Retractable step and side bar assembly for raised vehicle

Information

  • Patent Grant
  • 11713012
  • Patent Number
    11,713,012
  • Date Filed
    Wednesday, November 17, 2021
    2 years ago
  • Date Issued
    Tuesday, August 1, 2023
    9 months ago
Abstract
A retractable step and side bar assembly that can be used for raised vehicles, such as trucks. The retractable step can be configured to provide for significant reach in a deployed position to allow for a user to enter the raised vehicle. Further, in the stowed position the retractable step can be located within the side bar, thereby providing a low profile as well as an enhanced aesthetic appearance.
Description
INCORPORATION BY REFERENCE TO ANY PRIORITY APPLICATIONS

Any and all applications for which a foreign or domestic priority claim is identified in the Application Data Sheet as filed with the present application are hereby incorporated by reference under 37 CFR 1.57.


BACKGROUND
Field

This disclosure relates generally to a retractable step and side bar assembly for a raised vehicle.


Description of the Related Art

Many types of vehicles, including sport utility vehicles (e.g. JEEP® brand vehicles), pickup trucks, and vans, are raised off the ground farther than normal passenger automobiles. The increased height of the floor of the passenger cab from the ground makes it difficult to enter and exit these vehicles.


In addition, if the vehicles are driven over rough terrain, their lower body panels and door panels are susceptible to being scratched, dented, or otherwise damaged by rocks or other ground debris. To address this issue, the nerf bars or rock rails can function to protect the body of the vehicles from being damaged from below. Moreover, nerf bars can be mounted to the vehicle to provide a stepping surface to assist the driver and passengers in entering and exiting these vehicles.


SUMMARY

Typically, running boards, side bars, and/or nerf bars are used to help a user access a vehicle. Further, these side bars can provide for enhanced aesthetics of the vehicle. However, the side bars can have significant limitations as side bars sit too high because of necessary ground and side clearance. This creates a stepping platform positioned too high and too inboard, thus creating an awkward ingress/egress for a user. That being said, it is desirable to keep the aesthetics of the side bars while still providing ease of access for a user to enter a vehicle.


Accordingly, embodiments of the disclosure allow for a user to lower an additional step to a low, functional stepping height to get in and out of the vehicle, yet stow them to the higher position for vehicle operation behind the side bar, creating the necessary ground clearance while also improving the vehicle aesthetics.


Moreover, many users enjoy the aesthetics of nerf bars without needing the structural support of the nerf bars. Accordingly, disclosed herein are side bars that can be used as aesthetic replacements for the nerf bars, without requiring the structural support they provide. As disclosed in detail below, they can be used in conjunction with a retractable step to provide for advantageous aesthetics for a raised vehicle while still assisting a user enter and exit the vehicle.


One area where standard deployable running boards fall short is on the more extreme vehicles, lifted higher than the typical truck. For such vehicles, it has been recognized that it would be desirable for the step to be deployed even lower than the linkage packaging allows. An embodiment that combines the side bar and vehicle step assembly allows one to stow the boards at an even lower level, without compromising the aesthetics, and desirably also allows the boards to be deployed to a lower level. Simply said, a lower stowed position facilitates a lower deployed position, and doing this in combination with the side bar accomplishes this while still looking good.


Disclosed herein are embodiments of a combination side bar and vehicle step assembly, the assembly comprising a side bar configured to be mounted to a vehicle by at least one mounting bracket defining a mounting surface configured to mate with the vehicle and an extendable vehicle step comprising a stepping platform connected to at least one pair of arms, the at least one pair of arms connected to a frame, the frame being connected to the at least one mounting bracket, wherein the extendable vehicle step is movable between a stored and a deployed position, where the vehicle step is in the deployed position below and outboard to the side bar, and when the extendable vehicle step is in the deployed position, the stepping platform is at least partially outboard to the side bar.


In some embodiments, when the extendable vehicle step is in the stored position, the stepping platform can be at least partially inboard from the mounting surface.


Also disclosed herein are embodiments of a combination side bar and vehicle step assembly, the assembly comprising a side bar configured to be mounted to a vehicle by at least one mounting bracket defining a mounting surface configured to mate with the vehicle, and an extendable vehicle step having a distal end, the extendable step comprising a stepping platform connected to at least one pair of arms, the at least one pair of arms connected to a frame, the frame being connected to the at least one mounting bracket, wherein the extendable vehicle step is movable between a stored and a deployed position, and the vehicle step is in the deployed position below and outboard of the side bar, and wherein the side bar comprises a channel on a lower surface, the channel sized and configured to at least partially enclose the extendable vehicle step in the stored position.


Also disclosed herein are embodiments of a vehicle assembly, the assembly comprising a vehicle having a first door and a side bar connected to the vehicle by at least one mounting bracket, the side bar positioned external to the first door, and an extendable vehicle step, the extendable step comprising a stepping platform connected to at least one pair of arms, the at least one pair of arms connected to a frame, the frame being connected to the at least one mounting bracket such that the extendable vehicle step is positioned external to the at first door, the vehicle step defining a distal end, wherein the extendable vehicle step is movable between a stored and a deployed position, and the vehicle step is in the deployed position below and outboard of the side bar, and wherein the side bar comprises a channel on a lower surface, the channel sized and configured to at least partially cover the distal end of the extendable vehicle step in the stored position.


In some embodiments, a length of the side bar can be at least ¾ a width of the first door and a length of the stepping platform can be at least ½ the width of the first door. In some embodiments, a length of the side bar can be at least a width of the first door and a length of the stepping platform can be at least ½ the width of the first one door. In some embodiments, a length of the side bar and a length of the stepping platform can be at least a width of the first door.


In some embodiments, the extendable vehicle step can be self-energizing. In some embodiments, a plurality of mounting brackets can be configured to connect the side bar to the vehicle.


Also disclosed herein is a vehicle assembly, the assembly comprising a vehicle having a first door and a side bar connected to the vehicle by at least one mounting bracket, the side bar positioned external to the first door, and an extendable vehicle step, the extendable step comprising a stepping platform connected to at least one pair of arms, the at least one pair of arms connected to a frame, the frame being connected to the at least one mounting bracket such that the extendable vehicle step is positioned external to the at first door, wherein the extendable vehicle step is movable between a stored and a deployed position, where the vehicle step is in the deployed position below and outboard of the side bar, and wherein the frame is configured to be located at least partially below a body of the vehicle.


In some embodiments, the frame can be configured to be located fully below the body of the vehicle.


Also disclosed herein is a vehicle assembly, the assembly comprising a vehicle having a first door and a side bar, the side bar comprising a longitudinal opening generally facing towards the vehicle, at least one mounting bracket, the at least one mounting bracket having a first end configured to attached to a body of the vehicle a second end configured to attach to the side bar, a fastener coupling the at least one mounting bracket to the side bar, the fastener configured to extend into and be retained within the longitudinal opening, and an extendable vehicle step, the extendable step comprising a stepping platform connected to at least one pair of arms, the at least one pair of arms connected to a frame, the frame being connected to the at least one mounting bracket such that the extendable vehicle step is positioned external of the at first door, wherein the extendable vehicle step is movable between a stored and a deployed position, where the vehicle step is in the deployed position below and in front of the side bar, and wherein the side bar is configured to be translatable with respect to the at least one mounting bracket by sliding the fastener through the longitudinal opening.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 illustrates an embodiment of a combination of a side bar and stepping structure in the deployed position.



FIG. 2 illustrates an angled view of an embodiment of a combination of a side bar and stepping structure in the deployed position.



FIG. 3A illustrates a front view of an embodiment of a combination of a side bar and stepping structure in the deployed position.



FIG. 3B illustrates a front view of an embodiment of a combination of a side bar and stepping structure in the stowed position.



FIGS. 4A-C illustrate views of an embodiment of a mounting structure.



FIG. 5A illustrates a front view of an embodiment of a side bar.



FIG. 5B illustrates a back view of an embodiment of a side bar.



FIG. 6A illustrates a cross-sectional view of an embodiment of a side bar.



FIG. 6B illustrates a cross-sectional view of an embodiment of a side bar attached to an embodiment of a mounting bracket.



FIG. 7 illustrates an embodiment of a combination of a side bar and stepping structure in the stowed position.



FIG. 8 illustrates an embodiment of a combination of a side bar and stepping structure in the intermediate position.



FIG. 9 illustrates an embodiment of a combination of a side bar and stepping structure in the stowed deployed.



FIG. 10 illustrates an exploded view of an embodiment of a combination of a side bar and stepping structure.



FIG. 11 illustrates an embodiment of a combination of a side bar and stepping structure in the intermediate position.



FIG. 12 illustrates a reverse view of an embodiment of a combination of a side bar and stepping structure attached to a vehicle.



FIG. 13 illustrates the attachment of an embodiment of a combination of a side bar and stepping structure attached to a vehicle.



FIG. 14 illustrates a cross-sectional view of an embodiment of the side bar and stepping structure in the stowed configuration.





DETAILED DESCRIPTION

Disclosed herein are combinations of a stepping structure with a side bar, in particular for use on the sides of vehicles. The side bar and step combination can be uniquely formed to provide for a low profile in the retracted position, where the step is minimized exposed below the side bar, while also having significant reach in the deployed position to allow for a user to easily use the step to access the vehicle itself. The combination of the side bar 100 and step 1000, forming a combination assembly 10, attached to a vehicle 20 is shown in FIGS. 1-2. Further, FIGS. 3A-B show the combination assembly 10 in the deployed (FIG. 3A) and the stowed (FIG. 3B) positions. As shown, the combination assembly 10 advantageously allows for the step 1000 to be partially hidden by the side bar 100 when in the stowed position, improving overall aesthetics of the combination assembly 10. However, the combination assembly 10 is usable with many other types of vehicles, for example standard cab pickup trucks, extended cab pickup trucks, and sport utility vehicles such as JEEP® brand vehicles, and the type of vehicle does not limit the disclosure.


Side Bar


As shown in the previous figures, the side bar 100 can be attached to a vehicle 20, generally on the underside of the frame. The side bar 100 can extend generally away from the frame of the vehicle 20 (e.g., outboard). In some embodiments, the side bar 100 can includes a side bar main body 102 configured for mounting to vehicle 20 via mounting brackets 150.


The mounting bracket 150, shown in FIGS. 4A-C, can have a generally c-shaped structure having vehicle attachment portion 152, a body 153, and a side bar attachment portion 154. The vehicle attachment portion 152 can be generally the top of a c-shape structure, while the side bar attachment portion 154 can be generally the bottom. The body 153 can connect the vehicle attachment portion 152 to the side bar attachment portion 154.


The vehicle attachment portion 152 can be generally configured to be located above the side bar attachment portion 154, and can be located generally on the inside surface of the body of vehicle 20. The vehicle attachment portion 152 can be configured to be mounted onto the vehicle 20, such as through an aperture 155, thereby keeping the mounting bracket 150 in place. The attachment portion 152 can extend perpendicularly from the body 153 to form a flange or mounting surface which can mate with vehicle 20 where the aperture 155 can be located. In some embodiments, the vehicle attachment portion 152 can have a greater thickness than the body 153. Thus, as discussed, the mounting bracket 150 is configured to mate with portions of the vehicle body (such as shown in FIG. 13) and secure the bracket 150 in both a vertical direction and a horizontal direction with respect to the ground. Thus can be done through the use of fasteners or welding, though the attachment means does not limit the disclosure. It is noted that the configuration of the mounting bracket 150 can be adjusted to match the mounting requirements of a particular vehicle.


The side bar attachment portion 154 can be configured to be attached to the side bar 100. As shown in FIGS. 4A-C, the side bar attachment portion 154 can be formed by a plurality of surfaces. A base surface 160 can be formed generally on the bottom of the mounting bracket 150, extending generally perpendicular to the bottom of the body 153. The base surface 160 can be configured to slide against a surface of the side bar 100, discussed below, in some embodiments. Further, attached to the base surface 160 and extending upwards and generally parallel to the body 153 is the secondary surface 162. Extending perpendicular to the front end of the body 153 and secondary surface 162 are a pair for attachment surfaces 164/164′. These attachment surfaces 164/164′ can have at least one aperture 166/166′ extending therethrough. Accordingly, in some embodiments a fastener, 168, such as a bolt, screw, or other member can extend through the aperture 166/166′, allowing it to connect to the side bar 100, as discussed in detail below. In some embodiments, a frame surface 169 can extend away from the body 153 generally parallel to the base surface 160 but in the opposite direction. This surface can be configured to attach to a frame of a vehicle 20.


In some embodiments, a plurality of mounting brackets 150 can be used to attach the side bar 100 to the vehicle 20. In some embodiments, the mounting brackets 150 can be spaced apart at a particular distance, though the spacing does not limit the disclosure.


As shown in FIGS. 5A-B, side bar main body 102 itself can extend from a first end 101 to a second end 103. It can be defined by a plurality of walls, each wall having and/or defining outer and inner surfaces that additionally extend from the first to the second end 101/103. As shown in the cross section of FIG. 6A, the side bar main body 102 can have a front wall 128 and a back wall 130, which face away from and towards the vehicle 120, respectively. The back wall 130 can have a channel formed therein to define an opening 106, described in detail below. Further, below the back wall 130 there can be an extension wall 134 which extends generally perpendicular to the back wall 130 and extends farther than the back wall 130, and the extension wall 134 can be in contact with the base wall 160 of the mounting bracket 150, and can help to support the mounting bracket 150. Further, the side bar main body 102 can have a top wall 136. As shown in the figures, the top wall 136 can be connected to the front and back walls 130/132 by angled or connection walls 138/140.


In addition, the side bar main body 102 can have a bottom wall 142 connected to the front wall 130. Connecting the bottom wall 142 and the back wall 130 are two walls that meet at an approximately perpendicular angle, thus forming a channel 149 on generally the bottom-back side of the side bar main body 102. The step distal end facing or vertical wall 144 can be generally parallel to the back wall 130 and connected to the bottom wall 130. The stepping member facing or horizontal wall 146 can extend from the vertical wall 144 to the back wall 130. In some embodiments, the horizontal wall 146 extends beyond the back wall 130, thus forming the extension wall 134. Thus, the vertical and horizontal walls 144/146 form the channel 149 in the side bar main body 102. The channel 149 can be sized and configured to receive at least a portion of the step 200, as discussed in detail below, thus providing for aesthetic improvements, as well as improved clearance.


While a particular shape of the side bar main body 102 is shown and discussed, it will be known that the particular size and dimensions of the side bar main body 102 does not limit the disclosure. Further, the walls disclosed may change shape throughout the length of the side bar main body 102.


In some embodiments, an internal connection wall 148 can be used to strengthen the side bar main body 102. In some embodiments, the side bar main body 102 is hollow. In some embodiments, the side bar main body 102 is solid and filled/or in with another material.


In some embodiments, the side bar main body 102 extends between a first end 101 and a second end 103 and is formed to have a channel-shape defining a longitudinal opening 106 extending at least partially between the first and second ends 101/103 of the back wall 130 of the side bar main body 102. The longitudinal opening 106 can extend partially into the back wall 130 to retain a fastener. In some embodiments, the longitudinal opening 106 can extend the full length of the side bar main body 102, and thus be open at the first and second ends 101/103. In some embodiments, the longitudinal opening 106 only extends partially along the length of the side bar main body 102, thereby being closed at either the first or second ends 101/103, or both. As shown in FIG. 6B, the longitudinal opening 106 can be sized and configured to receive and retain a fastener 168 that protrudes through the apertures 166/166′ of the mounting bracket 150. Thus, the side bar 100 can be attached to the mounting bracket 150. In some embodiments, the fasteners 168 can be configured to be tightened within the longitudinal opening 106. Therefore, the side bar 100 can be moved with respect to the mounting bracket 150, and thus vehicle 20, allowing for the position of the side bar 100 to be adjusted. Accordingly, when the side bar 100 is in the desired position, the fasteners 168 can be tightened, thus stopping motion of the side bar 100 with respect to the mounting bracket 150.


In some embodiments, such as shown in FIGS. 5A-B, the side bar main body 102 may be provided with a first end cap 120a connected to the first end 101 of the side bar main body 102 and a second end cap 120b connected to the second end 103 of the side bar main body 102. In some embodiments, the end caps 120a, 120b (collectively referred to as 120) can be mirror images of each other and are shaped to match the cross-sectional profile of the side bar main body 102. In some embodiments, the end caps 120 may have a greater dimension than the side bar main body 102, thereby providing end coverings of the channel 149. In the embodiment shown, the end caps 120 are welded to the side bar main body 102. However, other connections means are certainly possible, such as the use of fasteners.


Referring back to FIG. 2, in some embodiments, the side bar 100 length (Lr) can extend at least half of a length of the vehicle 20. In some embodiments, the side bar 100 length (Lr) can extend at least ¾ of a length of the vehicle 20. In some embodiments, the side bar 100 length (Lr) can extend at least half of a length of a door (Ld1 or Ld2) on one side of the vehicle 20. In some embodiments, the side bar 100 length (Lr) can extend at least ¾ of a length of a door (Ld1 or Ld2) on one side of the vehicle 20. In some embodiments, the side bar 100 length (Lr) can extend at least a length of a door (Ld1 or Ld2) on one side of the vehicle 20. In some embodiments, the side bar 100 length (Lr) can extend at least half of a length of two doors (Ld) on one side of the vehicle 20. In some embodiments, the side bar 100 length (Lr) can extend at least ¾ of a length of two doors (Ld) on one side of the vehicle 20. In some embodiments, the side bar 100 length (Lr) can extend at least a length of two doors (Ld) on one side of the vehicle 20. In some embodiments, the side bar 100 length (Lr) can extend about 2, 3, 4, 5, 6, 7, or 8 feet. In some embodiments, the side bar 100 length (Lr) can extend at least about 2, 3, 4, 5, 6, 7, or 8 feet.


In some embodiments, the side bar main body 102 may be formed from an initially flat sheet, for example a flat sheet of about 11 gauge steel. Other sheet thicknesses may also be used, and the particular thickness does not limit the disclosure. The side bar main body 102 may be formed by other processes as well, for example by stamping, casting, or extrusion, and the particular method of manufacturing does not limit the disclosure.


In some embodiments, the side bar 100 may be a modular side bar as discussed in U.S. Pat. App. No. 2015/0091270, hereby incorporated by reference in its entirety.


Stepping Structure



FIG. 1 additionally illustrates an embodiment of such a vehicle step 1000 that can be used in conjunction with the side bar 100 to form the combination assembly 10. FIG. 7 illustrates the vehicle step 1000 in a stowed position. As shown, the vehicle step 1000 can be composed of numerous components, further discussed below, which can allow for translation of the vehicle step 1000 from a stowed position (FIG. 7) through an intermediate position (FIG. 8) and to a deployed position (FIG. 9) and back again, and can help a user to enter and exit a vehicle. In some embodiments, the vehicle step 1000 can be located under a vehicle door, such as the front or back doors, or below the trunk, though the particular location of the vehicle step 1000 is not limiting. In some embodiments, the vehicle step 1000 can move to the deployed position when a vehicle door is opened and move to a stowed position when an open vehicle door is closed. In some embodiments, the vehicle step 1000 can be moved manually. In some embodiments, the vehicle step 1000 can move through the press of a button or activation of a switch, and can operate independently of motion of a vehicle door, such as disclosed in U.S. patent application Ser. No. 14/169,626, published as U.S. 2015/0123374 A1, hereby incorporated by reference in its entirety.


As shown, the vehicle step 1000 can contain a stepping platform 1020. The stepping platform 1020 can extend generally parallel to the ground and can be configured for a user to step on to allow for access into a vehicle. The stepping platform 1020 can be sized to generally receive a user's foot in some embodiments. Thus, a plurality of different stepping platforms 1020 can be used for different parts of a vehicle. In some embodiments, the stepping platform 1020 can extend along a substantial length of a vehicle, such as to be configured like a bar as shown in FIG. 2. Accordingly, in some embodiments only a single stepping platform 1020 is used on each side of the vehicle for the bar-like configuration. In some embodiments, the stepping platform 1020 can be generally the same length as the side bar 100. In some embodiments, the stepping platform 1020 can have a smaller length than the side bar 100. In some embodiments, the stepping platform 1020 can have gripping or high friction material on its upper side to help a user enter a vehicle.


Referring back to FIG. 2, in some embodiments, the stepping platform 1020 length (Ls) can extend at least half of a length of the vehicle 20. In some embodiments, the stepping platform 1020 length (Ls) can extend at least ¾ of a length of the vehicle 20. In some embodiments, the stepping platform 1020 length (Ls) can extend at least half of a length of a door (Ld1 or Ld2) on one side of the vehicle 20. In some embodiments, the stepping platform 1020 length (Ls) can extend at least ¾ of a length of a door (Ld1 or Ld2) on one side of the vehicle 20. In some embodiments, the stepping platform 1020 length (Ls) can extend at least a length of a door (Ld1 or Ld2) on one side of the vehicle 20. In some embodiments, the stepping platform 1020 length (Ls) can extend at least half of a length of two doors (Ld) on one side of the vehicle 20. In some embodiments, the stepping platform 1020 length (Ls) can extend at least ¾ of a length of two doors (Ld) on one side of the vehicle 20. In some embodiments, the stepping platform 1020 length (Ls) can extend at least a length of two doors (Ld) on one side of the vehicle 20. In some embodiments, the stepping platform 1020 length (Ls) can extend about 2, 3, 4, 5, 6, 7, or 8 feet. In some embodiments, the stepping platform 1020 length (Ls) can extend at least about 2, 3, 4, 5, 6, 7, or 8 feet.


The stepping platform 1020 can connect to a support component 1030. In some embodiments, the stepping platform 1020 is attached to the support component 1030 so that the stepping platform 1020 and support component 1030 translate and/or rotate as one unit. In some embodiments, the stepping platform 1020 can rotate separately from the support component 1030. In some embodiments, support component 1030 and stepping platform 1020 can be a single piece. In some embodiments, the stepping platform 1020 can be integrally formed with the support component 1030. In some embodiments, the two pieces can be attached to one another through, for example, screws, though the particular attachment means does not limit the disclosure. In some embodiments, the support component 1030 can be substantially thinner than the stepping platform 102, as shown in, for example, FIG. 2.


A pair of arms 1040/1060 can rotatably attach to the support component 1030, allowing for rotation of the support component 1030, and thus the stepping platform 1020. The arms 1040/1060 can be attached to the support component 1030 through the rotation axes 1140. In some embodiments, either one or both of arms 1040/1060 can have a stop, which can be used to prevent the vehicle step 1000 from moving outside a desired rotation. The stops can be, for example, rubber to prevent motion of the vehicle step 1000 while preventing scratching or other damage. However, the particular makeup of the stops does not limit the disclosure. In some embodiments, the combination of stepping platform 1020, support component 1030, and arms 1040/1060 can be known as the stepping fixture. While only two arms are shown, more arms could be used as well. Further, each arm 1040/1060 could be broken into different segments that may or may not rotate with respect to each other. In some embodiments, another bar can connect arms 1040/1060.


On the opposite end from the support component 1030, arms 1040/1060 can attach to a frame 1080. The frame 1080 can be attached to the mounting bracket 150 attached the side bar 100, as discussed above. For example, the frame 1080 may be located approximately at the body 153 of the mounting bracket 150. Screws 1055 can be used to affix the frame 1080 to the mounting bracket 150, though the type of fixture does not limit the disclosure and any type of fixture can be used. In some embodiments, a top surface of the frame 1080 can additionally be attached to the bottom of a vehicle frame.


By attaching the frame 1080 to the mounting bracket 150, the frame 1080 can be located below the frame of a vehicle. In some embodiments, the entirety of the frame 1080 is below the frame of the vehicle. In some embodiments, at least about 50, 60, 70, 80, 90, 95, or 99% of the frame 1080 can be located below the frame of the vehicle. By having the frame 1080 located below the frame of the vehicle, it allows for the stepping platform 1020 to have a deployed position that is significantly lower than if the frame 1080 was attached to the frame of the vehicle, while not having to make any extensions to the arms 1040/1060. This allows the vehicle step 1000 to be advantageous for raised vehicles, as the stepping platform 1020 can now be located at a comfortable position relative to the ground for a user to step onto.


In some embodiments, the frame 1080 may contain a fastener that is sized and configured to be inserted into the longitudinal opening 106 of the side bar 100, and can operate in a similar fashion as discussed above with relation to the attachment of the side bar main body 102 to the mounting bracket 150. Accordingly, the side bar 100 can be translatable with respect to the frame 1080, and thus the step 1000.


In some embodiments, such as shown in FIG. 7, the frame 1080 may extend towards the centerline (e.g., inboard) of the vehicle. Accordingly, the frame 1080 ma extend from an inside surface of the frame of the vehicle 20 towards the opposite inside surface of the frame of the vehicle 20. The arms 1040/1060 can be attached to frame 1080 through the rotation axes 1140. In some embodiments, the instant center of the vehicle step 1000 can be located within the vehicle step 1000 when the vehicle step 1000 is in the deployed or stowed position, or in both positions. In some embodiments, the instant center of the vehicle step 1000 is not located outside of the vehicle step 1000. For example, at any given moment, when the vehicle step 1000 is pivoting from one position to another, the stepping platform 1020 can be considered to be pivoting about one point in space (e.g., an “instant center”) within the vehicle step 1000, as viewed perpendicular to the rotational axes 1140, such as viewed from the perspective of FIG. 7. In some embodiments, this one point could correspond to being within the horizontal dimension of the stepping platform 1020 (corresponding to an x axis in an x-y coordinate system), could correspond to being within vertical dimension of the stepping platform 1020 (corresponding to a y axis in an x-y coordinate system), or could corresponded to being within cross-section of the stepping platform 1020 in both the horizontal and vertical dimension.


In some embodiments, when the vehicle step 1000 is in the deployed position as shown in FIG. 9, the angle between the stepping platform 1020 and arm 1040 can be obtuse. In some embodiments, the angle between the stepping platform 1020 and arm 1040 can be about 90, 100, 110, 120, 130, 140, 150, 160, or 170°. In some embodiments, the angle between the stepping platform 1020 and arm 1040 can be greater than about 90, 100, 110, 120, 130, 140, 150, 160, or 170°. In some embodiments, the angle between the stepping platform 1020 and arm 1040 can be less than about 100, 110, 120, 130, 140, 150, 160, 170, or 180°.


In some embodiments, when the vehicle step 1000 is in the deployed position as shown in FIG. 9, the angle between the stepping platform 1020 and arm 1060 can be obtuse. In some embodiments, the angle between the stepping platform 1020 and arm 1060 can be about 90, 100, 110, 120, 130, 140, 150, 160, or 170°. In some embodiments, the angle between the stepping platform 1020 and arm 1060 can be greater than about 90, 100, 110, 120, 130, 140, 150, 160, or 170°. In some embodiments, the angle between the stepping platform 1020 and arm 1060 can be less than about 100, 110, 120, 130, 140, 150, 160, 170, or 180°.



FIG. 10 illustrates an exploded viewpoint of an embodiment of a vehicle step 1000, illustrates an example of how components of the vehicle step 1000 can fit together.



FIG. 11 illustrates an embodiments of a vehicle step 1000 in an intermediate position, in particular to more easily show dimensions for some of the different parts of the vehicle step 1000.


In some embodiments, the length (Y) of arm 1040 is the same as the length (X) of arm 1060. In some embodiments, the length (Y) of arm 1040 is different than the length (X) of arm 1060. In some embodiments, the length (Y) of arm 1040 is less than the length (X) of arm 1060. In some embodiments, the length (Y) of arm 1040 is greater than the length (X) of arm 1060.


In some embodiments, the distance (M) between the frame 1080 rotation points 1140 of arms 1040/1060 are the same as the distance (N) between the support component 1030 rotation points 1140 of arms 1040/1060. In some embodiments, the distance (M) between the frame 1080 rotation points 1140 of arms 1040/1060 is different than the distance (N) between the support component 1030 rotation points 1140 of arms 1040/1060. In some embodiments, the distance (M) between the frame 1080 rotation points 1140 of arms 1040/1060 is greater than the distance (N) between the support component 1030 rotation points 1140 of arms 1040/1060. In some embodiments, the distance (M) between the frame 1080 rotation points 1140 of arms 1040/1060 is less than the distance (N) between the support component 1030 rotation points 1140 of arms 1040/1060.


In some embodiments, arms 1040/106 are not parallel when in the stowed position. In some embodiments, arms 1040/1060 are not parallel when in the intermediate position. In some embodiments, arms 1040/1060 are not parallel when in the deployed position. In some embodiments, arms 1040/1060 are not parallel through the entire range of motion of the vehicle step 1000.


In some embodiments, arms 1040/106 are parallel when in the stowed position. In some embodiments, arms 1040/1060 are parallel when in the intermediate position. In some embodiments, arms 1040/1060 are parallel when in the deployed position. In some embodiments, arms 1040/1060 are parallel through the entire range of motion of the vehicle step 1000.


Components of the disclosed vehicle step 1000 can comprise a structurally strong and/or light weight material. In some embodiments, the vehicle step 1000 can comprise a fiber reinforced composite material such as a carbon fiber reinforced plastic or thermoplastic with, for example, a polymer matrix or resin. In some embodiments, the vehicle step 1000 can comprise other suitable composites, plastics, thermoplastics, metals, alloys, ceramics, among others, with efficacy, as needed or desired. However, the particular material used does not limit the disclosure.


In some embodiments, a plurality of stepping structures can be used. FIGS. 3A-B illustrate an embodiment which can use a plurality of steps on a single side of a vehicle in order to, for example, retain movable running boards. As shown, a first vehicle step 1000 and a second vehicle step 1000′ can be used to hold a horizontal running board 8020 similar to what is described in detail above. More can be used as well, and the number of attachment mechanisms does not limit the disclosure. In some embodiments, the vehicle steps 1000/1000′ can move in concert, allowing the horizontal running board 8020 to move from the stowed position (FIG. 3B), through the intermediate position and into the deployed position (FIG. 3A).


Self-Energizing Mechanism for Vehicle Step


In some embodiments, the vehicle step 1000 can be self-energizing in either the deployed or stowed position, or in both positions. For example, a planar four-bar linkage can be used in some embodiments of the vehicle step 1000, allowing for stability and predictability in motion of the step. In some embodiments, a planar quadrilateral linkage can be used for self-energizing the vehicle step 1000. In some embodiments, a planar quadrilateral crank-rocker linkage can be used, which is described below.


In the stowed and deployed positions (respectively shown in FIGS. 7 and 9), the vehicle step 1000 is in a self-energized position so that a load applied to the top of the stepping platform 1020 in a relatively downwards motion does not move the vehicle step 1000 towards an intermediate position.


For example, any force exerted downward onto the bar the stepping platform 1020 of vehicle step 1000 desirably will increase the resistance of the vehicle step 1000 to moving. In some embodiments, the stepping platform 1020 would need to move upward before the vehicle step 1000 can translate.


In some embodiments, a motor 1075 can be used in conjunction with the vehicle step 1000. In some embodiments the motor 1075 can be rigidly mounted to the underside of a vehicle, such as through the use of a mounting bracket, thought he particular mounting method does not limit the disclosure. In some embodiments, the motor 1075 can be located generally adjacent to the vehicle step 1000.


In some embodiments, the motor 1075 turns a pinion gear about an axis roughly parallel to the plane defined by the underbody of a vehicle. The pinion gear can mesh with drive teeth formed at the end of arm 1060. Actuation of the motor 1075 can cause the pinion gear to rotate and the arm 1060 to counter-rotate with respect to the motor 1075 and pinion gear. As the arm 1060, rotates it can push the stepping platform 1020 by virtue of its connection to support component 1030. Thus, when the motor 1075 rotates, the motor 1075 can move the stepping platform 1020 between a stowed position (FIG. 7) wherein the stepping deck is generally positioned inward from the exterior of the vehicle or fixed running board and a deployed position (FIG. 9) in which the stepping platform 1020 is extended sufficiently to provide a step for at least the forefoot portion of a user's foot.


As the vehicle step 1000 moves between the stowed position and the deployed position under the power of the motor 1075, arm 1040 rotates as well and the deployed position is reached when the stop contact arm 1060.


When the vehicle step 1000 is in the deployed position, a downward force exerted on the stepping platform 1020 causes a stop to bear against arm 1060. This arrangement causes the load on the stepping platform 1020 to be borne primarily by the support component 1030 and arm 1040. In the deployed position, the vehicle step 1000 takes on a geometry such that the support component 1030 and arm 1040 are loaded in tension. The torque generated by a load on the stepping platform 1020 is opposed by arm 1060, which is thus loaded in axial compression. Due to the particular configuration, the motor 1075 is isolated from the load on the stepping platform 1020.


This aspect of the vehicle step 1000 prevents damage to the motor 1075 by eliminating “back-loading,” as there is no torque reaction about the end of arm 1060, even when very heavy loads are placed on the stepping platform 1020. Thus the motor 1075 is not needed to exert a counter-torque on arm 1060 to support the load on the stepping platform 1020. This feature also eliminates the need for balky, unreliable clutches or any other means of disconnecting the motor 1075 from the vehicle step 1000, or retractable stops or the like to engage and support the vehicle step 1000 when in the extended position.


With these features the vehicle step 1000 provides a practical stepping assist for a vehicle user, which can be quickly moved into an extended position for use and retracted out of the way when necessary. As detailed above, this functionality is provided with a minimum of mechanical complexity and a high level of reliability. Moreover, the vehicle step 1000 is easily connected to a vehicle's existing systems to allow even greater usability. For example, the motor 1075 may be connected to the vehicle's electrical system to cause the vehicle step 1000 to quickly move to the extended position upon shutting off the vehicle's engine, placing the vehicle in park, opening a door, or signaling the power door-lock system with a remote device or control such as a key fob control. Similarly, the motor 1075 may be signaled to retract the vehicle step 1000 upon starting the engine, placing the vehicle in drive, closing or locking the door(s) with which the step is associated, etc.


In the embodiment presently under discussion, when the vehicle step 1000 is in the stowed position, it is concealed, preferably completely concealed, from the view of a typical standing adult curbside observer of the vehicle. In this position the vehicle step 1000, can be disposed behind the lowest extension or lower edge of the vehicle underbody. In some embodiments, the vehicle step 1000 is not visible to an adult standing 5 feet from the vehicle; in some embodiments, the vehicle step 1000 is not visible to an adult standing 10 feet from the vehicle; in some embodiments, the vehicle step 1000 is not visible to an adult standing 20 feet from the vehicle.


In some embodiments, a clutch may be used as well.


In some embodiments, in the self-energized position there can be some slight rotational movement of the stepping platform 1020. For example, the stepping platform 1020 can rotate approximately 0.5, 1, 2, 3, 4, or 5 degrees without movement of the vehicle step 1000 or/or moving the vehicle step 1000 to a position where the vehicle step 1000 is not still self-energized. In some embodiments, the stepping platform 1020 can rotate approximately less than 0.5, 1, 2, 3, 4, or 5 degrees without translating the vehicle step 1000 or/or moving the vehicle step 1000 to a position where the vehicle step 1000 is not still self-energized. This ensures that the vehicle step 1000 remains self-energized even if the stepping platform 1020 is bumped and/or moves somewhat.


Integration of Stepping Structure and Side Bar


In some embodiments, the side bar 100 and step 1000 can be attached to one another through the use of a mounting bracket 150. In some embodiments, the side bar 100 and step 1000 can be removably attached to one another. In some embodiments, the side bar 100 and step 1000 can be permanently attached to one another. Further, as discussed above, the side bar 100 may be configured to translate in comparison to the step 1000.



FIG. 12 shows a reverse viewpoint with the step 1000 in the deployed position. As shown, the frame 1080 of the step 1000 can be attached to a mounting bracket 150. The mounting bracket 150 can then be attached to the vehicle. Further, the side bar 100 can also be attached to the mounting bracket 150, thereby forming the combination assembly 10. As shown in FIG. 12, a plurality of mounting brackets 150 can be used in the combination assembly 10. In some embodiments, the mounting brackets 150 may attach to both the step 1000 and side bar 100. In some embodiments, the mounting brackets 150 may only attached to the side bar 100. FIG. 13 shows a close-up view of the connection portions of the side bar 100, mounting bracket 150, and step 1000.



FIG. 14 shows a cross section of the side bar 100 and step 1000 in the stowed position. Specifically, as shown, at least a front edge 1010 of the stepping platform 1020 can be located within the channel 149 of the side bar main body 102. By having the stepping platform 1020 be located within the channel 149, the combination assembly 10 can have improved aesthetic appeal, as well as allowed the step 1000 to be located out of the way. Without such a channel 149, the step 1000 would have to be located below or behind the side bar 100. If it was below the side bar 100, the step would be located in an unappealing position, and may be more easily damaged than if located within the channel 149. If the step 100 was located behind the side bar 100, it would have a significant distance to extend for viable use by a user, which could provide unwanted torque onto the motor 1075.


In some embodiments, the step 1000 and side bar 100 can be used on both sides of vehicle 20. In some embodiments, the step 1000 and side bar 100 are the same length (Ls/Lr) on both sides of vehicle 20. In some embodiments, the step 1000 and side bar 100 are the different lengths (Ls/Lr) on both sides of vehicle 20. In some embodiments, the step 1000 and side bar 100 can have a different length (Ls/Lr). In some embodiments, the step 1000 and side bar 100 can have the same length (Ls/Lr).


From the foregoing description, it will be appreciated that embodiments of an inventive vehicle step and side bar combination are disclosed. While several components, techniques and aspects have been described with a certain degree of particularity, it is manifest that many changes can be made in the specific designs, constructions and methodology herein above described without departing from the spirit and scope of this disclosure.


Certain features that are described in this disclosure in the context of separate implementations can also be implemented in combination in a single implementation. Conversely, various features that are described in the context of a single implementation can also be implemented in multiple implementations separately or in any suitable subcombination. Moreover, although features may be described above as acting in certain combinations, one or more features from a claimed combination can, in some cases, be excised from the combination, and the combination may be claimed as any subcombination or variation of any subcombination.


Moreover, while methods may be depicted in the drawings or described in the specification in a particular order, such steps need not be performed in the particular order shown or in sequential order, and that all steps need not be performed, to achieve desirable results. Other methods that are not depicted or described can be incorporated in the example methods and processes. For example, one or more additional methods can be performed before, after, simultaneously, or between any of the described methods. Further, the methods may be rearranged or reordered in other implementations. Also, the separation of various system components in the implementations described above should not be understood as requiring such separation in all implementations, and it should be understood that the described components and systems can generally be integrated together in a single product or packaged into multiple products. Additionally, other implementations are within the scope of this disclosure.


Conditional language, such as “can,” “could,” “might,” or “may,” unless specifically stated otherwise, or otherwise understood within the context as used, is generally intended to convey that certain embodiments include or do not include, certain features, elements, and/or steps. Thus, such conditional language is not generally intended to imply that features, elements, and/or steps are in any way required for one or more embodiments.


Conjunctive language such as the phrase “at least one of X, Y, and Z,” unless specifically stated otherwise, is otherwise understood with the context as used in general to convey that an item, term, etc. may be either X, Y, or Z. Thus, such conjunctive language is not generally intended to imply that certain embodiments require the presence of at least one of X, at least one of Y, and at least one of Z.


Language of degree used herein, such as the terms “approximately,” “about,” “generally,” and “substantially” as used herein represent a value, amount, or characteristic close to the stated value, amount, or characteristic that still performs a desired function or achieves a desired result. For example, the terms “approximately”, “about”, “generally,” and “substantially” may refer to an amount that is within less than or equal to 10% of, within less than or equal to 5% of, within less than or equal to 1% of, within less than or equal to 0.1% of, and within less than or equal to 0.01% of the stated amount.


Some embodiments have been described in connection with the accompanying drawings. The figures are drawn to scale, but such scale should not be limiting, since dimensions and proportions other than what are shown are contemplated and are within the scope of the disclosed inventions. Distances, angles, etc. are merely illustrative and do not necessarily bear an exact relationship to actual dimensions and layout of the devices illustrated. Components can be added, removed, and/or rearranged. Further, the disclosure herein of any particular feature, aspect, method, property, characteristic, quality, attribute, element, or the like in connection with various embodiments can be used in all other embodiments set forth herein. Additionally, it will be recognized that any methods described herein may be practiced using any device suitable for performing the recited steps.


While a number of embodiments and variations thereof have been described in detail, other modifications and methods of using the same will be apparent to those of skill in the art. Accordingly, it should be understood that various applications, modifications, materials, and substitutions can be made of equivalents without departing from the unique and inventive disclosure herein or the scope of the claims.

Claims
  • 1. A method of mounting a combination side bar and vehicle step assembly to a vehicle, the method comprising: providing a mounting bracket that comprises a mounting surface and an aperture;attaching the mounting surface of the mounting bracket to a vehicle;providing a side bar that comprises an opening extending along a longitudinal direction, the side bar selected from a group consisting of a running board, a nerf bar, or a rock rail;positioning at least a portion of the side bar under a door of the vehicle;positioning a fastener at least partially within the opening of the side bar and at least partially within the aperture of the mounting bracket;adjusting a position of the side bar with respect to the mounting bracket and the fastener by sliding the side bar along the longitudinal direction with respect to the mounting bracket and the fastener;tightening the fastener to prevent further sliding of the side bar with respect to the mounting bracket and the fastener;providing an extendable vehicle step that comprises a frame, a pair of arms pivotably coupled to the frame, and a stepping platform pivotably coupled to the pair of arms;attaching the frame of the extendable vehicle step to the mounting bracket;moving the stepping platform to a stored position inboard of an outboard edge of the side barn; andmoving the stepping platform to a deployed position, with an outboard edge of the stepping platform positioned outboard of the outboard edge of the side bar.
  • 2. The method of claim 1, further comprising: providing a second mounting bracket that comprises a mounting surface and an aperture;attaching the mounting surface of the second mounting bracket to the vehicle; andattaching the side bar to the second mounting bracket using a second fastener.
  • 3. The method of claim 2, further comprising: attaching a second frame of the extendable vehicle step to the second mounting bracket.
  • 4. The method of claim 3, further comprising: providing at least one additional mounting bracket;attaching the at least one additional mounting bracket to the vehicle; andattaching only the side bar to the at least one additional mounting bracket.
  • 5. The method of claim 1, wherein the side bar is a first side bar, and the method further comprises: providing a second mounting bracket that comprises a mounting surface and an aperture;attaching the mounting surface of the second mounting bracket to the vehicle;providing a second side bar that comprises an opening extending along the longitudinal direction, the second side bar selected from a group consisting of a running board, a nerf bar, or a rock rail;positioning at least a portion of the second side bar under a second door of the vehicle;positioning a second fastener at least partially within the opening of the second side bar and at least partially within the aperture of the second mounting bracket;adjusting a position of the second side bar with respect to the second mounting bracket and the second fastener by sliding the second side bar along the longitudinal direction with respect to the second mounting bracket and the second fastener;tightening the second fastener to prevent further sliding of the second side bar with respect to the second mounting bracket and the second fastener;providing a second extendable vehicle step that comprises a frame, a pair of arms pivotably coupled to the frame, and a stepping platform pivotably coupled to the pair of arms;attaching the frame of the second extendable vehicle step to the second mounting bracket;moving the stepping platform of the second extendable vehicle step to a stored position inboard of an outboard edge of the second side bar; andmoving the stepping platform of the second extendable vehicle step to a deployed position, with an outboard edge of the stepping platform of the second extendable vehicle step positioned outboard of the outboard edge of the second side bar.
  • 6. The method of claim 5, wherein the providing the second side bar comprises providing the second side bar as a side bar that comprises a same length as the first side bar.
  • 7. The method of claim 5, wherein the providing the second side bar comprises providing the second side bar as a side bar that comprises a different length than the first side bar.
  • 8. The method of claim 5, wherein the attaching the mounting surface of the mounting bracket to the vehicle comprises attaching the mounting surface of the mounting bracket to a first side of the vehicle, and the attaching the mounting surface of the second mounting bracket to the vehicle comprises attaching the mounting surface of the second mounting bracket to a second side of the vehicle.
  • 9. The method of claim 1, wherein the providing the side bar comprises providing the side bar as a side bar that comprises an underside comprising a channel extending along the longitudinal direction, the channel formed by at least an inboard facing wall and downward facing wall; and wherein the moving the stepping platform to the stored position comprises positioning the outboard edge of the stepping platform within the channel of the underside of the side bar.
  • 10. The method of claim 1, wherein the providing the side bar comprises providing the side bar as a side bar that comprises an underside comprising a channel extending along the longitudinal direction, the channel formed by at least a downward facing wall and an inboard facing wall that is inclined such that a lower end of the inboard facing wall is positioned outboard of an upper end of the inboard facing wall; and wherein the moving the stepping platform to the stored position comprises positioning the outboard edge of the stepping platform within the channel of the underside of the side bar.
  • 11. A method of mounting a combination side bar and vehicle step assembly to a vehicle, the method comprising: providing a side bar that comprises an underside comprising a channel extending along a longitudinal direction, the channel formed by at least an inboard facing wall and a downward facing wall, the side bar selected from a group consisting of a running board, a nerf bar, or a rock rail;positioning at least a portion of the side bar under a door of a vehicle;attaching the side bar to a frame of the vehicle;providing an extendable vehicle step that comprises a frame, a pair of arms pivotably coupled to the frame, and a stepping platform pivotably coupled to the pair of arms;attaching the extendable vehicle step to the frame of the vehicle;moving the stepping platform to a stored position, with an outboard edge of the stepping platform positioned within the channel of the underside of the side bar; andmoving the stepping platform to a deployed position, with the outboard edge of the stepping platform positioned outboard of an outboard edge of the side bar.
  • 12. The method of claim 11, further comprising: providing the side bar as a side bar that comprises an opening extending along the longitudinal direction; andwherein the attaching the side bar to the frame of the vehicle comprises: positioning a fastener at least partially within the opening of the side bar;adjusting a position of the side bar with respect to the frame of the vehicle and the fastener by sliding the side bar along the longitudinal direction with respect to the frame of the vehicle and the fastener; andtightening the fastener to prevent further sliding of the side bar with respect to the frame of the vehicle and the fastener.
  • 13. The method of claim 11, further comprising: providing a mounting bracket that comprises a mounting surface;attaching the mounting surface of the mounting bracket to the frame of the vehicle; andwherein the attaching the side bar to the frame of the vehicle comprises attaching the side bar to the mounting bracket.
  • 14. The method of claim 13, wherein the attaching the extendable vehicle step to the frame of the vehicle comprises attaching the frame of the extendable vehicle step to the mounting bracket.
  • 15. The method of claim 11, wherein the side bar is a first side bar, and the method further comprises: providing a second side bar that comprises an underside comprising a channel extending along the longitudinal direction, the channel formed by at least an inboard facing wall and a downward facing wall, the second side bar selected from a group consisting of a running board, a nerf bar, or a rock rail;positioning at least a portion of the second side bar under a second door of the vehicle;attaching the second side bar to the frame of the vehicle;providing a second extendable vehicle step that comprises a frame, a pair of arms pivotably coupled to the frame, and a stepping platform pivotably coupled to the pair of arms;attaching the second extendable vehicle step to the frame of the vehicle;moving the stepping platform of the second extendable vehicle step to a stored position, with an outboard edge of the stepping platform of the second extendable vehicle step positioned within the channel of the underside of the second side bar; andmoving the stepping platform of the second extendable vehicle step to a deployed position, with the outboard edge of the stepping platform of the second extendable vehicle step positioned outboard of an outboard edge of the second side bar.
  • 16. The method of claim 15, wherein the providing the second side bar comprises providing the second side bar as a side bar that comprises a same length as the first side bar.
  • 17. The method of claim 15, wherein the providing the second side bar comprises providing the second side bar as a side bar that comprises a different length than the first side bar.
  • 18. The method of claim 15, wherein the positioning at least a portion of the first side bar under a door of the vehicle comprises positioning the first side bar on a first side of the vehicle, and wherein the positioning at least a portion of the second side bar under a second door of the vehicle comprises positioning the second side bar on a second side of the vehicle.
  • 19. The method of claim 11, wherein the providing the side bar comprises providing the side bar as a side bar that comprises the underside comprising the channel extending along the longitudinal direction, the channel formed by at least the inboard facing wall and the downward facing wall, the inboard facing wall being inclined such that a lower end of the inboard facing wall is positioned outboard of an upper end of the inboard facing wall.
US Referenced Citations (387)
Number Name Date Kind
7591 Burdett Aug 1850 A
752031 Chadwick Feb 1904 A
955658 Mitchell et al. Apr 1910 A
1250604 Lorenc Dec 1917 A
1449031 Blake Mar 1923 A
1471972 Miller Oct 1923 A
2041640 Goss May 1936 A
2122040 Machovec Jun 1938 A
2125085 Pool Jul 1938 A
2436961 Gabriel Mar 1948 A
2487921 Culver Nov 1949 A
2492068 Schofield et al. Dec 1949 A
2566401 Bustin Sep 1951 A
2575615 Crump Nov 1951 A
2583894 Shuck Jan 1952 A
2645504 Branstrator et al. Jul 1953 A
2669613 Despard Feb 1954 A
2678832 Wright May 1954 A
2764422 McDonald Sep 1956 A
2925876 Wagner Feb 1960 A
3039562 Wagner Jun 1962 A
3095216 Browne Jun 1963 A
3172499 Stairs Mar 1965 A
3329443 Lowder et al. Jul 1967 A
3392990 Wolf Jul 1968 A
3488066 Hansen Jan 1970 A
3494634 De Paula Feb 1970 A
3522396 Norden Jul 1970 A
3528574 Denner et al. Sep 1970 A
3572754 Fowler Mar 1971 A
3608957 Maneck Sep 1971 A
3671058 Kent Jun 1972 A
3762742 Bucklen Oct 1973 A
3807757 Carpenter et al. Apr 1974 A
3833240 Weiler Sep 1974 A
3865399 Way Feb 1975 A
3887217 Thomas Jun 1975 A
3889997 Schoneck Jun 1975 A
3891261 Finneman Jun 1975 A
3957284 Wright May 1976 A
3961809 Clugston Jun 1976 A
3980319 Kirkpatrick Sep 1976 A
3981515 Rosborough Sep 1976 A
4020920 Abbott May 1977 A
4068542 Brand et al. Jan 1978 A
4073502 Frank et al. Feb 1978 A
4089538 Eastridge May 1978 A
4106790 Weiler Aug 1978 A
4110673 Nagy et al. Aug 1978 A
4116457 Nerem et al. Sep 1978 A
4164292 Karkau Aug 1979 A
4174021 Barlock Nov 1979 A
4180143 Clugston Dec 1979 A
4185849 Jaeger Jan 1980 A
4188889 Favrel Feb 1980 A
4231583 Learn Nov 1980 A
4312515 Allori Jan 1982 A
4424751 Blochlinger Jan 1984 A
4440364 Cone et al. Apr 1984 A
4462486 Dignan Jul 1984 A
4536004 Brynielsson et al. Aug 1985 A
4542805 Hamlin et al. Sep 1985 A
4570962 Chavira Feb 1986 A
4623160 Trudell Nov 1986 A
D287001 Jarvie et al. Dec 1986 S
4679810 Kimball Jul 1987 A
D292904 Bielby Nov 1987 S
4720116 Williams et al. Jan 1988 A
4733752 Sklar Mar 1988 A
4909700 Fontecchio et al. Mar 1990 A
4982974 Guidry Jan 1991 A
5005667 Anderson Apr 1991 A
5005850 Baughman Apr 1991 A
5039119 Baughman Aug 1991 A
5085450 DeHart, Sr. Feb 1992 A
5137294 Martin Aug 1992 A
5154125 Renner et al. Oct 1992 A
5195609 Ham et al. Mar 1993 A
5199731 Martin Apr 1993 A
5228707 Yoder Jul 1993 A
5228761 Huebschen et al. Jul 1993 A
5238300 Slivon et al. Aug 1993 A
D340905 Orth et al. Nov 1993 S
5257847 Yonehara Nov 1993 A
5284349 Bruns et al. Feb 1994 A
5286049 Khan Feb 1994 A
5342073 Poole Aug 1994 A
5358268 Hawkins Oct 1994 A
5375864 McDaniel Dec 1994 A
5423463 Weeks Jun 1995 A
5439342 Hall et al. Aug 1995 A
5462302 Leitner Oct 1995 A
5478124 Warrington Dec 1995 A
5498012 McDaniel et al. Mar 1996 A
5501475 Bundy Mar 1996 A
5505476 Maccabee Apr 1996 A
5513866 Sisson May 1996 A
5538100 Hedley Jul 1996 A
5538265 Chen et al. Jul 1996 A
5538269 McDaniel et al. Jul 1996 A
5547040 Hanser et al. Aug 1996 A
5584493 Demski et al. Dec 1996 A
5601300 Fink et al. Feb 1997 A
5697623 Bermes et al. Dec 1997 A
5697626 McDaniel Dec 1997 A
5727840 Ochiai et al. Mar 1998 A
5779208 McGraw Jul 1998 A
5842709 Maccabee Dec 1998 A
5897125 Bundy Apr 1999 A
5941342 Lee Aug 1999 A
5957237 Tigner Sep 1999 A
6042052 Smith et al. Mar 2000 A
6055780 Yamazaki May 2000 A
6082751 Hanes et al. Jul 2000 A
6112152 Tuttle Aug 2000 A
6149172 Pascoe et al. Nov 2000 A
6168176 Mueller Jan 2001 B1
6179312 Paschke et al. Jan 2001 B1
6203040 Hutchins Mar 2001 B1
6213486 Kunz et al. Apr 2001 B1
6264222 Johnston et al. Jul 2001 B1
6270099 Farkash Aug 2001 B1
6325397 Pascoe Dec 2001 B1
6352295 Leitner Mar 2002 B1
6375207 Dean et al. Apr 2002 B1
6412799 Schrempf Jul 2002 B1
6422342 Armstrong et al. Jul 2002 B1
6425572 Lehr Jul 2002 B1
6430164 Jones et al. Aug 2002 B1
6435534 Stone Aug 2002 B1
6439342 Boykin Aug 2002 B1
6460915 Bedi et al. Oct 2002 B1
6511086 Schlicht Jan 2003 B2
6513821 Heil Feb 2003 B1
6533303 Watson Mar 2003 B1
6588783 Fichter Jul 2003 B2
6641158 Leitner Nov 2003 B2
6659484 Knodle et al. Dec 2003 B2
6663125 Cheng Dec 2003 B1
6746033 McDaniel Jun 2004 B1
6769704 Cipolla Aug 2004 B2
6810995 Warford Nov 2004 B2
6812466 O'Connor et al. Nov 2004 B2
6830257 Leitner Dec 2004 B2
6834875 Leitner Dec 2004 B2
6840526 Anderson et al. Jan 2005 B2
6874801 Fichter Apr 2005 B2
6880843 Greer, Jr. Apr 2005 B1
6912912 Reichinger et al. Jul 2005 B2
6918624 Miller et al. Jul 2005 B2
6926295 Berkebile et al. Aug 2005 B2
6938909 Leitner Sep 2005 B2
6942233 Leitner et al. Sep 2005 B2
6942272 Livingston Sep 2005 B2
6948903 Ablabutyan et al. Sep 2005 B2
6951357 Armstrong et al. Oct 2005 B2
6955370 Fabiano et al. Oct 2005 B2
6959937 Schneider et al. Nov 2005 B2
6966597 Tegtmeier Nov 2005 B2
6971652 Bobbert et al. Dec 2005 B2
6997469 Lanoue et al. Feb 2006 B2
7000932 Heil et al. Feb 2006 B2
7007961 Leitner Mar 2006 B2
7017927 Henderson Mar 2006 B2
7055839 Leitner Jun 2006 B2
7070194 Garland et al. Jul 2006 B2
7090276 Bruford et al. Aug 2006 B1
7111858 Manser Sep 2006 B2
7111859 Kim et al. Sep 2006 B2
7118120 Lee et al. Oct 2006 B2
7118150 Bruford et al. Oct 2006 B2
7163221 Leitner Jan 2007 B2
7185904 Jones Mar 2007 B1
7219911 Sukonthapanich et al. May 2007 B2
7258386 Leitner Aug 2007 B2
7287770 Drabant Oct 2007 B2
7287771 Lee et al. Oct 2007 B2
7311320 Kuntze et al. Dec 2007 B2
7318596 Scheuring, III et al. Jan 2008 B2
7360779 Crandall Apr 2008 B2
7367574 Leitner May 2008 B2
7377531 Fabiano et al. May 2008 B2
7380807 Leitner Jun 2008 B2
7398985 Leitner et al. Jul 2008 B2
7413204 Leitner Aug 2008 B2
7413205 Watson Aug 2008 B2
7413233 Jung Aug 2008 B1
7416202 Fichter Aug 2008 B2
7434825 Williams Oct 2008 B2
7438305 Schulz Oct 2008 B2
7441790 Lechkun Oct 2008 B2
7445221 Kobayashi Nov 2008 B2
7469916 Watson Dec 2008 B2
7487986 Leitner Feb 2009 B2
7513520 Okuyama Apr 2009 B2
7513565 Watson Apr 2009 B2
7516703 Tazreiter Apr 2009 B2
7530619 Bruford et al. May 2009 B1
7566064 Leitner et al. Jul 2009 B2
7584975 Leitner Sep 2009 B2
7585033 Holt Sep 2009 B2
7594672 Piotrowski Sep 2009 B2
7621546 Ross et al. Nov 2009 B2
7635247 Collins Dec 2009 B2
7637519 Leitner et al. Dec 2009 B2
7673892 Kuntze et al. Mar 2010 B2
7703784 Plavetich Apr 2010 B2
7712755 Yang et al. May 2010 B2
7717444 Fichter May 2010 B2
D618148 Hoppert Jun 2010 S
7731212 Storer Jun 2010 B2
7740260 VanBelle et al. Jun 2010 B2
7740261 Leitner et al. Jun 2010 B2
7766357 Arvanites Aug 2010 B2
7775536 Shumway Aug 2010 B2
7793596 Hirtenlehner Sep 2010 B2
7823896 VanBelle Nov 2010 B2
7874565 Duncan Jan 2011 B2
D634687 Vukel Mar 2011 S
7900944 Watson Mar 2011 B2
7909344 Bundy Mar 2011 B1
7934737 Okada May 2011 B2
7976042 Watson et al. Jul 2011 B2
8038164 Stahl et al. Oct 2011 B2
8042821 Yang Oct 2011 B2
D649100 Cheng Nov 2011 S
8052162 Yang et al. Nov 2011 B2
8056913 Kuntze et al. Nov 2011 B2
8070173 Watson Dec 2011 B2
8136826 Watson Mar 2012 B2
8157277 Leitner et al. Apr 2012 B2
8177247 Carr May 2012 B1
8205901 Yang et al. Jun 2012 B2
D665713 Pochurek et al. Aug 2012 S
8262113 Chafey et al. Sep 2012 B1
8297635 Agoncillo et al. Oct 2012 B2
D671874 Kekich et al. Dec 2012 S
8342550 Stickles et al. Jan 2013 B2
8342551 Watson et al. Jan 2013 B2
8360455 Leitner et al. Jan 2013 B2
D676368 Cover Feb 2013 S
8366129 Salmon Feb 2013 B2
8382132 Kowalski Feb 2013 B2
8408571 Leitner et al. Apr 2013 B2
8419034 Leitner et al. Apr 2013 B2
8448967 Storer May 2013 B2
8448968 Grote et al. May 2013 B1
8463953 Davis et al. Jun 2013 B2
8469380 Yang et al. Jun 2013 B2
8602431 May Dec 2013 B1
8641068 Bundy Feb 2014 B1
8662512 May Mar 2014 B2
8668217 Ziaylek Mar 2014 B2
8696005 Kim Apr 2014 B2
8720924 Ruehl May 2014 B2
8827293 Bundy Sep 2014 B1
8827294 Leitner et al. Sep 2014 B1
8833781 Hayes Sep 2014 B2
8833782 Huotari Sep 2014 B2
8844957 Leitner et al. Sep 2014 B2
D720674 Stanesic et al. Jan 2015 S
8936266 Leitner et al. Jan 2015 B2
8944451 Leitner et al. Feb 2015 B2
8985606 Fichter Mar 2015 B2
9156406 Stanesic et al. Oct 2015 B2
9272667 Smith Mar 2016 B2
9302626 Leitner et al. Apr 2016 B2
9308870 Yang Apr 2016 B2
9346404 Bundy May 2016 B1
9346405 Leitner et al. May 2016 B2
9434317 Nania Sep 2016 B2
9452713 Stickles Sep 2016 B2
9499093 Salter et al. Nov 2016 B1
9499094 Dellock et al. Nov 2016 B1
9511717 Smith Dec 2016 B2
9522634 Smith Dec 2016 B1
9527449 Smith Dec 2016 B2
9550458 Smith et al. Jan 2017 B2
9561751 Leitner et al. Feb 2017 B2
9656609 Du et al. May 2017 B2
9669766 Du et al. Jun 2017 B2
9669767 Du et al. Jun 2017 B2
9688205 Du et al. Jun 2017 B2
9701249 Leitner et al. Jul 2017 B2
9809172 Stanesic et al. Nov 2017 B2
9834147 Smith Dec 2017 B2
9902328 Mazur Feb 2018 B1
9944231 Leitner et al. Apr 2018 B2
9963076 Bender et al. May 2018 B1
9975490 Ozog et al. May 2018 B1
9994168 Jensen et al. Jun 2018 B1
10053017 Leitner et al. Aug 2018 B2
10065486 Smith et al. Sep 2018 B2
10077016 Smith et al. Sep 2018 B2
10081302 Frederick et al. Sep 2018 B1
10106069 Rasekhi Oct 2018 B2
10106086 Eckstein et al. Oct 2018 B1
10106087 Stojkovic et al. Oct 2018 B2
10106088 Smith Oct 2018 B2
10118557 Pribisic Nov 2018 B2
10124839 Povinelli et al. Nov 2018 B2
10144345 Stinson et al. Dec 2018 B2
10150419 Derbis et al. Dec 2018 B2
10155474 Salter et al. Dec 2018 B2
10173595 Ulrich Jan 2019 B1
10183623 Kirshnan et al. Jan 2019 B2
10183624 Leitner et al. Jan 2019 B2
10189517 Povinelli et al. Jan 2019 B2
10195997 Smith Feb 2019 B2
10207598 Reynolds et al. Feb 2019 B2
10214963 Simula et al. Feb 2019 B2
10246019 Carr Apr 2019 B1
10246137 Ngo Apr 2019 B2
10272841 Wymore Apr 2019 B1
10272842 Du et al. Apr 2019 B2
10322677 Leitner et al. Jun 2019 B1
10336260 Salter et al. Jul 2019 B1
10336378 Marchlewski et al. Jul 2019 B2
10343610 Long et al. Jul 2019 B2
10351182 Zielinski et al. Jul 2019 B2
10384614 Du et al. Aug 2019 B1
10391944 Stanesic et al. Aug 2019 B2
10493920 Leitner et al. Dec 2019 B2
10596971 Leitner et al. Mar 2020 B2
10604077 Stanesic et al. Mar 2020 B2
10618472 Du et al. Apr 2020 B2
10676031 Leitner et al. Jun 2020 B2
10676033 Carr et al. Jun 2020 B1
10759349 Leitner Sep 2020 B2
10773670 Smith et al. Sep 2020 B2
10821903 Stanesic et al. Nov 2020 B2
11173845 Leitner et al. Nov 2021 B2
11180100 Smith et al. Nov 2021 B2
11260798 Smith Mar 2022 B2
11279290 Leitner Mar 2022 B2
20020109446 Arnold Aug 2002 A1
20020130531 Leitner Sep 2002 A1
20030090081 Oakley May 2003 A1
20030094781 Jaramillo et al. May 2003 A1
20030200700 Leitner Oct 2003 A1
20040207224 Miller et al. Oct 2004 A1
20050117969 Byrne Jun 2005 A1
20050146157 Leitner Jul 2005 A1
20050263974 Mulder Dec 2005 A1
20060208449 Kuo et al. Sep 2006 A1
20070017743 Yeh Jan 2007 A1
20080034552 Nguyen Feb 2008 A1
20080054586 Lechkun Mar 2008 A1
20080084045 Filias et al. Apr 2008 A1
20080224438 Okada Sep 2008 A1
20090072507 Storer Mar 2009 A1
20090203247 Fifelski et al. Aug 2009 A1
20090308688 Tayar Dec 2009 A1
20100176607 Hardy et al. Jul 2010 A1
20100194070 Stauffer et al. Aug 2010 A1
20120025485 Yang et al. Feb 2012 A1
20130154230 Ziaylek et al. Jun 2013 A1
20130221632 Higgs et al. Aug 2013 A1
20150321612 Leitner et al. Nov 2015 A1
20150321613 Leitner et al. Nov 2015 A1
20160039346 Yang Feb 2016 A1
20160288718 Hayes et al. Oct 2016 A1
20170021781 Du et al. Jan 2017 A1
20170036607 Du et al. Feb 2017 A1
20170298675 Dimig et al. Oct 2017 A1
20180281687 Derbis et al. Oct 2018 A1
20190009725 Stojkovic et al. Jan 2019 A1
20190047477 Crandall Feb 2019 A1
20190071021 Pribisic Mar 2019 A1
20190084482 Long et al. Mar 2019 A1
20190084628 Povinelli et al. Mar 2019 A1
20190118720 Otacioglu et al. Apr 2019 A1
20190118750 Bosco Apr 2019 A1
20190126832 Knichel May 2019 A1
20190126870 Rife et al. May 2019 A1
20190152542 Povinelli et al. May 2019 A1
20190176709 Leitner Jun 2019 A1
20200189473 Norris Jun 2020 A1
20200282913 Qing et al. Sep 2020 A1
20200317133 Leitner Oct 2020 A1
20200331396 Du et al. Oct 2020 A1
20200361389 Leitner et al. Nov 2020 A1
20210347303 Qing et al. Nov 2021 A1
20210347304 Qing et al. Nov 2021 A1
20220063502 Leitner et al. Mar 2022 A1
20220153197 Smith May 2022 A1
20220332254 Smith Oct 2022 A1
Foreign Referenced Citations (82)
Number Date Country
2082177 May 1994 CA
2332193 Sep 2001 CA
2174368 Aug 1994 CN
2737608 Nov 2005 CN
101081609 Dec 2007 CN
201280106 Jul 2009 CN
100545005 Sep 2009 CN
102452357 May 2012 CN
202758405 Feb 2013 CN
202847566 Apr 2013 CN
2801557 Jun 2013 CN
103149915 Jun 2013 CN
108791086 Nov 2018 CN
208232903 Dec 2018 CN
208325054 Jan 2019 CN
208344082 Jan 2019 CN
109318812 Feb 2019 CN
109318813 Feb 2019 CN
109383384 Feb 2019 CN
109383386 Feb 2019 CN
109383388 Feb 2019 CN
109383390 Feb 2019 CN
109383392 Feb 2019 CN
208452901 Feb 2019 CN
208559193 Mar 2019 CN
208731206 Apr 2019 CN
109795418 May 2019 CN
208896972 May 2019 CN
3151621 Jul 1983 DE
3932142 Apr 1990 DE
8910933 Oct 1990 DE
0066493 Dec 1982 EP
1116840 Jul 2001 EP
3002157 Apr 2016 EP
3176038 Jan 2019 EP
3237254 Feb 2019 EP
3461713 Apr 2019 EP
1350593 Dec 1963 FR
2225612 Aug 1974 FR
934387 Aug 1963 GB
936846 Sep 1963 GB
2045699 Nov 1980 GB
2129378 May 1984 GB
2201511 Sep 1988 GB
2288014 Oct 1994 GB
201741011829 Oct 2018 IN
201737025141 Mar 2019 IN
201741038321 May 2019 IN
63-255144 Oct 1988 JP
2004-339040 Nov 1992 JP
2004-342629 Nov 1992 JP
2005-310061 Nov 1993 JP
2005-310081 Nov 1993 JP
2008-132967 May 1996 JP
2018-177089 Nov 2018 JP
2019-001222 Jan 2019 JP
6509607 Apr 2019 JP
2019-069634 May 2019 JP
2017001699 Jun 2018 MX
2017001700 Jun 2018 MX
2017006328 Jun 2018 MX
2017008032 Sep 2018 MX
2017010183 Sep 2018 MX
2018000509 Nov 2018 MX
403594 Nov 1972 SU
M296187 Aug 2006 TW
M318551 Sep 2007 TW
WO 2001000441 Jan 2001 WO
WO 2002085670 Oct 2002 WO
WO 2003039910 May 2003 WO
WO 2003039920 May 2003 WO
WO 2003066380 Aug 2003 WO
WO 2003069294 Aug 2003 WO
WO 2006050297 May 2006 WO
WO 2009103163 Aug 2009 WO
WO 2017020527 Feb 2017 WO
WO 2017140081 Aug 2017 WO
WO 2017176226 Oct 2017 WO
WO 2018148643 Aug 2018 WO
WO 2018197393 Nov 2018 WO
WO 2019009131 Jan 2019 WO
WO 2019034493 Feb 2019 WO
Non-Patent Literature Citations (4)
Entry
One up Offroad Traction and Suspension Systems—http://www.oneupoffroad.com/ouoproducts/oneuprailstep.html; screenshot from Nov. 15, 2014 from https://archive.org/web.
One Up Offroad—One Up Step Installation, Introducing the New Patent Pending One Up Step dated Nov. 30, 2007.
One Up Offroad—One Up Step Installation, Instructions Part 2, Power Step Installation to One Up Step dated Nov. 30, 2007.
One Up Offroad—New Product Release, Introducing the New Patent Pending Design—One up Step dated Jan. 24, 2008.
Related Publications (1)
Number Date Country
20220219633 A1 Jul 2022 US
Provisional Applications (1)
Number Date Country
62171780 Jun 2015 US
Continuations (4)
Number Date Country
Parent 17016690 Sep 2020 US
Child 17455301 US
Parent 16123462 Sep 2018 US
Child 17016690 US
Parent 15406982 Jan 2017 US
Child 16123462 US
Parent 14846433 Sep 2015 US
Child 15406982 US