The present specification generally relates to plug mechanisms, and more specifically, locking plug mechanisms that seal openings of tube structures and methods of sealing openings of tube structures using locking plug mechanisms.
Vehicle engines include many moving parts. Those moving marts may generally require a lubricating fluid, such as an oil to operate effectively. Many engines have an oil reservoir associated therewith. The oil reservoir holds the oil and allows oil to be pumped into the engine through an oil pathway network.
Over time, it is not unusual for oil levels within the oil reservoir to decrease and also for the oil to need to be replaced. Many vehicles include an oil level gage, sometimes referred to as a dipstick that can be inserted into the oil reservoir through an oil level gage guide in order to test the oil level within the oil reservoir.
In some instances, such as during engine pressure testing, it may be desirable to pressurize the oil pathway network to detect possible leaks, which includes the oil reservoir. Because the oil level gage guide is in fluid communication with the oil reservoir, the oil level gage guide may also be pressurized.
What is desired are locking plug mechanisms that seal openings of tube structures and methods of sealing openings of tube structures using locking plug mechanisms.
In one embodiment, a locking plug mechanism includes a handle assembly that includes a handle body that is pivotally connected to a handle attachment member. A center pin member is connected to the handle attachment member. The center pin member is slidably received within an opening of a proximal spacer member comprising a proximal spacer located proximally on the center pin member. A distal spacer is located on the center pin member. A seal member is located on the center pin member between the proximal spacer and the distal spacer. The actuation of the handle assembly moves the center pin member relative to the proximal spacer and expands the seal member from a collapsed configuration to an expanded configuration.
In another embodiment, a method of sealing a tube structure using a locking plug mechanism is provided. The method includes inserting a center pin member into the tube structure. The center pin member is slidably received within an opening of a proximal spacer member that includes a proximal spacer located proximally on the center pin member. A width of a seal member located on the center pin member between the proximal spacer and a distal spacer is expanded by actuating a handle assembly thereby moving the center pin member relative to the proximal spacer.
In another embodiment, a locking plug mechanism that seals an oil level gage guide includes a handle assembly that includes a handle body that is pivotally connected to a handle attachment member. A center pin member is connected to the handle attachment member. The center pin member is slidably received within an opening of a proximal spacer member that includes a proximal spacer located proximally on the center pin member. The center pin member includes a center pin that is sized to be received within the oil level gage guide. A distal spacer is located on the center pin member. An expandable seal member is located on the center pin member between the proximal spacer and the distal spacer.
These and additional features provided by the embodiments described herein will be more fully understood in view of the following detailed description, in conjunction with the drawings.
The embodiments set forth in the drawings are illustrative and exemplary in nature and not intended to limit the subject matter defined by the claims. The following detailed description of the illustrative embodiments can be understood when read in conjunction with the following drawings, where like structure is indicated with like reference numerals and in which:
The present specification is generally directed to locking plug mechanisms that seal openings of tube structures and methods of sealing openings of tube structures using locking plug mechanisms. Vehicles, for example, include many tube structures at various places in the vehicle used for various purposes. One such tube structure may be an oil level gage guide that is used to guide an oil level gage to an oil reservoir. The oil level gage includes a graspable portion and a stick portion that extends away from the handle portion to a free end. The stick portion may be resiliently flexible to facilitate insertion into and through the oil level gage guide to the oil reservoir.
The oil level gage guide is in fluid communication with the oil reservoir. Under engine pressure testing conditions, it may be desirable to seal the oil level gage guide in order to prevent depressurization and receive more reliable results. To this end, the locking plug mechanisms include an insertion portion that is sized to be inserted into the oil level gage guide and a handle portion that can be actuated by a user. The insertion portion includes an expandable seal member having an expanded configuration of increased width or diameter and a collapsed configuration of reduced width or diameter. Actuation of the handle portion places the expandable seal member in either the expanded configuration of increased width dimension or the collapsed configuration of decreased width dimension.
As used herein, the term “vehicle longitudinal direction” refers to the forward-rearward direction of the vehicle (i.e., in the +/−vehicle X-direction depicted in
Motor vehicles that incorporate elements according to the present disclosure may include a variety of construction methodologies that are conventionally known, including a unibody construction methodology as well as a body-on-frame construction methodology.
Referring initially to
Referring briefly to
An oil level gage 48 may be connected to the oil level gage guide 42. The oil level gage 48 may include a graspable portion 50 and a stick portion 52 that extends outwardly from the graspable portion 50 to a free end. In the example of
Referring now to
Referring to
The handle body 70 is rotatably connected to the handle attachment member 64 (
The insertion portion 66 includes a center pin member 80 and an upper spacer member 82. The center pin member 80 slidably passes through the proximal spacer member and is attached to the handle attachment member 64. A seal member 84 is located about the center pin member 80. The seal member 84 is sandwiched between a distal spacer 86 that is attached to an end 88 of the center pin member 80 and an proximal spacer 90 that is connected to a spacer body 92 of the upper spacer member 82.
Referring to
Each leg structure 124 and 126 includes a cam portion 136. The cam portions 136 are shaped to provide regions 138 and 140 of different distances D1 and D2 from the openings 134 to the attachment body contact edges 128 and 130, where D2 is greater than D1. As one example, D1 may be a minimum distance to the attachment body contact edge 128, 130 and D2 may be a maximum distance to the attachment body contact edge 128, 130. In some embodiments, the region 138 may have a relatively rounded profile, while the region 140 may have a flat portion 144. The flat portion 144 can provide a locking surface that can be used to lock the locking plug mechanism 60 in the expanded configuration using corner 145, which can provide resistance against rotation of the handle assembly 68 from the expanded configuration toward the collapsed configuration.
Referring to
The center pin member 80 is illustrated by
Referring back to
The seal member 84 is formed of a resiliently flexible material, such as a rubber or plastic. The seal member 84 is sleeve or tube shaped, and positioned about the center pin 156. The outer diameters of the distal spacer 86 and the proximal spacer 90 are selected to be larger than the inner diameter of the seal member 84 to sandwich the seal member 84 therebetween and inhibit movement of the seal member 84 past the distal spacer 86 and the proximal spacer 90 during use. In the collapsed configuration, the distal spacer 86 of the center pin 156 is located relatively far from the proximal spacer 90, which allows a length L1 of the seal member 84 to expand to a maximum length and a width or diameter W1 of the seal member 84 to collapse to a minimum diameter.
Referring to
As noted above, the seal member 84 may be resilient and provide a biasing force to the handle assembly 68. However, the flat portion 144 and the corner 145 of the attachment body contact edge 128, 130 resists the tendency of the handle assembly 68 to rotate back toward the collapsed configuration until a manual force is applied to the handle assembly 68 in the direction opposite the arrow 160. Once the handle assembly 68 is rotated such that the corner clears the guide face 148 of the spacer body 92, the biasing force provided by the seal member 84 can move the handle assembly 68 back to the collapsed configuration.
While a single seal member is discussed above, a locking plug mechanism 200 may include many of the features of the locking plug mechanism 60, except that multiple seal members 202 are used as shown by
The above-described locking plug mechanisms include a handle portion and an insertion portion that can be inserted into an oil level gage guide with the locking plug mechanism in a collapsed configuration. Once the insertion portion of the locking plug mechanism is inserted into the oil level gage guide, the handle portion may be actuated by a user to place the locking plug mechanism in an expanded configuration. The locking plug mechanism includes a center pin member and a seal member that is located on the center pin member. In the collapsed configuration, the seal member has a relatively smaller diameter to facilitate insertion into the oil level gage guide. Placing the locking plug mechanism in the expanded configuration shortens the length of the seal member, which causes the seal member to expand in diameter. The seal member expands in diameter to engage the sidewall of the oil level gage guide to fluidly seal the oil level gage guide from any pressure leakage.
It is noted that the terms “substantially” and “about” may be utilized herein to represent the inherent degree of uncertainty that may be attributed to any quantitative comparison, value, measurement, or other representation. These terms are also utilized herein to represent the degree by which a quantitative representation may vary from a stated reference without resulting in a change in the basic function of the subject matter at issue.
While particular embodiments have been illustrated and described herein, it should be understood that various other changes and modifications may be made without departing from the spirit and scope of the claimed subject matter. Moreover, although various aspects of the claimed subject matter have been described herein, such aspects need not be utilized in combination. It is therefore intended that the appended claims cover all such changes and modifications that are within the scope of the claimed subject matter.
Number | Name | Date | Kind |
---|---|---|---|
2479862 | Payne | Aug 1949 | A |
3130571 | Neumann | Apr 1964 | A |
3349944 | Moeller | Oct 1967 | A |
3371418 | Moeller | Mar 1968 | A |
4035921 | Williams | Jul 1977 | A |
5086943 | Poskie | Feb 1992 | A |
5613303 | Kayano | Mar 1997 | A |
5829153 | Hitchock | Nov 1998 | A |
6419104 | Sarajian | Jul 2002 | B1 |
6883546 | Kobylinski | Apr 2005 | B1 |
7694430 | Groot | Apr 2010 | B1 |
8186074 | Hart et al. | May 2012 | B2 |
8230889 | Pratt et al. | Jul 2012 | B2 |
8764767 | Barker | Jul 2014 | B2 |
Number | Date | Country |
---|---|---|
2013053603 | May 2015 | JP |
2014148922 | Jun 2017 | JP |
Entry |
---|
“SCA Tubeless Tyre Valve—Plastic, Long Stem, 2 Piece” http://www.supercheapauto.com.au/Product/SCA-Tubeless-Tyre-Valve-Plastic-Long-Stem-2-Piece/342043? Published/Accessed: Nov. 24, 2017. |
“Hand Tightening Aluminum Body Test Plugs With By-Pass Sizes: 1.5″ to 12″, 149-1 Series” URL: https://www.petersenproducts.com/149-1-Series-Aluminum-Body-Test-By-Pass-Plugs-s/1913.htm Published/Accessed: Nov. 24, 2017. |
Number | Date | Country | |
---|---|---|---|
20190242280 A1 | Aug 2019 | US |