Joint assemblies, V-clamps and end flanges

The v-clamp with a varying v-angle band and partially spherical end flanges addresses the issue of uneven axial load distribution, enhancing the reliability of the joint by ensuring a uniform and reduced clamping force application.

JP7681565B2Active Publication Date: 2025-05-22NORMA US HOLDING LLC
View PDF 6 Cites 0 Cited by

Patent Information

Application Number
JP2022506222
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-07-30
Filing Date
2020-07-30
Publication Date
2025-05-22
Estimated Expiration
2040-07-30

AI Technical Summary

Technical Problem

Existing v-clamps apply axial loads to tubular body end flanges in an uneven and non-uniform manner, leading to potential leakage and the need for increased clamping forces.

Method used

The v-clamp features a band with a varying v-angle along its circumferential extent and end flanges with partially spherical profiles, ensuring a substantially uniform application of axial load and reducing sliding friction effects.

Benefits of technology

This design achieves a more even and consistent axial load distribution around the circumference, minimizing leakage and reducing the required clamping force, while allowing for smaller fasteners and thinner bands.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007681565000001
    Figure 0007681565000001
  • Figure 0007681565000002
    Figure 0007681565000002
  • Figure 0007681565000003
    Figure 0007681565000003
Patent Text Reader

Abstract

The V-clamp provides an enhanced axial load to the tubular body end flange to establish a fluid-tight joint therebetween. According to one example, the V-clamp has a V-angle that varies in value over a portion or more of the band of the V-clamp. The varying V-angle has been shown to result in an axial load that is applied evenly and uniformly around the circumference of the V-clamp and by the underlying tubular body end flange. Furthermore, in one example, the tubular body end flange has a partially spherical shape.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 62 / 880,905, filed July 31, 2019.

[0002] Technical Field FIELD OF THE DISCLOSURE The present disclosure relates generally to a v-clamp for joining tubular bodies. [Background technology]

[0003] Background technology V-clamps are typically used to join tubular bodies that have end flanges that extend outward from the main structure of the tubular body. These types of tubular bodies are used in a wide range of applications, including but not limited to automotive, aerospace, agriculture, and oil and gas. Previous end flanges have sloped flat walls, whereas previous v-clamps have bands that exhibit a cross-sectional profile configuration that remains unchanged along the extent of the band. When the v-clamp is tightened onto the tubular body, the bands receive the end flanges, and radial and axial forces applied to the end flanges establish a liquid-tight joint at the end flanges. Summary of the Invention [Means for solving the problem]

[0004] Summary of the Invention According to one embodiment, the v-clamp can include a band. The band extends circumferentially from a first end to a second end. The band has a first sidewall and a second sidewall. The first and second sidewalls establish a v-angle therebetween in a cross-sectional profile. The v-angle has a first value at a first circumferential location of the band and a second value at a second circumferential location of the band. The first circumferential location is closer to a closure mechanism of the v-clamp than the second circumferential location. The first value is greater than the second value.

[0005] According to another embodiment, the joint assembly can include a first tubular body end flange, a second tubular body end flange, and a v-clamp. The v-clamp can be disposed over the first and second tubular body end flanges. The v-clamp can include a band. The band extends circumferentially from a first end to a second end. The band has a first sidewall and a second sidewall. The first and second sidewalls establish a v-angle therebetween in a cross-sectional profile. One or more of the first tubular body end flange, the second tubular body end flange, and / or the v-clamp have a change in shape over a portion or more of its circumferential extent. The change in shape results in a substantially uniform application of an axial load from the v-clamp to the first and second tubular body end flanges over a portion or more of the circumferential extent.

[0006] According to yet another embodiment, an end flange assembly can include a first tubular body end flange and a second tubular body end flange, where the first tubular body end flange has a substantially partially spherical shape, and the second tubular body end flange has a substantially partially spherical shape.

[0007] BRIEF DESCRIPTION OF THE DRAWINGS One or more embodiments are described below in conjunction with the accompanying drawings, in which like reference numbers refer to like elements. [Brief description of the drawings]

[0008] [Figure 1] FIG. 1 is a side view of a first embodiment of a joint assembly having a pair of tubular bodies having end flanges and v-clamps. [Diagram 2] FIG. [Diagram 3] A partial front view of the V-clamp. [Figure 3A] FIG. 3A is a cross-sectional view of the v-clamp taken along the arrow line 3A-3A in FIG. [Figure 3B] 3B is a cross-sectional view of the v-clamp taken along the arrow line 3B-3B in FIG. [Figure 3C] It is a cross-sectional view of the v-clamp in the arrow line 3C-3C of FIG. 3. [Figure 3D] It is a cross-sectional view of the v-clamp in the arrow line 3D-3D of FIG. 3. [Figure 3E] It is a cross-sectional view of the v-clamp in the arrow line 3E-3E of FIG. 3. [Figure 4] It is a graph representing the angle with respect to the closing mechanism in degrees (°) on the x-axis and the axial load in newtons (N) on the y-axis. The graph in FIG. 4 is the result of analytical modeling. [Diagram 5] It is a side view of the second embodiment of the v-clamp. [Figure 6] It is a partial front view of the v-clamp in FIG. 5. [Figure 7A] It is a cross-sectional view of the v-clamp in the arrow 7A-7A of FIG. 6. [Figure 7B] It is a cross-sectional view of the v-clamp in the arrow 7B-7B of FIG. 6. [Figure 7C] It is a cross-sectional view of the v-clamp in the arrow 7C-7C of FIG. 6. [Figure 7D] It is a cross-sectional view of the v-clamp in the arrow 7D-7D of FIG. 6. [Figure 7E] It is a cross-sectional view of the v-clamp in the arrow 7E-7E of FIG. 6. [Figure 8] It is a cross-sectional view of one embodiment of a partially spherical end flange. [Figure 9] It is a cross-sectional view of an end flange having a flat wall. [Figure 10] It is a graph showing the test results of axial load measurement for torque applied to a combination of an assembly including a past v-clamp, a past standard flange, a v-clamp having a varying v-angle, and a partially spherical end flange. [Figure 11] It is a pair of bar graphs showing the test results of total axial load measurement for the v-clamp and end flange styles by torque.

DETAILED DESCRIPTION OF THE INVENTION

[0009] Detailed Description 1-3E, a first embodiment of a v-clamp 10 is shown that provides for improved axial loads to be applied to the first and second tubular body end flanges 12, 14 to establish a liquid-tight joint therebetween. The improved axial loads are applied more evenly and more evenly around the circumference of the v-clamp 10 and to the first and second tubular body end flanges 12, 14 than previously demonstrated. In this embodiment, the sliding friction effects experienced during the tightening operation are accommodated through a v angle of the v-clamp 10 that varies in value over some or more of the bands of the v-clamp, through the end flanges 12, 14 exhibiting a partially spherical profile, or a combination of both. The varied v angle and partially spherical end flanges, individually or together, provide a level of control and management lacking in past v-clamps over the direction of the force ultimately applied to the underlying end flanges 12, 14. Thus, the v-clamp 10 translates the contact forces between the v-clamp 10 and the underlying end flanges 12, 14 more efficiently and effectively than previously demonstrated. Additionally, providing improved force, the clamping force required to establish a liquid tight joint is minimized as compared to past clamping forces. The v-clamp 10 is suitable for use in a wide range of applications including, but not limited to, automotive (e.g., fittings adjacent to turbochargers, exhaust components, etc.), aerospace, agricultural, and oil and gas applications, and is particularly suited for applications involving high temperatures, stringent leakage requirements, and stringent packaging demands.

[0010] Additionally, as used herein, the words axial, radial, and circumferential, and their associated grammatical forms, are used in reference to the generally circular and cylindrical shapes of the v-clamps shown. In this sense, axial refers to a direction generally along or parallel to the central axis of the circular and cylindrical shapes, radial refers to a direction generally along or parallel to the radius of the circular and cylindrical shapes, and circumferential refers to a direction generally along or similar to the circumference of the circular and cylindrical shapes.

[0011] 1 and 2, the v-clamp 10 can be used in applications involving fluid flow through a first tubular body 16 and a second tubular body 18. The first tubular body 16 has a first end flange 12 and the second tubular body 18 has a second end flange 14. The first and second end flanges 12, 14 may be integral extensions of the respective tubular bodies or may be initially separate components that are subsequently secured to the tubular bodies. The first and second end flanges 12, 14 extend circumferentially around and radially outwardly of the respective first and second tubular bodies 16, 18. In assembly and installation, the first and second end flanges 12, 14 come together for abutment and can have a gasket seated therebetween. In an example gasket, one or both of the end flanges 12, 14 can have a circumferential channel in the opposing surface 15 (FIG. 3B) against which the gasket seats, and the gasket establishes a seal against potential leaks between the opposing surfaces of the first and second end flanges 12, 14.

[0012] The first and second end flanges 12, 14 may have different configurations in different embodiments. In the embodiment of Figures 1-3E and 8, the first and second end flanges 12, 14 have configurations that allow for varying v angles and the associated contact angles between the bands of the v clamp and the end flanges 12, 14 that vary accordingly, and in this regard, the end flange configurations may vary for different v angles in other embodiments. With particular reference to Figures 2 and 8, here the first end flange 12 has an approximately partially spherical shape. The outer surface 20 of the first end flange 12 is accordingly partially circular in shape and lacks the inclined flat surface of the previous end flange. A cross-sectional profile of the first end flange 12 of Figure 2 is shown in Figures 3A-3E, illustrating the partially spherical profile of the first end flange 12. Similarly, the second end flange 14 has an approximately partially spherical shape. The outer surface 22 of the second end flange 14 is accordingly partially circular in shape and lacks the inclined flat surface of the previous end flange. As previously mentioned, the cross-sectional profile of the second end flange 14 shows the partially spherical profile of the second end flange 14. The cross-sectional profile of the first and second end flanges 12, 14 shown in FIG. 8 is similar to that shown in FIG. 2, but has somewhat flat base portions 21, 23 that transition from the first and second tubular bodies 16, 18 to their partially spherical portions, and these partially spherical portions provide a similar effect to that of FIG. 2. Additionally, other embodiments of the flanges can have partially spherical portions only at the locations of the flanges that are engaged by the v-clamp. Additionally, in other embodiments not specifically shown in the figures, the end flanges can exhibit other configurations, as shown below. In certain embodiments, the first and second end flanges can have sloped flat walls. This is shown in FIG. 9. The first and second end flanges 312, 314 have first and second flat walls 313, 315. The first and second flat walls 313, 315 are at an angle of approximately forty degrees (40°) relative to the vertical (i.e., radial) direction in Figure 9. The first and second end flanges 12, 14 together with the v-clamp 10 form a joint assembly.

[0013] The v-clamp 10 is placed in position over and around the first and second end flanges 12, 14 and tightened to help establish a liquid-tight joint therebetween. In different embodiments, the v-clamp 10 can have a variety of designs, constructions, and components, and its exact design, construction, and components may be dictated in part or in part by the application in which the v-clamp is used and the design and construction of the end flanges to which it is tightened. In the embodiment illustrated by FIGS. 1-3E, the v-clamp 10 includes a band 24 and a closure mechanism (not shown). Additionally, in other embodiments, the v-clamp 10 can include more, less, and / or different components than those shown.

[0014] The band 24 constitutes the main structure of the v-clamp 10. The band 24 may be made of a metallic material such as stainless steel. The band 24 may take different forms in different embodiments. With reference to Figs. 1 and 3, the band 24 has a first end 26 at one of its circumferential ends and a second end 28 at the other of its opposite circumferential ends. The band 24 may extend circumferentially continuously from the first end 26 to the second end 28 and / or may have a hinge structure or some other discontinuity in the circumferential range between the first end 26 and the second end 28. In one example, the band 24 has a pair of band segments bridged together at a circumferential position 180° from the closure mechanism. At its axial boundary, the band 24 has a first axial end 30 and a second axial end 32. On the radially inward facing side, the band 24 has an inner surface 34 (Fig. 3A). At the first and second ends 26, 28, the band 24 can have a variety of configurations that are dictated in part or in part by the design and construction of the closure mechanism and the components. In Figs. 1 and 3, for example, the band 24 has first and second band flanges 36, 38 that extend radially outward of the main annular body of the band 24. The first and second band flanges 36, 38 can each have holes for receiving the insertion of the fasteners of the closure mechanism. In other embodiments, the band 24 can have first and second loops at each of the first and second ends 26, 28 that are formed by the band 24 being folded back on itself and spot welded in place, this type of end formation can be used with a T-bolt type tightening assembly, and other configurations are also possible.

[0015] It has been found that certain past v-clamps applied axial loads to the underlying end flanges in an uneven and non-uniform manner. As shown in testing, the applied axial load was much higher at the clamping hardware and much lower at the location of the v-clamp's band opposite the clamping hardware. The graph of FIG. 4 evidences this somewhat poorly distributed axial load around the circumference of the v-clamp. Line 100 represents a past v-clamp having a band with a cross-sectional profile configuration that remains unchanged along the extent of that band. Point 110 on line 100 is the location of the v-clamp's band adjacent the clamping hardware, while point 120 is the location of the v-clamp's band opposite the clamping hardware, approximately one hundred and eighty degrees (180°) away from the clamping hardware for the entire circumference of the v-clamp's band (for illustrative purposes, points 110, 120 and their relative locations are shown in FIG. 3). The points on line 100 between points 110 and 120 represent respective locations along the v-clamp's band. In the graph, the axial load applied at point 110 is greater than three hundred fifty newtons (350N) and the axial load applied at point 120 is less than one hundred fifty newtons (150N), evidencing a loss of more than half of the axial load applied from the clamping hardware to the opposite side of the clamping hardware. The applied axial load gradually decreases from point 110 to point 120. As a result, these past v-clamps and their established joints may be more vulnerable to leakage at locations further away from the clamping hardware. Furthermore, the loss of axial load has been found to be due in large part to the sliding friction effect that occurs during the clamping and rundown action between the band of the v-clamp and the underlying end flange. The sliding friction effect acts to dissipate the band tension to a greater extent at locations further away from the clamping hardware. The axial load that would otherwise be applied is lost through friction and the associated loss of band tension. To counteract the axial load loss, past clamping forces have been increased. This also often means that larger size fasteners and thicker bands are required to withstand the increased clamping forces.Those skilled in the art will appreciate that the graph in FIG. 4 is the result of analytical modeling, and that similar modeling may yield different results.

[0016] The band 24 shown by the figures is designed and constructed to solve the shortcomings of past v-clamps. In this embodiment, referring to the cross-sectional profile of Figures 3A-3E, the band 24 has a shape that changes along a circumferential extent taken between the first end 26 and the second end 28. The exact change in shape itself may vary in different embodiments. Here, the change in shape is mirror symmetric about a diametric centerline 40 (Figure 3). The band 24 has a base wall 42, a first side wall 44 extending from the base wall 42, and a second side wall 46 extending from the base wall 42. Due to the change in shape, the base wall 42 transitions from a somewhat flat configuration at a location furthest from the closure mechanism (Figure 3E) to a more rounded, more pointed configuration at a location closest to the closure mechanism (Figure 3A). The transition configuration in the base wall 42 occurs gradually, as can be observed from Figures 3A-3E. As it transitions, the base wall 42 gradually increases in size and expands axially from the position of FIG. 3A to the position of FIG. 3E, as can be observed by reviewing FIGS. 3A-3E. As one non-limiting example, the base wall 42 may increase in size by approximately 1.5 millimeters (mm) from the position of FIG. 3B to the position of FIG. 3D, although in other examples the expansion may be greater or less than this amount. A first sidewall 44 depends radially inward and axially outward from the base wall 42, and similarly, a second sidewall 46 depends radially inward and axially outward from the base wall 42. The base wall 42 and the first and second sidewalls 44, 46 together establish a generally concave shape when viewed from the interior of the v-clamp 10. A channel 48 (FIG. 3E) is defined on the underside of the band 24 by the base wall 42 and the first and second sidewalls 44, 46 to receive the first and second end flanges 12, 14 during assembly and installation.

[0017] 3A-3E, a change in the shape of the band 24 in this embodiment is the v-angle 50 that varies along the circumferential extent of the band 24. The v-angle 50 is established between and defined by the first sidewall 44 and the second sidewall 46. Generally, the sidewalls 44, 46 spread apart and the v-angle 50 becomes wider as the sidewalls 44, 46 move closer to the closure mechanism, and the sidewalls 44, 46 come together and the v-angle 50 becomes narrower and sharper as the sidewalls 44, 46 move closer to the closure mechanism. The v-angle 50 steadily and continuously increases over the extent of the band from the position indicated by point 120 in FIG. 3 to the first end 26 and the closure mechanism. Conversely, the v-angle 50 steadily and continuously decreases over the extent of the band from the first end 26 and the closure mechanism to the position indicated by point 120 in FIG. 3. For illustrative purposes, the cross-sectional view of FIG. 3A may constitute a first circumferential position of the band 24. The v angle 50 at a first circumferential position in this example is approximately seventy-eight degrees (78°), although of course other values ​​of the v angle are possible in other examples. The cross-sectional view of FIG. 3B can constitute a second circumferential position of the band 24, where the v angle 50 at the second circumferential position in this example is approximately sixty-nine degrees (69°), although of course other values ​​of the v angle at this circumferential position are possible in other examples. The cross-sectional view of FIG. 3C can constitute a third circumferential position of the band 24, where the v angle 50 at the third circumferential position in this example is approximately fifty-six degrees (56°), although of course other values ​​of the v angle at this circumferential position are possible in other examples. The cross-sectional view of FIG. 3D can constitute a fourth circumferential position of the band 24, where the v angle 50 at the fourth circumferential position in this example is approximately forty-three degrees (43°), although of course other values ​​of the v angle at this circumferential position are possible in other examples. 3E may constitute a fifth circumferential position of band 24, with v-angle 50 at the fifth circumferential position in this example being approximately thirty-one degrees (31°), although of course other values ​​of v-angle at this circumferential position are possible in other examples. The exact rate of change in shape of band 24 may vary in different embodiments and may be dictated by the coefficient of friction created between band 24 and end flanges 12, 14, and the clamping force of the closure mechanism.

[0018] The closure mechanism is used to tighten or loosen the v-clamp 10 and move the first and second ends 26, 28 toward or away from one another. The closure mechanism may be located at the first end 26 and the second end 28 and held by the first and second band flanges 36, 38. The closure mechanism may take different forms in different embodiments. In one example, the closure mechanism includes a fastener or a screw and a nut. The screw is inserted through a hole in the first and second band flanges 36, 38 and a nut is threaded onto the end of the screw for tightening. In one example of a T-bolt type tightening assembly, the closure mechanism includes a trunnion and a fastener having a T-bolt and a nut. An example of a T-bolt type closure mechanism may be found in U.S. Patent No. 7,441,311, owned by the applicant of the present disclosure.

[0019] As explained, the varying v angle 50 of the band 24 results in an improved axial load being applied more evenly and completely around the circumferential extent of the v clamp 10 and the first and second end flanges 12, 14. The improved axial load is a result of the force applied through the clamp due to radial and axial force components. The sliding friction effect generated at locations closer to the closure mechanism, such as the first and second circumferential locations, is reduced due to the wider v angle thereat, resulting in a lower and gentler dissipation of the band tension thereat at locations further from the closure mechanism, such as the fourth and fifth circumferential locations. It has been found that an increase in band tension increases the conversion to axial load. Additionally, because the v angle 50 is sharper away from the closure mechanism, the resulting normal force (F) exerted by the band 24 thereat decreases. n ) is more axially oriented and directed relative to the circular shape of the v-clamp 10 than if it were closer to the closure mechanism, which means that a larger portion of the force applied to the first and second end flanges 12, 14 is used to impart an axial load. In other words, it has been found that a sharper v angle 50 exerts a larger axial load.

[0020] Referring again to the graph of FIG. 4, line 130 shows an improvement in axial load. Line 130 represents a v-clamp, such as v-clamp 10 as described and illustrated herein, having band 24 with varying v-angle 50. As previously described, point 110 is the location of band 24 adjacent to the closure mechanism, and point 120 is the location of band 24 on the opposite side of the closure mechanism. In the graph, unlike line 100 of the past v-clamp, the axial load applied at point 110 is approximately the same as the axial load applied at point 120, indicating that there is no measurable loss in the axial load applied from the clamping hardware to the opposite side of the clamping hardware. The applied axial load remains substantially constant between points 110 and 120. Line 100 shows an example of a more evenly applied axial load and a generally uniform application of the axial load as described herein, and further, there may be other examples other than line 100. In the example shown in the graph, the axial load applied to point 110 (e.g., first axial load) has a value within about ten percent (10%) of the value of the axial load applied to point 120 (e.g., second axial load). Meeting this relationship is believed to result in improved axial load in at least one embodiment, and may result in improved axial load even in the absence of this relationship. Additionally, due to this improved axial load of the v-clamp 10, the clamping and threading forces of the closure mechanism used to clamp the band 24 around the end flanges 12, 14 may be reduced. Indeed, in the example of FIG. 4, the clamping force used for the historical v-clamp of line 100 was about five kilonewtons (5 kN), and the clamping force used for the v-clamp 10 of line 130 was about three and a half kilonewtons (3.5 kN). Even with the reduced clamping force, the v-clamp 10 can still provide an adequate axial load to establish a liquid-tight joint. The reduced clamping force allows for smaller sized fasteners and thinner bands of the closure mechanism to be used for the v-clamp 10 than would otherwise be possible. In fact, testing has shown that the v-clamp 10 can facilitate the use of closure mechanism fasteners exhibiting approximately 30% less strength than commonly used past fasteners.

[0021] Further, tests were conducted to prove the effectiveness of the v-clamp with a varying v-angle as described. The tests included v-clamps with two types of bands: i) a band with a varying v-angle, and ii) a standard band with a non-varying or constant v-angle. The band with the varying v-angle had similarities to those described with reference to Figures 3A-3E. The v-angle was wider approaching its closure mechanism and narrower away from the closure mechanism and approaching the 180° circumferential position of the band. The v-angle increased steadily and continuously over the range of the band from the 180° circumferential position to the closure mechanism. At a circumferential position approximating that obtained in Figure 3B, the v-angle had a value of about 69°. Also, at this circumferential position, the base wall of the band had a planar configuration with an axial width of about 6.43 mm. At a circumferential position approximating that obtained in Figure 3C, the v-angle had a value of about 56° and the base wall of the band had an axial width of about 7.23 mm. Finally, at a circumferential position similar to that obtained in FIG. 3D, the v angle had a value of about 43° and the base wall of the band had an axial width of about 8.04 mm. Furthermore, the band had a first leg and a second leg, described below, that remained largely constant and did not change shape. On the other hand, the standard band with a constant v angle had a v angle with a value of about 39° and a base wall with an axial width of about 7.9 mm. The tests also included two types of end flanges: i) an end flange with a partially spherical profile, and ii) a standard end flange with a flat wall at an angle of 40°. The end flange with a partially spherical profile resembled that shown in FIG. 8, and the standard end flange with a flat wall inclined at 40° resembled that shown in FIG. 9.

[0022] A total of four groups were tested: 1) standard band and standard end flanges, 2) varying v-angle band and standard end flanges, 3) standard band and partially spherical end flanges, and 4) varying v-angle band and partially spherical end flanges. Three samples in each of the four groups were tested. The graph in FIG. 10 shows the results of certain tests. Those skilled in the art should understand that similar tests may yield different results. The y-axis plots axial load in Newtons (N) and the x-axis plots torque in Newton meters (Nm). Test results for group 1) are shown in the graph in the upper left quadrant, test results for group 2) are shown in the graph in the upper right quadrant, test results for group 3) are shown in the graph in the lower left quadrant, and test results for group 4) are shown in the graph in the lower right quadrant. The dashed line A in FIG. 10 represents the axial load measurements at a circumferential position similar to that obtained in FIG. 3B. The solid line B represents the axial load measurements at the circumferential position of FIG. 3B, but on the opposite side of the full v-clamp band and the opposite side of the closure mechanism. Also, dashed line C represents the axial load measurements at a circumferential position approximating that of 180° from the closure mechanism, as obtained in FIG. 3E. As can be observed from the graph, the results of groups 1) and 3) including standard bands show a measurable and slight loss of axial load between lines A and B close to the closure mechanism, compared to line C, far from the closure mechanism. Meanwhile, the results of groups 2) and 4) including varying v-angle bands show minimal or no loss of axial load between lines A and B, compared to line C. The bar graphs in FIG. 11 also show certain test results. Those skilled in the art should understand that similar tests may yield different results. The total axial load was plotted on the y-axis in kilonewtons (kN) and a screw force of 13 Nm torque was applied. The test results for group 1) are shown in the top left bar graph D, the test results for group 2) are shown in the top right bar graph E, the test results for group 3) are shown in the bottom left bar graph D, and the test results for group 4) are shown in the bottom right bar graph E. As can be seen from the bar graphs, there was a loss of approximately 6 kN of total axial load between groups 1) and 2) and a loss of approximately 1 kN of total axial load between groups 3) and 4). These losses in total axial load were considered appropriate.

[0023] 5-7E, there is shown a second embodiment of a v-clamp 210 which, like the previous embodiment, improves the axial load applied to the first and second tubular body end flanges 12, 14. The second embodiment is similar to the first embodiment in several respects, and in this description of the second embodiment, not all of the similarities are repeated here. As previously mentioned, the improved axial load provided by the v-clamp 210 is applied more evenly and uniformly around the circumference of the v-clamp 210. The first and second end flanges 12, 14 each exhibit a partially spherical profile in cross section, as shown in the cross-sectional views of FIGS. 7A-7E, but may have alternative configurations as previously mentioned, such as the angled flat walls of FIG.

[0024] The v-clamp 210 includes a band 224 and a closure mechanism as described with reference to the first embodiment. The band 224 has a base wall 242, a first side wall 244 extending from the base wall 242, and a second side wall 246 extending from the base wall 242. A channel 248 (FIG. 7E) is defined on the underside of the band 224 by the base wall 242 and the first and second side walls 244, 246 to receive the first and second end flanges 12, 14 during assembly and installation. As with the first embodiment, the band 224 of this second embodiment has a shape that varies along its circumferential extent, the shape variation being constituted in part by a v-angle 250 that varies over the circumferential extent of the band. As previously described, the v-angle 250 becomes wider as it approaches the closure mechanism, and conversely, the v-angle 250 becomes narrower and sharper as it moves away from the closure mechanism. The v angle 250 steadily and continuously increases over the range of the band from the position indicated by point 120 in FIG. 6 to the closure mechanism. Conversely, the v angle 250 steadily and continuously decreases over the range of the band from the closure mechanism to the position indicated by point 120 in FIG. 6. The v angle 250 at the first circumferential position in FIG. 7A in this example is approximately seventy-seven degrees (77°). The v angle 250 at the second circumferential position in FIG. 7B in the example is approximately sixty-nine degrees (69°). Further, the v angle 250 at the third circumferential position in FIG. 7C in the example is approximately fifty-six degrees (56°), and the v angle 250 at the fourth circumferential position in FIG. 7D in the example is approximately forty-three degrees (43°). Finally, the v angle 250 at the fifth circumferential position in FIG. 7E in the example is approximately thirty-two degrees (32°). Of course, other values ​​of v angles at these circumferential positions are possible in other examples.

[0025] Unlike the first embodiment, the band 224 in this second embodiment has a pair of legs at its first and second axial ends 230, 232 to enhance the stiffness properties of the band 224. Referring now to all of Figures 7A-7E, a first leg 260 extends from the first sidewall 244 and forms a terminal end thereof. In fact, the first axial end 230 of the band 224 is located at the first leg 260. Since the legs undergo shape changes along with the band 224, the first leg 260 depends somewhat radially inwardly of the first sidewall 244 at certain locations and somewhat radially outwardly of the first sidewall 244 at other locations, as will be explained later. Also, the first leg 260 depends somewhat axially outwardly of the first sidewall 244. Additionally, a second leg 262 extends from the second sidewall 246 and forms a terminal end thereof. In fact, second axial end 232 of band 224 is located on second leg 262. Like first leg 260, second leg 262 depends somewhat radially inwardly from second sidewall 246 at certain locations and somewhat radially outwardly from second sidewall 246 at other locations. Second leg 262 depends somewhat axially outwardly from second sidewall 246.

[0026] In the second embodiment, the first and second legs 260, 262 have a shape that varies along the entire circumferential extent of the band 224 between the first end 226 and the second end 228 of the band. The exact change in shape may vary in different embodiments. Here, the change in shape is mirror symmetric about the diametric centerline 240 (FIG. 6). In general, the first and second legs 260, 262 grow and become more prominent the further away from the closure mechanism, and the legs 260, 262 become more recessed and less prominent the closer to the closure mechanism. More specifically, the first and second legs 260, 262 project radially outwardly over the extent of the band from the first end 226 and the closure mechanism to the location indicated by point 120 in FIG. 6. Additionally, the first and second legs 260, 262 steadily and continuously increase in length in a generally axially outward direction F, G (FIG. 7E) over the extent of the band from the first end 226 and closure mechanism to the location indicated by point 120 in FIG. 6. The axially outward direction F is relative to the first sidewall 244 and the axially outward direction G is relative to the second sidewall 246. This change in shape can be partially seen from the cross-sectional views of FIGS. 7A-7E.

[0027] In this second embodiment, the more prominent legs 260, 262 provide the band 224 with greater stiffness. For example, the band 224 exhibits greater stiffness at its first and second side walls 244, 246 at the circumferential position shown by the cross-sectional view of FIG. 7E than at the circumferential position shown by the cross-sectional view of FIG. 7B. In other words, the stiffness of the band 224 varies over the circumferential extent of the band. It has been found that the bending moment experienced by the band 224 at the first and second side walls 244, 246 increases as the v-angle 250 narrows. For example, the bending moment experienced in FIG. 7E is greater than the bending moment experienced in FIG. 7B. The side walls 244, 246 are biased farther away (i.e., axially outward) at circumferential positions farther away from the closure mechanism due in part to the concomitant narrowing v-angle 250. Additionally, the moment arm established by the contact load points between the end flanges 12, 14 and the side walls 244, 246 can be longer at circumferential locations further away from the closure mechanism, as demonstrated in the example by load points H in FIG. 7B and H′ in FIG. 7E. Also, the material stress experienced by the band 224 at the first and second side walls 244, 246 increases as the v angle 250 narrows. As a result, in some cases, the side walls 244, 246 may be biased farther apart than desired as they move away from the closure mechanism, potentially preventing the intended control and management of the direction of the applied force. The legs 260, 262 and their associated stiffness act to counteract these undesirable results and help maintain the intended direction of the applied force.

[0028] As an alternative to the second embodiment, the band 224 can have legs 260, 262 that grow further away from the closure mechanism and become more prominent, as shown in Figures 6 and 7A-7E, but the band 224 can have a v-angle 250 that does not change over the circumferential extent of the band, but instead maintains a constant, unchanging angular value over the circumferential extent of the band. In this alternative, the first and second end flanges 12, 14 still each exhibit a partially spherical cross-sectional profile, as previously described. Here, control and management over the direction of the applied force is established via the varying legs 260, 262 and the associated varying stiffness. The side walls 244, 246 of the band are biased to deflect away in response to the tightening action from the closure mechanism by varying amounts depending on the varying stiffness. For example, the deflection can be greater at circumferential locations of the band 224 that are less stiff, and the deflection can be less at circumferential locations of the band 224 that are more stiff. Since the v angle 250 does not change, having the legs 260, 262 recessed and less pronounced closer to the closure mechanism results in greater flexing of the band 224 closer to the closure mechanism. Conversely, having the legs 260, 262 grow and become more pronounced further away from the closure mechanism results in less flexing of the band 224 further away from the closure mechanism. Thus, as with the previous embodiment, the sliding friction effect is reduced closer to the closure mechanism, resulting in a lower, more gentle reduction in band tension further from the closure mechanism. Additionally, in yet another embodiment, the legs 260, 262 may be on the band 224 with a v angle 250 that varies over the circumferential extent of the band as described, but the legs 260, 262 themselves may not vary in shape, but instead may remain constant and unchanged in shape over the circumferential extent of the band.

[0029] In the third embodiment, the improved axial loads applied to the first and second tubular body end flanges 12, 14 are provided in a greater part by the end flanges themselves. The first and second tubular body end flanges 12, 14 in this embodiment each have a shape that varies over their circumferential extent, but the v-clamp bands do not vary and instead have a v-angle that maintains a constant, non-varying angular value over the circumferential extent of the band. In this third embodiment, the band also lacks the varying legs of the second embodiment. Here, the control and management of the direction of the applied force is established by the varying shapes of the first and second tubular body end flanges 12, 14. In this third embodiment, instead of the first and second tubular body end flanges 12, 14 having a cross-section showing a partially spherical contour, each of the first and second tubular body end flanges 12, 14 has a flat outer wall and surface as shown in FIG. 9 to effect a change in shape. The flat outer wall and surface change the orientation with respect to the central axis of their respective first and second tubular bodies 16, 18. Similar to the previous embodiments, the varying orientations are mirror symmetric about the diameter centerlines (40, 240).

[0030] The flat outer walls and surfaces define an acute angle with respect to the central axis of the respective first and second tubular bodies 16, 18. The acute angle narrows and decreases as one approaches the closure mechanism relative to the installation location of the v-clamp on the end flanges 12, 14, and conversely widens and increases as one moves away from the closure mechanism. The acute angle steadily and continuously decreases over the extent of the flange from the position indicated by point 120 in FIG. 6 to the closure mechanism, also relative to the installation location of the v-clamp on the end flanges 12, 14. Conversely, the acute angle steadily and continuously increases over the extent of the flange from the closure mechanism to the position indicated by point 120, also relative to the installation location of the v-clamp on the end flanges 12, 14. Although the band of the v-clamp has an unchanged v-angle prior to installation and tightening in this third embodiment, the v-angle does in fact change upon installation and tightening of the v-clamp due to the changing acute angle of the flat outer walls and surfaces of the first and second tubular body end flanges 12, 14. In this embodiment, the v angle varies in a manner similar to the varying v angle of the first embodiment. The v angle becomes wider as one approaches the closure mechanism and conversely, narrows as one moves away from the closure mechanism. And, as previously mentioned, the acute angle is greater the further away from the closure mechanism, and the v angle becomes correspondingly sharper the further away from the closure mechanism, so the resulting normal force (F) exerted by the band of the v clamp at that point varies. n ) are more axially oriented and pointed than they would be nearer the closure mechanism. Thus, a larger portion of the force applied to the first and second end flanges 12, 14 is used to impart an axial load.

[0031] In yet another embodiment, the band 24 has a v angle 50 that varies along the circumferential extent of the band 24, and the tubular body end flanges 12, 14 have flat outer walls and surfaces that vary in orientation relative to the central axis of the respective tubular bodies 16, 18. In essence, this embodiment incorporates a combination of the design and structure of the first and third embodiments. The varying v angle 50 and the varying acute angle, as previously described, cooperate to provide improved axial loading applied to the first and second tubular body end flanges 12, 14. Thus, control and management over the orientation of the applied force is established by the combined varying v angle 50 and the varying acute angle of the tubular body end flanges 12, 14. During installation and tightening, the v angle 50 of the band becomes wider as it approaches the closure mechanism and conversely becomes narrower as it moves away from the closure mechanism. As previously described, the resulting normal force (F) applied by the band 24 of the v-clamp is proportional to the force (F) applied to the band 24 of the v-clamp. n ) are oriented and pointed axially further from the closure mechanism than closer to the closure mechanism, and therefore a majority of the force applied to the end flanges 12, 14 is used to impart the axial load.

[0032] It should be understood that the above is a description of one or more preferred exemplary embodiments of the present invention. The present invention is not limited to the specific embodiments disclosed herein, but rather is defined only by the following claims. Furthermore, statements contained in the foregoing description should not be construed as limitations on the scope of the invention or the definition of terms used in the claims, unless the terms or phrases are specifically defined above in relation to specific embodiments. Various other embodiments and various changes and modifications to the disclosed embodiments will become apparent to those skilled in the art. All such other embodiments, changes and modifications are intended to fall within the scope of the appended claims.

[0033] As used in this specification and claims, the terms "for example," "for instance," "such as," and "like," as well as the verbs "comprising," "having," "including," and other verb forms thereof, when used in conjunction with a list of one or more components or other items, are each to be construed as open-ended, meaning that the list should not be viewed as excluding other additional components or items. Other terms are to be construed using their broadest reasonable meaning unless used in a context requiring a different interpretation.

Claims

1. A v-clamp comprising: a band extending circumferentially from a first end to a second end, said band having a first sidewall and a second sidewall, said first sidewall and second sidewall establishing a v-angle therebetween in a cross-sectional profile; A v-clamp, wherein the v-angle has a first value at a first circumferential position of the band and a second value at a second circumferential position of the band, the first circumferential position adjacent a closure mechanism and the second circumferential position opposite the closure mechanism and 180° circumferentially from the closure mechanism, the first value being greater than the second value, and the value of the v-angle steadily increasing along the circumferential extent of the band from the second circumferential position to the first circumferential position.

2. 2. The v-clamp of claim 1, wherein the v-angle has a third value at a third circumferential position of the band, the third circumferential position being between the first circumferential position and the second circumferential position, and the third value being greater than the second value and less than the first value.

3. 3. The v-clamp of claim 2, wherein the v-angle has a fourth value at a fourth circumferential position of the band, the fourth circumferential position being between the first circumferential position and the third circumferential position, and the fourth value being greater than the third value and less than the first value.

4. 2. The v-clamp of claim 1, wherein a third circumferential position of the band is adjacent to the closure mechanism opposite the first circumferential position, and the value of the v-angle steadily increases along the circumferential extent of the band from the second circumferential position to the third circumferential position.

5. 2. The v-clamp of claim 1, wherein the band has a base wall, the first side wall depending from the base wall, and the second side wall depending from the base wall, the base wall having a planar configuration that expands in size from the first circumferential position to the second circumferential position.

6. The v-clamp of claim 1 further comprising a first leg extending from the first sidewall and a second leg extending from the second sidewall.

7. 7. The v-clamp of claim 6, wherein the first leg steadily increases in length axially outward relative to the first sidewall along the circumferential extent of the band from the second circumferential position to the first circumferential position, and the second leg steadily increases in length axially outward relative to the second sidewall along the circumferential extent of the band from the second circumferential position to the first circumferential position.

8. 1. A joint assembly comprising: a first tubular body end flange; a second tubular body end flange; a v-clamp positionable on the first and second tubular body end flanges, the v-clamp comprising a band extending circumferentially from a first end to a second end, the band having a first sidewall and a second sidewall, the first sidewall and second sidewall establishing a v-angle therebetween in a cross-sectional profile; a first leg extending from the first sidewall and a second leg extending from the second sidewall, the first leg steadily increasing in length axially outward relative to the first sidewall along the circumferential extent of the band from a first circumferential position to a second circumferential position, the second leg steadily increasing in length axially outward relative to the first sidewall along the circumferential extent of the band from the first circumferential position to the second circumferential position, the first circumferential position adjacent a closure mechanism and the second circumferential position opposite and 180° circumferentially from the closure mechanism.

9. 9. The joint assembly of claim 8, wherein the v-angle has a first value at the first circumferential position of the band and a second value at the second circumferential position of the band, the first value being greater than the second value.

10. 10. The joint assembly of claim 9, wherein the v angle varies continuously in value along a circumferential extent of the band from the first end to the second end.

11. 9. The joint assembly of claim 8, wherein the first tubular body end flange has a first outer surface and the second tubular body end flange has a second outer surface, the first outer surface having a flat portion and the second outer surface having a flat portion, the first outer surface having a first orientation with the first central axis of the first tubular body end flange that varies relative to a first central axis over at least a portion of the circumferential extent of the first tubular body end flange, and the second outer surface having a second orientation with the second central axis of the second tubular body end flange that varies relative to a second central axis over at least a portion of the circumferential extent of the second tubular body end flange.

12. The joint assembly of claim 11 , wherein the value of the v angle varies continuously along the circumferential extent of the band from the first circumferential position to the second circumferential position.

13. 10. The joint assembly of claim 9, wherein the first tubular body end flange has a partial spherical shape and the second tubular body end flange has a partial spherical shape.

14. A joint assembly comprising a first tubular body end flange and a second tubular body end flange, the first tubular body end flange having a spherical shape and the second tubular body end flange having a spherical shape, the joint assembly further comprising a v-clamp as described in claim 1.

15. The joint assembly of claim 8 , wherein the first tubular body end flange has a spherical shape and the second tubular body end flange has a spherical shape.

Citation Information

Patent Citations

  • profile clamp

    DE102016123388A1

  • Housing fastening method and supercharger

    JP2009167971A

  • V-band

    JP2016186314A

  • Profiled Clamp

    JP2020501090A

  • Clamp assembly for confronting annular flanges

    US3429014A