The present disclosure relates generally to a tank assembly and, more particularly, to a fluid tank assembly having a twist-and-lock mounting flange.
Machines such as track-type tractors, wheel loaders, on- and off-highway haul trucks, motor graders, drill rigs, stationary pumps, and other heavy equipment often use different fluid systems to accomplish specialized tasks. For example, these machines may be equipped with a fuel system that powers an onboard engine, a cooling system that cools the engine, a lubrication system that lubricates different machine components, a hydraulic system that moves a work tool, a dosing system that injects reductant into an exhaust flow to reduce emissions, and/or other fluid systems known in the art. Each of these fluid systems requires a supply of an appropriate fluid in a sealed container, which maintains the supply in relative isolation from the environment and other fluids and contaminates of the machine. In addition, the container may need to provide a mounting platform for different components associated with each fluid system, for example filters, manifolds, pumps, sensors, valves, etc.
One example of a tank assembly that contains a fluid and provides a mounting platform for related system components is described in U.S. Patent Publication No. 2010/0162690 of Hosaka et al. that was published on Jul. 1, 2010 (the '690 publication). In particular, the '690 publication discloses an urea tank providing a mounting platform for a control valve. The tank is provided with a detachable closure member having a body formed to support the control valve, and an SAE standard locking ring connected to the body. The locking ring has an annular groove recessed into the ring adjacent a perimeter of the ring, and an o-ring gasket is positioned within the groove. When the closure member is connected to the tank, the o-ring gasket is compressed to form a seal between the tank and the closure member. Protruding channels defining arcuate segments are mounted at spaced locations to an upper surface of the tank. A plurality of supports, each carrying a radially outwardly extending flange, are coupled to an upper surface of the ring. When the closure member is locked in place, the flanges are positioned within the channels of the tank. As the ring is rotated to connect the closure member to the tank, the o-ring gasket is compressed by an increasing amount to assist in applying a biasing force that holds the ring and closure member stationary relative to the tank.
Although the closure member configuration of the '690 publication may be suitable for some applications, it may be less than optimal. In particular, the configuration may require complex tank and ring geometry that is expensive to fabricate and decreases durability. Further, because the only mechanism retaining the closure member rotationally fixed is the bias from the o-ring gasket, it may be possible for the ring to rotate away from the channels and the closure member and disassemble from the tank when exposed to excessive vibration. Finally, because the closure member provides specialized mounting capability for only the control valve, it may lack broad applicability.
The disclosed tank assembly is directed to overcoming one or more of the problems set forth above and/or other problems of the prior art.
In one aspect, the present disclosure is directed to a tank assembly. The tank assembly may include a tank with a plurality of sides connected to each other to substantially enclose a volume. A first side of the plurality of sides may have an upper surface and a lower surface and defines an opening into the volume and a first rotational stop feature at the opening. The tank assembly may also include a mounting flange with an upper member configured to engage the upper surface of the first side, a lower member configured to engage the lower surface of the first side, and a second rotational stop feature configured to engage the first rotational stop feature. The tank assembly may additionally include a resilient member disposed between the tank and the mounting flange. The resilient member may be configured to substantially seal an interface between the tank and the mounting flange and to bias the second rotational stop feature toward the first rotational stop feature.
In another aspect, the present disclosure is directed to a fluid tank for a tank assembly. The fluid tank may include a plurality of sides connected to each other to substantially enclose a volume, and an opening through a first side of the plurality of sides. The opening may have a generally circular center and first and second arcuate recesses located at opposing sides of the circular center. The fluid tank may also include at least one rotational stop feature located at a periphery of the opening.
In yet another aspect, the present disclosure is directed to a mounting flange for a tank assembly. The mounting flange may include a first cylindrical member having an exterior axial surface with at least one attachment feature and an interior generally planar axial surface. The mounting flange may also include a second cylindrical member extending axially from the interior generally planar axial surface of the first cylindrical member, and at least one arcuate cam segment extending radially outward from a periphery of the second cylindrical member. The mounting flange may additionally include a rotational stop feature associated with the at least one arcuate cam segment.
In a final aspect, the present disclosure is directed to a method of connecting a component to a tank. The method may include placing a resilient member between a tank and a mounting flange, and passing a member of the mounting flange through an opening in a side of the tank. The method may further include compressing the resilient member between the tank and the mounting flange, rotating the mounting flange relative to the tank until a first rotational stop feature of the tank aligns with a second stop feature of the mounting flange, and allowing the resilient member to at least partially decompress and bias the first stop feature into engagement with the second stop feature.
Tank 12 may include a plurality of sides connected to each other to substantially enclose a volume. For example, tank 12 may include a bottom side 20 (shown only in
As shown in
Opening 32 may include a circular center 36 and at least one arcuate recess 38 located at a periphery of circular center 36. In the embodiment of
One or more rotational stop features 40 may be provided within top side 22 at opening 32. In the disclosed embodiment, rotational stop features 40 are integral with opening 32, although it is contemplated that rotational stop features 40 may alternatively be completely separate from opening 32, if desired. As shown in
Groove 34 may be located within upper surface 31 of top side 22 and configured to receive resilient member 18 (referring to
As shown in
Upper member 46 may have an outer diameter greater than the outer diameter of lower member 48 and opening 32 (referring to
Lower member 48 may extend axially from interior surface 56 and include an annular side surface 60 and an axially exterior surface 62. An outer diameter of annular side surface 60 may be less than an outer diameter of circular center 36 of opening 32 (referring to
In the disclosed embodiment, lower member 48 includes two substantially identical arcuate cam segments 64 that are located at opposing sides of lower member 48, although any number of arcuate cam segments 64 may be included. Arcuate cam segments 64 may have an outer diameter greater than an outer diameter of annular side surface 60 and circular center 36 (referring to
Arcuate cam segments 64 may have an axially exterior surface that is generally co-planar with exterior surface 62, and an axially interior surface 66 that is inclined relative to an axis of central bore 50. The inclination angle of interior surface 66 may be substantially constant or, alternatively vary (e.g., decrease) along an arc length of segments 64. The inclination angle of interior surface 66, together with the generally planar interior surface of upper member 46, may create a space therebetween that has a greater axial dimension at an outer diameter of lower member 48 than at an inner diameter thereof. The exterior surface of arcuate cam segments 64 may merge with interior surface 66 at an outer diameter of arcuate cam segments 64. As will be described in more detail below, when assembled, interior surface 66 may engage lower surface 33 of top side 22 (referring to
Lower member 48 may also include at least one rotational stop feature 68 at an arc end of one or both of arcuate cam segments 64. In the disclosed embodiment, one rotational stop feature 68 is integral with each arcuate cam segments 64 and located at a counter-clockwise arc end (when viewed from the lower-member end of mounting flange 14 as shown in
As shown in
The geometry of rotational stop features 68 may facilitate reduced complexity and cost associated with manufacturing mounting flange 14. In particular, the angular orientation (i.e., being tangentially oriented) and inclined surfaces (i.e., the wedge shaped cross-section) of rotation stop features 68 may allow for mounting flange 14 to be produced through a simple low-cost casting process that utilizes a multi-piece (e.g., a two-piece) mold.
Resilient member 18 may be a compressible gasket, for example a polymeric o-ring, that performs multiple functions for tank assembly 10. First, resilient member 18 may create a substantially fluid-tight seal between tank 12 and mounting flange 14 by deforming when compressed (as shown in
System component 16 may be any type of component known in the art that requires or benefits from connection to tank 12. For example, system component 16 may be a filter, a manifold, a pump (shown in
Industrial Applicability
The disclosed tank assembly may be applicable to any machine fluid system where containment and isolation of a specific fluid is desired. The disclosed tank assembly may be particularly applicable to applications where other system components require direct mounting on the tank assembly. The disclosed tank assembly may provide for direct mounting of system components via a mounting configuration that is simple and inexpensive to fabricate, as well as durable under extreme conditions. Assembly of tank assembly 10 will now be described.
To construct tank assembly 10, resilient member 18 may first be placed within groove 34 at top side 22 of tank 12. Mounting flange 14 must then be oriented so that arcuate cam segments 64 generally align with arcuate recesses 38 in top side 22 of tank 12, and then be passed through opening 32 into tank 12 until interior surface 56 of upper member 46 engages resilient member 18. At this point in time, lower member 48 may be at least partially within the enclosed volume of tank 12. Mounting flange 14 may then be pushed further toward tank 12 and against resilient member 18, until resilient member 18 compresses sufficiently for rotational stop feature 68 to clear lower surface 33 of top side 22. Mounting flange 14 may now be free to rotate relative to tank 12.
Mounting flange 14 may be twisted during assembly until rotational stop features 68 generally align with rotational stop features 40 in tank 12. In the illustrated embodiment, this rotation may be about equal to a ¼ turn (i.e., a 90° turn) in the clockwise direction, although it is contemplated that mounting flange 14 may alternatively be rotated by a different amount and/or in the counter-clockwise direction during assembly, if desired. When rotational stop feature 68 is generally aligned with rotational stop feature 40, resilient member 18 may be allowed to now at least partially decompress and bias the wedge shape of rotational stop features 68 upward into engagement with rotational stop features 40, thereby rotationally locking mounting flange 14 to tank 12. At this point in time, resilient member 18 may still be compressed somewhat to provide a substantially fluid-tight seal between mounting flange 14 and tank 12. Mounting flange 14 may only be disassembled from tank 12 via recompression of resilient member 18 and reverse rotation (e.g., counter-clockwise rotation) of mounting flange 14 relative to tank 12. System component 16 may be connected to mounting flange 14 via seal 80 and fasteners 78 before or after mounting flange 14 is locked to tank 12.
The disclosed tank assembly may be simple and inexpensive. In particular, because no hardware may be required to connect mounting flange 14 to tank 12, the manufacture cost and complexity of both components may be low. In addition, the geometry of the features (arcuate cam segments 64 and rotational stop features 40, 68) that lock mounting flange 14 to tank 12 may be few in number and relatively simple. Further, the design of mounting flange 14 may be generic and allow a variety of different system components to be mounted to tank 12, thereby decreasing a cost of tank assembly 10 while also increasing an applicability of tank assembly 10.
The disclosed tank assembly may also be durable. In particular, after mounting flange 14 is connected to tank 12, disassembly may be inhibited via rotational stop features 40 and 68. That is, mounting flange 14 may only be disassembled from tank 12 by recompression of resilient member 18 and subsequent rotation of mounting flange 14 relative to tank 12. This resistance to disassembly may allow the use of tank assembly 10 in extreme conditions, such as high-vibration conditions where other types of assemblies may be unreliable.
It will be apparent to those skilled in the art that various modifications and variations can be made to the tank assembly of the present disclosure. Other embodiments of the tank assembly will be apparent to those skilled in the art from consideration of the specification and practice disclosed herein. For example, although not shown in the associated figures, it is contemplated that tank assembly 10 may include addition features, if desired, such as a fill spout, a carrying handle, a drain valve, a fluid level sensor, internal baffles, and other similar features. It is intended that the specification and examples be considered as exemplary only, with a true scope of the disclosure being indicated by the following claims and their equivalents.
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Number | Date | Country | |
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