 1997 A
5636504 Kaley et al. Jun 1997 A
5653096 Edwards Aug 1997 A
5692856 Newman, Jr. et al. Dec 1997 A
5746074 Collins May 1998 A
5772162 Lin Jun 1998 A
5784868 Wadzinski et al. Jul 1998 A
5791805 Lynch et al. Aug 1998 A
5806374 Mizutani et al. Sep 1998 A
5842329 Carter Dec 1998 A
5894715 Braun et al. Apr 1999 A
6006434 Templeton et al. Dec 1999 A
6078015 Martinez Jun 2000 A
6082083 Stalpes et al. Jul 2000 A
6095294 McGourthy, Sr. et al. Aug 2000 A
6101678 Malloy et al. Aug 2000 A
6124791 Wolf Sep 2000 A
6142699 Pao Nov 2000 A
6158089 Monahan et al. Dec 2000 A
6220005 Plamper et al. Apr 2001 B1
6317930 Hung Nov 2001 B1
6404078 Thomas et al. Jun 2002 B1
6449935 Nicolay et al. Sep 2002 B1
6581246 Polette Jun 2003 B1
6644002 Trefz Nov 2003 B2
6658829 Kobayashi et al. Dec 2003 B2
6698173 Joseph Mar 2004 B2
6751936 Kucera et al. Jun 2004 B2
6796392 Kobayashi et al. Sep 2004 B2
6902024 Miiler et al. Jun 2005 B2
6996960 Flemm Feb 2006 B1
6996963 Peter et al. Feb 2006 B2
7131499 Breneman et al. Nov 2006 B2
7178322 Osborne Feb 2007 B2
7179200 Wu Feb 2007 B1
7231755 Clarke Jun 2007 B2
7237620 Abenroth et al. Jul 2007 B2
7263817 Smith Sep 2007 B1
7263818 Osborne Sep 2007 B2
7275322 Stones Oct 2007 B2
7293397 Osborne Nov 2007 B2
7314096 Shaffer et al. Jan 2008 B2
7367409 Stones May 2008 B2
7401660 Stones Jul 2008 B2
7496990 Qiao Mar 2009 B2
7543430 Kaskawitz et al. Jun 2009 B2
7591126 Cox Sep 2009 B2
7624998 Barlow et al. Dec 2009 B2
7707812 Cheung May 2010 B2
7712292 Stover et al. May 2010 B2
7762049 Eaton et al. Jul 2010 B2
8132289 Hahn Mar 2012 B2
8274004 Selzer Sep 2012 B2
8316510 Anraku et al. Nov 2012 B2
8359821 Park Jan 2013 B2
8448293 Sepke May 2013 B2
8635744 Junk et al. Jan 2014 B2
8713761 Grewe et al. May 2014 B2
8813733 Tamura et al. Aug 2014 B2
8839692 Yanai et al. Sep 2014 B2
8925293 Mikula et al. Jan 2015 B2
9038356 Shao et al. May 2015 B2
9060463 Yamaoka Jun 2015 B2
9109616 Ballentine Aug 2015 B1
9179597 Kaspar Nov 2015 B1
9218924 Coussins et al. Dec 2015 B2
9232692 Bjorn et al. Jan 2016 B2
9462747 Schmalz Oct 2016 B2
9491907 Edholm et al. Nov 2016 B2
9496809 Nakano et al. Nov 2016 B2
9596806 Yamaoka et al. Mar 2017 B2
9648805 Nie May 2017 B2
9651138 Helin et al. May 2017 B2
9826686 Yamaoka et al. Nov 2017 B2
9847186 Wadzinski Dec 2017 B2
9855490 McGuffie Jan 2018 B2
9888627 Yamaoka et al. Feb 2018 B2
9955627 Nakano et al. May 2018 B2
9986686 Yamaoka et al. Jun 2018 B2
10039229 Wadzinski et al. Aug 2018 B2
10070588 Yamaoka et al. Sep 2018 B2
10111381 Shaffer et al. Oct 2018 B2
10123478 Shaffer et al. Nov 2018 B2
10433478 Smith et al. Oct 2019 B2
10477772 Yamaoka et al. Nov 2019 B2
10485169 Yamaoka Nov 2019 B2
10485176 Yamaoka et al. Nov 2019 B2
10492365 Yamaoka et al. Dec 2019 B2
10524420 Yamaoka et al. Jan 2020 B2
11246262 Yamaoka Feb 2022 B2
20030006074 Ishikawa et al. Jan 2003 A1
20030093983 Savard et al. May 2003 A1
20040194982 Fukzumi et al. Oct 2004 A1
20050144919 Osborne Jul 2005 A1
20060005673 Long et al. Jan 2006 A1
20060053762 Stover et al. Mar 2006 A1
20060053763 Stover et al. Mar 2006 A1
20060075641 Nottingham et al. Apr 2006 A1
20060075732 Nottingham et al. Apr 2006 A1
20060096135 Shaffer et al. May 2006 A1
20060127167 Hsieh Jun 2006 A1
20060166792 Kuo Jul 2006 A1
20070101690 Stover et al. May 2007 A1
20070256402 McCane et al. Nov 2007 A1
20080078156 Qiao Apr 2008 A1
20080256919 Schreiner Oct 2008 A1
20090038281 Kaskawitz et al. Feb 2009 A1
20090107282 Mangham Apr 2009 A1
20090293655 Tseng et al. Dec 2009 A1
20100162674 Eaton et al. Jul 2010 A1
20100199949 Tamura et al. Aug 2010 A1
20110088362 Rosa et al. Apr 2011 A1
20110126502 Pitman et al. Jun 2011 A1
20110219565 Sepke Sep 2011 A1
20110302893 Park Dec 2011 A1
20110302895 Park Dec 2011 A1
20120055277 Wu Mar 2012 A1
20120305041 Lah et al. Dec 2012 A1
20120317948 Abe et al. Dec 2012 A1
20120317949 Abe et al. Dec 2012 A1
20120324682 Ballentine et al. Dec 2012 A1
20130111866 Schmalz May 2013 A1
20130212996 Shao et al. Aug 2013 A1
20130305675 Pare Nov 2013 A1
20140102064 Yamaoka et al. Apr 2014 A1
20140167398 Burns et al. Jun 2014 A1
20140190141 Edholm et al. Jul 2014 A1
20140196425 Lewis Jul 2014 A1
20140374557 Yu Dec 2014 A1
20160324065 Smith et al. Nov 2016 A1
20160353660 Yamaoka et al. Dec 2016 A1
20170049047 Yamaoka et al. Feb 2017 A1
20170049049 Yamaoka et al. Feb 2017 A1
20170086370 Yamaoka et al. Mar 2017 A1
20170086375 Yamaoka et al. Mar 2017 A1
20170367258 Shaffer et al. Dec 2017 A1
20180228089 Yamaoka et al. Aug 2018 A1
20190269073 Yamaoka et al. Sep 2019 A1
20200000030 Wei et al. Jan 2020 A1
20200060091 Yamaoka et al. Feb 2020 A1
20220117155 Kippes Apr 2022 A1
Foreign Referenced Citations (93)
Number Date Country
2397429 Feb 2004 CA
391387 Apr 1965 CH
101006763 Aug 2007 CN
201044581 Apr 2008 CN
201146132 Nov 2008 CN
201360427 Dec 2009 CN
201455951 May 2010 CN
101822148 Sep 2010 CN
201821663 May 2011 CN
102217455 Oct 2011 CN
202019551 Nov 2011 CN
202019551 Nov 2011 CN
202026623 Nov 2011 CN
102845186 Jan 2013 CN
103283374 Sep 2013 CN
204119802 Jan 2015 CN
104823599 Aug 2015 CN
204796180 Nov 2015 CN
106625459 May 2017 CN
107046921 Aug 2017 CN
107182426 Sep 2017 CN
206596381 Oct 2017 CN
207443478 Oct 2017 CN
206629456 Nov 2017 CN
107455067 Dec 2017 CN
206790995 Dec 2017 CN
207120188 Mar 2018 CN
108684299 Oct 2018 CN
207940017 Oct 2018 CN
108718664 Nov 2018 CN
108834543 Nov 2018 CN
109392418 Mar 2019 CN
208798363 Apr 2019 CN
2632526 Jan 1978 DE
3827926 Feb 1990 DE
102004020985 Nov 2005 DE
202006015259 Feb 2007 DE
102010044302 Mar 2012 DE
102017205320 Oct 2018 DE
102017205320 Oct 2018 DE
0047416 Mar 1982 EP
0185513 Jun 1986 EP
0822346 Feb 1998 EP
0903074 Mar 1999 EP
0981945 Mar 2000 EP
1106046 Jun 2001 EP
1431998 Jun 2004 EP
1543711 Jun 2005 EP
1543711 Jun 2005 EP
1627560 Feb 2006 EP
1741937 Jan 2007 EP
1742008 Jan 2007 EP
1949782 Jul 2008 EP
2425700 Mar 2012 EP
2465337 Jun 2012 EP
2491777 Aug 2012 EP
2556739 Feb 2013 EP
2622953 Aug 2013 EP
2689651 Jan 2014 EP
2774470 Sep 2014 EP
2774470 Sep 2014 EP
2784335 Oct 2014 EP
2348644 Nov 1977 FR
2780375 Dec 1999 FR
1064828 Apr 1967 GB
2066033 Jul 1981 GB
2386813 Oct 2003 GB
2413254 Oct 2005 GB
2449715 Dec 2008 GB
S63158120 Oct 1988 JP
H01162916 Jun 1989 JP
H01235516 Sep 1989 JP
H01312923 Dec 1989 JP
02003226 Jan 1990 JP
H0584102 Nov 1993 JP
H06153650 Jun 1994 JP
11346530 Dec 1999 JP
2003125627 May 2003 JP
2003130017 May 2003 JP
2007116958 May 2007 JP
2008283926 Nov 2008 JP
2009034000 Feb 2009 JP
2010274668 Dec 2010 JP
2013146241 Aug 2013 JP
2013153753 Aug 2013 JP
2004086850 Oct 2004 WO
2011026416 Mar 2011 WO
2012115543 Aug 2012 WO
2013015171 Jan 2013 WO
2013122266 Aug 2013 WO
WO-2013122266 Aug 2013 WO
2018086034 May 2018 WO
2018237251 Dec 2018 WO
Non-Patent Literature Citations (2)
Entry
American National Standard for Consumer Turf Care Equipment, “Pedestrian-Controlled Mowers and Ride-on Mowers—Safety Specifications”, published Apr. 23, 2012, pp. 16-17.
Extended European Search Report for Application No. 21154743.5 dated Jun. 21, 2021 (9 pages).
Related Publications (1)
Number Date Country
20210243948 A1 Aug 2021 US