Adjustable rod assembly

Information

  • Patent Grant
  • 8978228
  • Patent Number
    8,978,228
  • Date Filed
    Wednesday, November 14, 2012
    12 years ago
  • Date Issued
    Tuesday, March 17, 2015
    9 years ago
Abstract
An adjustable rod assembly includes first and second rod assemblies, first and second end supports, and a tension rod mechanism. The first rod assembly has telescoping first, second and third tubes of generally straight configurations. The second tube of the first rod assembly is rotatable relative to the first and third tubes of the first rod assembly. The second rod assembly has telescoping first and second tubes. The third tube of the first rod assembly and the second tube of the second rod assembly are secured to the first end support. The respective first tubes of the first and second rod assemblies are secured to the second end support. The tension rod mechanism is fixedly secured within the second tube of the first rod assembly for rotational movement therewith, and has a threaded portion configured to extend into the first tube of the first rod assembly.
Description
BACKGROUND OF THE INVENTION

An embodiment of the present invention relates generally to an adjustable rod assembly, and more particularly, to an adjustable tension-mounted dual rod assembly.


Adjustable length tension-mounted rods for use as curtain or shower curtain rods are generally known. These tension-mounted rods typically include a single straight rod having a first straight shaft that telescopingly receives a second straight shaft, wherein the first and second shafts house a long threaded stud. Dual rod assemblies, such as those having a curved shower curtain rod, however, typically require the use of screws, bolts, and the like in order to permanently fix the curved rod to support surfaces through. This results in dual rod assemblies being more complex to install and the risk of permanently damaging the support surfaces upon removal of the assembly.


It is therefore desirable to provide an adjustable dual rod assembly that is mounted between opposing support surfaces by a tension rod mechanism, thereby providing for simpler installation of the assembly and reducing, if not eliminating, the risk of damage to the support surfaces upon removal of the assembly.


BRIEF SUMMARY OF THE INVENTION

Briefly stated, one embodiment of the present invention is directed to an adjustable rod assembly comprising a first rod assembly having a first tube of a generally straight configuration, a second tube of a generally straight configuration, and a third tube of a generally straight configuration. A first end of the first tube is telescopingly received within the second tube and a first end of the second tube is telescopingly received within the third tube. The second tube is rotatable relative to the first tube and the third tube. The adjustable rod assembly further comprises a second rod assembly having a first tube and a second tube. A first end of the first tube is telescopingly received within the second tube. The adjustable rod assembly further comprises a first end support, a second end support, and a tension rod mechanism fixedly secured within the second tube of the first rod assembly for rotational movement therewith. The third tube of the first rod assembly and the second tube of the second rod assembly are secured to the first end support. The respective first tubes of the first and second rod assemblies are secured to the second end support. The tension rod mechanism has a threaded portion configured to extend into an interior of the first tube of the first rod assembly.


Another embodiment of the present invention is directed to a method of installing an adjustable rod assembly. The method comprises: (a) providing an adjustable rod assembly including a first straight rod assembly having a first straight tube and a second straight tube, a second curved rod assembly having a first arcuate tube and a second arcuate tube, and first and second end supports, wherein each of the first and second straight tubes and each of the first and second arcuate tubes has opposing first and second ends; (b) assembling the adjustable rod assembly by: (i) telescopingly positioning the first end of the first straight tube in the second end of the second straight tube and telescopingly positioning the first end of the first arcuate tube in the second end of the second arcuate tube, (ii) pivotably securing the second end of the first straight tube and the second end of the first arcuate tube to the second end support, (iii) pivotably securing the first end of the second arcuate tube to the first end support, and (iv) rotatably securing the first end of the second straight tube to the first end support; c) positioning the assembled adjustable rod assembly between opposing support surfaces; d) adjusting a length of the assembled adjustable rod assembly such that a respective rear surface of each of the first and second end supports is proximate a respective one of the opposing support surfaces; and e) rotating the second straight tube about a longitudinal axis thereof until the respective rear surface of each of the first and second end supports directly contacts a respective one of the opposing support surfaces and the assembled adjustable rod assembly applies a compressive force against the opposing support surfaces.


In another embodiment, the present invention is directed to an adjustable tension rod assembly comprising a first straight rod assembly and a second curved rod assembly. The first straight rod assembly includes a first straight tube having a first end and a second end, a second straight tube having a first end and a second end, and a third straight tube having a first end and a second end. The second end of the first straight tube is telescopingly received within the second end of the second straight tube and the second straight tube is rotatable relative to the first straight tube. The first end of the second straight tube is rotatably and telescopingly received within the second end of the third straight tube. The second curved rod assembly includes a first arcuate tube having a first end and a second end and a second arcuate tube having a first end and a second end. The first end of the first arcuate tube is telescopingly received within the second end of the second arcuate tube. The adjustable tension rod assembly further comprises a first end support, a second end support, and a tension mechanism including a rod with a connector and a threaded portion. The first end of the third straight tube and the first end of the second arcuate tube are pivotably secured to the first end support at spaced apart positions. The second end of the first straight tube and the second end of the first arcuate tube are pivotably secured to the second end support at spaced apart positions. The connector of the tension mechanism is fixedly secured within the first end of the second straight tube and rotatably secured within the third straight tube. The threaded portion of the tension mechanism is rotatably secured within the first straight tube by a threaded bushing. Rotation of the second straight tube in a first direction about a longitudinal axis of the second straight tube causes the first and third straight tubes to move away from each other and causes the first and second arcuate tubes to move away from each other. Rotation of the second straight tube in a second opposite direction about the longitudinal axis of the second straight tube causes the first and third straight tubes to move toward each other and causes the first and second arcuate tubes to move toward each other.





BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS

The foregoing summary, as well as the following detailed description of a preferred embodiment of the invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there is shown in the drawings an embodiment which is presently preferred. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown.


In the drawings:



FIG. 1 is a left perspective view of an adjustable rod assembly in accordance with a preferred embodiment of the present invention;



FIG. 2A is a top plan partial cross-sectional view of the adjustable rod assembly shown in FIG.



FIG. 2B is a rear plan partial cross-sectional view of the adjustable rod assembly shown in FIG. 1;



FIG. 2C is an enlarged and partial top plan cross-sectional view of the adjustable rod assembly shown in FIG. 1;



FIG. 3A is an enlarged front perspective view of one end of the adjustable rod assembly shown in FIG. 1;



FIG. 3B is an exploded front perspective view of one end of the adjustable rod assembly shown in FIG. 1;



FIG. 3C is an exploded rear perspective view of one end of the adjustable rod assembly shown in FIG. 1; and



FIG. 4 is an enlarged elevational cross-sectional view of a third tube of the straight rod assembly of the adjustable rod assembly shown in FIG. 1.





DETAILED DESCRIPTION OF THE INVENTION

Certain terminology is used in the following description for convenience only and is not limiting. The words “right,” “left,” “top,” “bottom” and “lower” designate directions in the drawings to which reference is made. The words “first,” “second,” “third” and “fourth” designate an order of operations in the drawings to which reference is made, but do not limit these steps to the exact order described. The words “inwardly” and “outwardly” refer to directions toward and away from, respectively, the geometric center of the device and designated parts thereof. Unless specifically set forth herein, the terms “a,” “an” and “the” are not limited to one element, but instead should be read as meaning “at least one.” The terminology includes the words noted above, derivatives thereof and words of similar import.


Referring to the drawings in detail, wherein like numerals and characters indicate like elements throughout, there is shown in FIGS. 1-2B a presently preferred embodiment of an adjustable tension-mounted rod assembly 10 in accordance with the present invention. With reference initially to FIG. 1, the adjustable tension-mounted rod assembly preferably functions as an adjustable dual curtain rod assembly, generally designated 10.


With particular reference to FIGS. 1-2B, the adjustable rod assembly 10 can be secured between two opposing support surfaces (not shown), such as bathroom walls. The adjustable rod assembly 10 can be used as a dual shower curtain rod assembly, or as a standard dual curtain rod assembly. The adjustable rod assembly 10 comprises a first generally straight rod assembly 12 and a second generally curved rod assembly 100, both of which are positioned between the two opposing support surfaces. However, it will be understood by those skilled in the art that the adjustable rod assembly 10 may comprise only one straight or curved rod assembly 12, 100, two generally straight rod assemblies 12, or two generally curved rod assemblies 100.


The curved rod assembly 100 comprises a first, inner tube 112 having an arcuate portion and a second, outer tube 114 having an arcuate portion. The first, inner arcuate tube 112 has a first end 112a and a second end 112b. The second, outer arcuate tube 114 has a first end 114a and a second end 114b. The first end 114a of the second arcuate tube 114 and the second end 112b of the first arcuate tube 112 are each provided with a pair of diametrically opposed apertures 116 (see FIG. 2). The first and second arcuate tubes 112, 114 are preferably made from a metal, and more preferably a non-corrosive metal, such as cold-rolled steel, stainless steel, aluminum, chrome or nickel or alloys or combinations thereof, but may also be constructed using wood, plastic, acrylic, or a like strong, lightweight material or a combination of materials. The first and second arcuate tubes 112, 114 may also be coated with any type of known coating for applying a non-corrosive finish to the curved rod assembly 100.


The first and second arcuate tubes 112, 114 are both preferably generally cylindrical in shape with a circular cross section. However, it will be understood by those skilled in the art that any other suitable cross-sectional shape may be used, including oval, square, rectangular, hexagonal, octagonal, and the like. Preferably, the outer diameter of the first arcuate tube 112 is at least slightly smaller than the inner diameter of the second arcuate tube 114, such that first arcuate tube 112 is telescopingly received within the second arcuate tube 114 in a reasonably tight fit. More particularly, in an assembled position of the adjustable rod assembly 10, the first end 112a of the first arcuate tube 112 is telescopingly positioned or received within the second end 114b of the second arcuate tube 114. Accordingly, the first and second arcuate tubes 112, 114 of the curved rod assembly 100 are telescopingly configured.


The straight rod assembly 12 comprises a first, inner tube 14 of a generally straight configuration and a second, outer tube 16 of a generally straight configuration. The first, inner straight tube 14 has a first end 14a and a second end 14b. The second, outer straight tube 16 has a first end 16a and a second end 16b. The second end 14b of the first straight tube 14 is provided with a pair of diametrically opposed apertures 18. The first and second straight tubes 14, 16 are preferably made from a metal, and more preferably a non-corrosive metal, such as cold-rolled steel, stainless steel, aluminum, chrome or nickel or alloys or combinations thereof, but may also be constructed using wood, plastic, acrylic, or a like strong, lightweight material or a combination of materials. The first and second straight tubes 14, 16 may also be coated with any type of known coating for applying a non-corrosive finish to the straight rod assembly 12.


The first and second straight tubes 14, 16 are both preferably generally cylindrical in shape with a circular cross section. However, it will be understood by those skilled in the art that any other suitable cross-sectional shape may be used, including oval, square, rectangular, hexagonal, octagonal, and the like. Preferably, the outer diameter of the first straight tube 14 is at least slightly smaller than the inner diameter of the second straight tube 16, such that first straight tube 14 is telescopingly received within the second straight tube 16 in a reasonably tight fit. More particularly, in an assembled position of the adjustable rod assembly 10, the first end 14a of the first straight tube 14 is telescopingly positioned or received within the second end 16b of the second straight tube 16. Accordingly, the first and second straight tubes 14, 16 of the straight rod assembly 12 are telescopingly configured.


The second straight tube 16 of the straight rod assembly 12 is preferably a rotatable tube. More particularly, the second straight tube 16 of the straight rod assembly 12 is preferably rotatable about a longitudinal axis X1 thereof. Further, in the assembled position of the adjustable rod assembly 10, the longitudinal axis X1 of the second straight tube 16 of the straight rod assembly 12 is preferably generally aligned with the longitudinal axis X2 of the first straight tube 14 of the straight rod assembly 12. As such, in the assembled position of the adjustable rod assembly 10, the second straight tube 16 is preferably freely rotatable relative to the first straight tube 14 positioned therein.


Preferably, the first and second straight tubes 14, 16 are each at least partially hollow, such that a tension mechanism 20 can be fitted therein (see FIGS. 2A-2C). More specifically, the tension mechanism 20 is fixedly secured within an interior of the second straight tube 16, and more preferably within the first end 16a of the second straight tube 16, such that the tension mechanism 20 is configured to rotate with the second straight tube 16. U.S. Pat. No. 5,330,061, which is assigned to Zenith Products Corp. and is incorporated herein by reference, describes a preferred embodiment of a tension mechanism of the type for use in the adjustable rod assembly 10.


Specifically, referring to FIG. 2C, the tension mechanism 20 of the straight rod assembly 12 is preferably a tension rod mechanism 20 comprising a rod 22 having a first end 22a, a second end 22b, a first stop piece 24 and a second stop piece 26. The first stop piece 24 is provided at the first end 22a of the rod 22, while the second stop piece 26 is positioned in between the first and second ends 22a, 22b. The first and second stop pieces 24, 26 may be shaped differently, as shown in FIG. 2C, or alternatively may have substantially identical structures. As will be discussed more fully herein, the first and second stop pieces 24, 26 define the limits to which the overall length of the adjustable rod assembly 10 can be adjusted.


The rod 22 comprises a threaded portion 28, an unthreaded portion 30 and a connector portion 32. The threaded portion 28 of the rod 22 is defined by the portion of the rod 22 having an external thread pattern. Preferably, at least one part of the threaded portion 28 of the rod 22 is flexible. More preferably, the entirety of the threaded portion 28 of the rod 22 is flexible. However, it will be understood by those skilled in the art that a portion or the entirety of the threaded portion 28 of the rod 22 may alternatively be generally rigid. In one embodiment, as shown in FIG. 2C, the threaded portion 28 of the rod 22 extends from the second end 22b of the rod 22 and the first stop piece 24 to the second stop piece 26.


The connector portion 32 of the rod 22 preferably comprises a connector 34 which defines the first end 22a of the rod 22. At a distal tip of the connector 34, a locking pin 36 is integrally formed with the connector 34. However, it will be understood that the locking pin 36 may be formed as a separate component which is secured to the connector 34 by any conventional means. The locking pin 36 protrudes outwardly from a surface of the connector 34 and also from the threaded and unthreaded portions 28, 30 of the rod 22.


The unthreaded portion 30 of the rod 22 extends from the second stop piece 26 to the connector 34 at the first end 22a of the rod 22. Preferably, at least one part of the unthreaded portion 30 of the rod 22 is flexible. More preferably, the entirety of the unthreaded portion 30 of the rod 22 is flexible. However, it will be understood by those skilled in the art that a portion or the entirety of the unthreaded portion 30 of the rod 22 may alternatively be generally rigid.


In the assembled position of the adjustable rod assembly 10, the first end 14a of the first straight tube 14 is telescopingly positioned within the interior of the second straight tube 16, and the first end 112a of the first arcuate tube 112 is telescopingly positioned within the interior of the second arcuate tube 114. Further, the connector portion 32 of the tension mechanism 20 is fixedly secured within the first end 16a of the second straight tube 16 and at least a portion of the threaded portion 28 of the rod 22 extends into and is rotatably secured within the first straight tube 14. More preferably, the connector 34 of the rod 22 is fixedly secured within the first end 16a of the second straight tube 16, the unthreaded portion 30 of the rod 22 is positioned within an interior of the second straight tube 16, and at least a portion of the threaded portion 28 of the rod 22 extends into an interior of the first end 14a of the first straight tube 14. Accordingly, rotation of the second straight tube 16 about the longitudinal axis X1 thereof, relative to the first straight tube 14, also causes rotation of the rod 22 of the tension mechanism 20 relative to the first straight tube 14.


In one embodiment, at least a portion of an interior surface of the first end 14a of the first straight tube 14 preferably includes a threaded portion which is configured to threadingly engage the threaded portion 28 of the rod 22 to rotatably secure the rod 22 within the first straight tube 14. In another embodiment, the interior of the first end 14a of the first straight tube 14 preferably includes a threaded bushing or nut 38 configured to threadingly engage the threaded portion 28 of the rod 22 to rotatably secure the rod 22 therein. The threaded bushing 38 is preferably fixedly secured within the first end 14a of the first straight tube 14. More preferably, the threaded bushing 38 is positioned at substantially a distal-most tip of the first end 14a of the first straight tube 14. However, it will be understood by those skilled in the art that the threaded bushing 38 may be positioned at some other location within the first straight tube 14, as long as the location allows extension and collapse of the adjustable rod assembly 10 to the desired length.


The threaded bushing 38 is preferably made from a metal, such as cold-rolled steel, stainless steel, aluminum, chrome or nickel or alloys or combinations thereof, but may also be constructed using wood, plastic, acrylic, or a like strong, lightweight material or a combination of materials. The threaded bushing 38 may be secured within the first straight tube 14 by any conventional means, such as a flange connection, a dimple connection, adhesives, welds and the like. Preferably, the threaded bushing 38 is secured within the first end 14a of the first straight tube 14 by a flange 40 which extends circumferentially from the threaded bushing 38 around at least a portion of the distal-most tip of the first end 14a of the first straight tube 14.


Preferably, an exterior surface of the threaded bushing 38 is in direct contact with an interior surface of the first straight tube 14. An interior surface of the threaded bushing 38 is preferably defined by a centrally located and threaded through-hole 42. The thread pattern of the through-hole 42 corresponds to or complements that of the threaded portion 28 of the rod 22. The centrally located through-hole 42 of the threaded bushing 38 also includes an inner diameter that is substantially equal to the outer diameter of the threaded portion 28 of the rod 22. Accordingly, in the assembled position of the adjustable rod assembly 10, and more particularly in the assembled position of the straight rod assembly 12, the threaded portion 28 of the rod 22 is positioned within the centrally located through-hole 42 of the threaded bushing 38, such that the threaded portion 28 of the rod 22 rotates within the threaded bushing 38.


Preferably, rotation of the second straight tube 16 causes the first straight tube 14 and the second straight tube 16 to move axially relative to each other. More particularly, rotation of the second straight tube 16 in a first direction about the longitudinal axis X1 thereof preferably causes the first straight tube 14 and the second straight tube 16 move away from each other, thereby extending a length L1 of the straight rod assembly 12. Rotation of the second straight tube 16 in the first direction, and more particularly movement of the threaded portion 28 within the threaded bushing 38 as the second straight tube 16 is rotated in the first direction, is preferably limited by the second stop piece 26.


Rotation of the second straight tube 16 in a second direction, opposite the first direction, about the longitudinal axis X1 thereof preferably causes the first straight tube 14 and the second straight tube 16 to move axially toward each other, thereby reducing the length L1 of the straight rod assembly 12. Rotation of the second straight tube 16 in the second direction, and more particularly movement of the threaded portion 28 within the threaded bushing 38 as the second straight tube 16 is rotated in the second direction, is preferably limited by the first stop piece 24.


Referring, to FIGS. 3A-3C, the straight rod assembly 12 further comprises a third tube 44 which is preferably generally cylindrical in shape with a circular cross section and which preferably has a generally straight configuration. The third tube 44 is preferably a generally cylindrical coupler 44. The coupler 44 has a first end 44a and a second end 44b. Referring to FIG. 4, in one embodiment, the coupler 44 preferably includes at least one generally closed interior and intermediate wall 46 (see FIG. 4) at a position between the opposing first and second ends 44a. 44b. Preferably, the interior and intermediate wall 46 includes an aperture or groove 46a formed therein. More preferably, the interior and intermediate wall 46 includes a centrally-located aperture 46a formed therethrough. The first end 44a of the coupler 44 preferably includes a pair of diametrically opposed apertures 48.


The inner diameter of the coupler 44 is at least slightly larger than the outer diameter of the second straight tube 16, such that the second straight tube 16 can be positioned within an interior of the coupler 44. More particularly, in the assembled position of the adjustable rod assembly 10, the first end 16a of the second straight tube 16 of the straight rod assembly 12 is telescopingly positioned and received within the second end 44b of the coupler 44. Preferably, the second straight tube 16 is rotatably secured within the coupler 44, such that the second straight tube 16 is freely rotatable relative to the coupler 44.


In one embodiment, the preferred structural configuration of the second straight tube 16 and the coupler 44 is achieved by rotational engagement of the locking pin 36 and the aperture or groove 46a of the intermediate wall 46 of the coupler 44. More particularly, in one embodiment, the first end 16a of the second straight tube 16, in which the connector 34 of the tension mechanism 20 is fixedly secured, is positioned within the second end 44b of the coupler 44 until the locking pin 36 of the connector 34 passes through the aperture 46a of the intermediate wall 46. Preferably, at least a portion of the locking pin 36 has a diameter which is at least slightly larger than that of the aperture 46a, such that once the locking pin 36 is positioned within the aperture 46a (e.g., by snapping the locking pin 36 into position), the locking pin 36 is frictionally engaged by the aperture 46a and is not easily detached or removed from the aperture 46a.


Such an engagement between the tension mechanism 20 and the coupler 44 secures the tension mechanism 20 to the coupler 44 in a stable manner, while simultaneously enabling both the second straight tube 16 and the tension mechanism 20 to rotate relative to the coupler 44 and the first straight tube 14, as necessary for adjustment of the overall length of the adjustable rod assembly 10 and the generation of a tensile or compressive force which holds the adjustable rod assembly 10 in place between opposing supporting surfaces. More particularly, rotation of the second straight tube 16 in the first direction about the longitudinal axis X1 thereof preferably causes the first straight tube 14 and the coupler 44 to move away from each other, thereby extending the overall length of the straight rod assembly 12, as well as that of the curved rod assembly 100 and the adjustable rod assembly 10. Conversely, rotation of the second straight tube 16 in the second, opposite direction about the longitudinal axis X1 thereof preferably causes the first straight tube 14 and the coupler 44 to move toward each other, thereby reducing the length L1 of the straight rod assembly 12, as well as that of the curved rod assembly 100 and the adjustable rod assembly 10.


The coupler 44 is preferably made from a metal, and more preferably a non-corrosive metal, such as cold-rolled steel, stainless steel, aluminum, chrome or nickel or alloys or combinations thereof, but may also be constructed using wood, plastic, acrylic, or a like strong, lightweight material or a combination of materials. The coupler 44 may also be coated with any type of known coating for applying a non-corrosive finish to the coupler 44. More preferably, the coupler 44 is made from the same material as the first and second tubes 14, 16.


The adjustable rod assembly 10 further comprises a first end support 50 and a second end support 52. Each of the first and second end supports 50, 52 is configured to be removably mounted to a respective support surface (not shown) of the two opposing support surfaces. The coupler 44 of the straight rod assembly 12 and the first end 114a of the second arcuate tube 114 are both secured to the first end support 50. The second end 14b of the first straight tube 14 and the second end 112b of the first arcuate tube 112 are both secured to the second end support 52.


The first end and second end supports 50, 52 are preferably made from a lightweight, high strength material, such as cold-rolled steel, stainless steel, aluminum, chrome or nickel or alloys or combinations thereof, but may also be constructed using wood, plastic, acrylic, or a like strong, lightweight material or a combination of materials, without departing from the spirit and scope of the invention. Preferably, the first and second end supports 50, 52 are made from the same material as the straight rod assembly 12 and the curved rod assembly 100. One or both of the first and second end supports 50, 52 may optionally be provided with a decorative cover 54.


The first end support 50 is preferably a mirror image of the second end support 52. For convenience in the description and clarity in the drawings, only the first end support 50 is described in detail and completely labeled in the drawings with the understanding that the second end support 52 includes similar features.


Referring to FIGS. 3A-3C, the first end support 50 includes a base plate 56 having a first, rear face 56a and an opposing second, front face 56b. Preferably, a resilient pad 58 is secured to the rear surface 56a of the base plate 56 and is configured to directly contact one of the opposing support surfaces to support the adjustable rod assembly 10 above a ground surface when the assembly is installed. The resilient pad 58 may be made of a rubber (natural or synthetic), foam, an elastomeric plastic or any other resilient material having a sufficiently high coefficient of friction to ensure secure mounting of the adjustable rod assembly 10 between the two opposing support surfaces.


A first flange 60 and a second flange 62 extend generally perpendicularly from the front face 56b of the base plate 56 of the first end support 50. The first and second flanges 60, 62 are spaced apart from each other so as to form a first support area 64 and a second support area 66 therebetween. Preferably, the first support area 64 is spaced apart from the second support area 66. A first aperture 60a and a second aperture 60b are formed in the first flange 60. A first aperture 62a and a second aperture 62b are formed in the second flange 62. Preferably, the respective first apertures 60a, 62a of the first and second flanges 60, 62 are generally aligned or in registry with each other and the first support area 64 is formed therebetween. Preferably, the respective second apertures 60b, 62h of the first and second flanges 60, 62 are generally aligned or in registry with each other and the second support area 66 is formed therebetween.


In one embodiment, the straight rod assembly 12 is secured between and to the first support areas 64 of the first and second end supports 50, 52. Specifically, the first support area 64 of the first end support 50 preferably receives the first end 44a of the coupler 44 of the straight rod assembly 12 in a stable manner, and the first support area 64 of the second end support 52 preferably receives the second end 14h of the first straight tube 14 of the straight rod assembly 12 in a similarly stable manner.


In one embodiment, a first fastener assembly comprising a first fastening pin 68 and a first fastening pin end 70 is utilized to secure the coupler 44 within the first support space 64 formed between the first and second flanges 60, 62 of the first end support 50. Specifically, in the assembled position of the adjustable rod assembly 10, the first end 44a of the coupler 44 is positioned within the first support space 64, such that the apertures 48 of the first end 44a of the coupler 44 are generally aligned or in registry with the respective first apertures 60a, 62a of the first and second flanges 60, 62. The first fastening pin 68 and the first fastening pin end 70 are then inserted through the respective first apertures 60a, 62a of the first end support 50 and the apertures 48 of the coupler 44. The first fastening pin 68 may be secured within the first fastening pin end 70 by any known conventional mechanisms, such as corresponding thread patterns, an adhesive, friction fit, an interference fit and the like. As such, the coupler 44, and more particularly the first end 44a of the coupler 44, is pivotably secured to the first end support 50. However, it will be understood by those skilled in the art that the coupler 44 may alternatively be fixedly secured to the first end support 50.


Preferably, the second end 14b of the first straight tube 14 is pivotably secured to the first support area 64 of the second end support 52 in a similar manner. Specifically, a second fastening pin and a second fastening pin end of a second fastening assembly (not shown) engage the respective first apertures 60a, 62a of the first and second flanges 60, 62 of the second end support 52 and the apertures 18 of the second end 14b of the first straight tube 14 to pivotably secure the first straight tube 14 to the second end support 52. However, it will be understood by those skilled in the art that the second end 14b of the first straight tube 14 may alternatively be fixedly secured to the second end support 52.


In one embodiment, the curved rod assembly 100 is secured between and to the second support areas 66 of the first and second end supports 50, 52. Specifically, the second support area 66 of the first end support 50 preferably receives the first end 114a of the second arcuate tube 114 in a stable manner, and the second support area 66 of the second end support 52 preferably receives the second end 112b of the first arcuate tube 112 in a stable manner.


In one embodiment, a third fastener assembly comprising a third fastening pin 72 and a third fastening pin end 74 is preferably utilized to secure the first end 114a of the second arcuate tube 114 within the second support space 66 formed between the first and second flanges 60, 62 of the first end support 50. Specifically, in the assembled position of the adjustable rod assembly 10, the first end 114a of the second arcuate tube 114 is positioned within the second support area 66, such that the apertures 116 of the first end 114a of the second arcuate tube 114 are generally aligned or in registry with the respective second apertures 60b, 62b of the first and second flanges 60, 62. The third fastening pin 72 and the third fastening pin end 74 are then inserted through the respective second apertures 60b, 62b of the first end support 50 and the apertures 116 of the first end 114a of the second arcuate tube 114. The third fastening pin 72 may be secured within the third fastening pin end 74 by any known conventional mechanisms, such as corresponding thread patterns, an adhesive, friction fit, an interference fit and the like. As such, the second arcuate tube 114, and more particularly the first end 114a of the second arcuate tube 114, is pivotably secured to the first end support 50.


Preferably, the second end 112b of the first arcuate tube 112 is pivotably secured to the second support area 66 of the second end support 52 in a similar manner. Specifically, a fourth fastening pin and a fourth fastening pin end of a fourth fastening assembly (not shown) engage the respective second apertures 60b, 62b of the first and second flanges 60, 62 of the second end support 52 and the apertures 116 of the second end 112b of the first arcuate tube 112 to pivotably secure the first arcuate tube 112 to the second end support 52. As such, pivotal movement of the curved rod assembly 100 is enabled.


In use, to obtain an assembled adjustable rod assembly 10, both the straight rod assembly 12 and the curved rod assembly 100 must be placed in assembled positions. To place the curved rod assembly 100 in the assembled position, the first end 112a of the first arcuate tube 112 is positioned within the second end 114b of the second arcuate tube 114, such that the first and second tubes 112, 114 are telescopingly configured. Also, the first end 114a of the second arcuate tube 114 is pivotably secured to the second support area 66 of the first end support 50, and the second end 112b of the first arcuate tube 112 is pivotably secured to the second support area 66 of the second end support 52.


To place the straight rod assembly 12 in the assembled position: the first end 14a of the first straight tube 14 is positioned within the second end 16b of the second straight tube 16, such that the first and second tubes 14, 16 are telescopingly configured and the second straight tube 16 is freely rotatable relative to the first straight tube 14; the connector portion 32 of the rod 22 of the tension mechanism 20 is fixedly secured within the first end 16a of the second straight tube 16 and at least a portion of the threaded portion 28 of the rod 22 extends from the second straight tube 16 into the first straight tube 14 where it is rotatably secured therein by the threaded bushing 38; the first end 16a of the second straight tube 16 is rotatably secured within the second end 44b of the coupler 44 such that the locking pin 36 of the connector 34 is positioned within the aperture 46a of the intermediate wall 46 of the coupler 44; the first end 44a of the coupler 44 is pivotably secured to the first end support 50; and the second end 16b of the second straight tube 16 is pivotably secured to the second end support 52.


Accordingly, in the assembled adjustable rod assembly 10, both ends of the curved rod assembly 100 (i.e., first end 114a of the second arcuate tube 114 and the second end 112b of the first arcuate tube 112) are pivotably secured to the first and second end supports 50, 52. Also, in the assembled adjustable rod assembly 10, one end of the straight rod assembly 12 (i.e., the second end 14b of the first straight tube 14) is pivotably secured to the second end support 52, while the other end of the straight rod assembly 12 is rotatably secured to the first end support 50. More particularly, while the coupler 44 is pivotably secured to the first end support 50, the second straight tube 16 remains rotatable relative to the first end support 50. Thus, the second straight tube 16 is rotatably secured to the first end support 50, such that rotational movement of the second straight tube 16 is enabled in the assembled position of the adjustable rod assembly 10.


Since both rod assemblies 12, 100 are secured to the first and second end supports 50, 52, any adjustment of the length L1 of the straight rod assembly 12 results in a similar adjustment of the overall length L2 of the curved rod assembly 100, and accordingly of the overall length of the entire adjustable rod assembly 10. Specifically, as the second straight tube 16 is rotated in either the first or second direction, causing movement of the first and second straight tubes 14, 16 either away from or toward each other, the first and second arcuate tubes 112, 114 will similarly move either away from or toward each other.


To install the assembled adjustable rod assembly 10 in a bathtub or shower stall (not shown), the assembly 10, with the straight rod assembly 12 and the curved rod assembly 100 both in their respective assembled positions, is positioned between the opposing support surfaces of the stall and the lengths L1, L2 of both rod assemblies 12, 100 are adjusted until the desired overall length of the adjustable rod assembly 10 is achieved. As described above, the length L2 of the curved rod assembly 100 is adjusted by sliding the first and second tubes 112, 114 either toward or away from each other until the initial desired length is achieved. Similarly, the length L1 of the straight rod assembly 12 is similarly adjusted by sliding the first and second straight tubes 14, 16 either toward or away from each other until the initial desired length is achieved.


The desired overall length of the adjustable rod assembly 10 is dependent upon the distance between the opposing support surfaces and is achieved when the rear face 56a of the base plate 56 (or the resilient pad 58 attached thereto) of each end support 50, 52 is proximate a respective opposing support surface. More preferably, the desired overall length of the adjustable rod assembly 10 is achieved when the rear face 56a of the base plate 56 or (the resilient pad 58 attached thereto) of each end support 50, 52 directly contacts or almost directly contacts a respective opposing support surface at generally the same height, such that the first and second straight tubes 14, 16 and the first and second arcuate tubes 112, 114 are generally horizontal in the mounted configuration.


Finally, once the assembled adjustable rod assembly 10 is properly positioned between the two opposing support surfaces, the second straight tube 16 can be manually rotated by a user to generate a tension or compressive force to be exerted by the adjustable rod assembly 10 upon the opposing support surfaces, such that the assembly 10 is maintained between the two opposing surfaces without the use of fasteners or adhesives. Specifically, when the assembled adjustable rod assembly 10 is positioned between the two opposing surfaces, the user manually rotates second straight tube 16 about its longitudinal axis X1, thereby extending the length L1 of the straight rod assembly 12. The length L2 of the curved rod assembly 100 is similarly extended, since the telescoping first and second arcuate tubes 112, 114 will naturally move away from each other as the first and second straight tubes 14, 16 do so.


Rotation of the second straight tube 16 is performed until the rear surface 56a of the base plate 56 or (the resilient pad 58 attached thereto) of each end support 50, 52 directly contacts a respective opposing support surface and a compressive or tensile force, generated by the tension mechanism 20, is applied or exerted against the opposing support surfaces. In one embodiment, upon rotation of the second straight tube 16, the threaded portion 28 of the rod 22 becomes flexed within the interior of the first straight tube 14, thereby causing the adjustable rod assembly 10 to exert a force against the opposing support surfaces and providing sufficient tension to maintain a secure fit between the surfaces. Preferably, a compressive or tensile force is also generated and exerted between the threads of bushing 38 and the threads of threaded portion 28 to maintain the position of bushing 38 along the threaded portion 28. As such, the adjustable rod assembly 10 is maintained between the two opposing surfaces without the use of fasteners or adhesives.


Those skilled in the art will appreciate that changes could be made to the embodiments described above without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiments disclosed, but it is intended to cover modifications within the spirit and scope of the present invention as defined by the appended claims.

Claims
  • 1. A method of installing an adjustable rod assembly, the method comprising the steps of: a) providing an adjustable rod assembly including a first straight rod assembly having a first straight tube and a second straight tube, a second curved rod assembly having a first arcuate tube and a second arcuate tube, and first and second end supports, each of the first and second straight tubes and each of the first and second arcuate tubes having opposing first and second ends;b) assembling the adjustable rod assembly by: (i) telescopingly positioning the first end of the first straight tube in the second end of the second straight tube and telescopingly positioning the first end of the first arcuate tube in the second end of the second arcuate tube,(ii) pivotably securing the second end of the first straight tube and the second end of the first arcuate tube to the second end support,(iii) pivotably securing the first end of the second arcuate tube to the first end support, and(iv) rotatably securing the first end of the second straight tube to the first end support;c) positioning the assembled adjustable rod assembly between opposing support surfaces;d) adjusting a length of the assembled adjustable rod assembly such that a respective rear surface of each of the first and second end supports is proximate a respective one of the opposing support surfaces; ande) rotating the second straight tube about a longitudinal axis thereof until the respective rear surface of each of the first and second end supports directly contacts a respective one of the opposing support surfaces and the assembled adjustable rod assembly applies a compressive force against the opposing support surfaces.
  • 2. The method of claim 1, wherein rotation of the second straight tube in a first direction about a longitudinal axis thereof extends the length of the assembled adjustable rod assembly and wherein rotation of the second straight tube in a second opposite direction about the longitudinal axis thereof reduces the length of the assembled adjustable rod assembly.
  • 3. An adjustable rod assembly comprising: a first straight rod assembly including: a first straight tube having a first end and a second end,a second straight tube having a first end and a second end, the second end of the first straight tube being telescopingly received within the second end of the second straight tube and the second straight tube being rotatable relative to the first straight tube, anda third straight tube having a first end and a second end, the first end of the second straight tube being rotatably and telescopingly received within the second end of the third straight tube;a second curved rod assembly including a first arcuate tube having a first end and a second end and a second arcuate tube having a first end and a second end, the first end of the first arcuate tube being telescopingly received within the second end of the second arcuate tube;a first end support and a second end support, the first end of the third straight tube and the first end of the second arcuate tube being pivotably secured to the first end support at spaced apart positions, the second end of the first straight tube and the second end of the first arcuate tube being pivotably secured to the second end support at spaced apart positions;a tension mechanism including a rod having a connector and a threaded portion, the connector being fixedly secured within the first end of the second straight tube and rotatably secured within the third straight tube, the threaded portion being rotatably secured within the first straight tube by a threaded bushing,wherein rotation of the second straight tube in a first direction about a longitudinal axis of the second straight tube causes the first straight tube and third straight tube to move away from each other and causes the first arcuate tube and the second arcuate tube to move away from each other, andwherein rotation of the second straight tube in a second opposite direction about the longitudinal axis of the second straight tube causes the first straight tube and third straight tube to move toward each other and causes the first arcuate tube and the second arcuate tube to move toward each other.
  • 4. The adjustable rod assembly of claim 3, wherein the third straight tube includes an interior wall at a position between first and second opposing ends thereof, the interior wall including an aperture formed therethrough.
  • 5. The adjustable rod assembly of claim 4, wherein the connector includes a pin which extends outwardly from a surface of the connector and which rotatably engages the aperture of the interior wall of the third straight tube, the engagement between the pin and the aperture enabling rotation of the second straight tube relative to the third straight tube and the first end support.
  • 6. The adjustable rod assembly of claim 3, wherein at least a part of the threaded portion of the rod of the tension mechanism is flexible.
US Referenced Citations (238)
Number Name Date Kind
D19582 Lau Jan 1890 S
653642 Darling Jul 1900 A
839959 Richards Jan 1907 A
972544 Lathrop Oct 1910 A
1253486 Hammer Jan 1918 A
1481730 Oakley Jan 1924 A
1502154 Meuller Jul 1924 A
1675111 Kenney Jun 1928 A
1679881 Simpson Aug 1928 A
1721305 Koering Jul 1929 A
1721306 Koering Jul 1929 A
D81134 Henderson May 1930 S
1837340 Schwartz Dec 1931 A
1951660 Klaudt Mar 1934 A
1953450 Thompson Apr 1934 A
2032842 Gould Mar 1936 A
2131156 Yardley Sep 1938 A
2150204 Boye Mar 1939 A
D119576 Kirsch Mar 1940 S
2194064 Boye Mar 1940 A
2195979 Ziolkowski Apr 1940 A
2215331 Marsh Sep 1940 A
2219075 Veau Oct 1940 A
2250003 Boye Jul 1941 A
2263698 Hodgson Nov 1941 A
2293168 Pirone Aug 1942 A
2383104 Allen Aug 1945 A
2458643 Riley Jan 1949 A
2462321 Holmes Feb 1949 A
2519996 Blake Aug 1950 A
2562371 Shannon Jul 1951 A
2637555 Klaudt May 1953 A
2778030 Goche Jan 1957 A
2796227 Coakley Jun 1957 A
2915327 Kreske Dec 1959 A
2919134 Zuro Dec 1959 A
2927762 Owsiak Mar 1960 A
2974806 Seewack Mar 1961 A
3023909 Henry Mar 1962 A
3079005 Bednar Feb 1963 A
3107361 Glutting, Sr. Oct 1963 A
3418665 Long Dec 1968 A
3429452 Johnson Feb 1969 A
3493121 Doyle Feb 1970 A
3504805 Doyle Apr 1970 A
3521758 Guilfoyle, Sr. Jul 1970 A
3557390 Ruggles et al. Jan 1971 A
3572511 Triplett Mar 1971 A
3687499 Guilfoyle, Sr. Aug 1972 A
3864760 Bowen Feb 1975 A
D248434 Clivio et al. Jul 1978 S
4117557 McPeak et al. Oct 1978 A
4229842 Gilmore Oct 1980 A
4238164 Mazzolla Dec 1980 A
4329076 Coreth May 1982 A
4378071 Yakimicki Mar 1983 A
4399917 Ohman Aug 1983 A
4461056 Solinski Jul 1984 A
4496059 Leiter Jan 1985 A
4586615 Quitmann May 1986 A
4635889 Bell et al. Jan 1987 A
4636106 Waisbrod Jan 1987 A
4662593 Shames et al. May 1987 A
D293297 Wood Dec 1987 S
4754504 Cellini Jul 1988 A
4809401 Honig Mar 1989 A
D301976 Greenhut et al. Jul 1989 S
4895471 Geltz et al. Jan 1990 A
4979713 Bell Dec 1990 A
5022104 Miller Jun 1991 A
5056753 Lunau et al. Oct 1991 A
5103531 Perrotta Apr 1992 A
D327421 Pagan Jun 1992 S
5189759 Poore Mar 1993 A
5216766 Lang Jun 1993 A
5236229 Gonzalez Aug 1993 A
5242065 Hoban Sep 1993 A
5263594 Bianchi Nov 1993 A
5281063 Austin, III Jan 1994 A
D347784 Warshawsky Jun 1994 S
5330061 Geltz Jul 1994 A
5433551 Gordon Jul 1995 A
5477964 Hart Dec 1995 A
5484056 Wood Jan 1996 A
D374167 Scholl Oct 1996 S
5561870 Hertel Oct 1996 A
D376312 Cahn et al. Dec 1996 S
D377753 Meadows Feb 1997 S
5603475 Lim Feb 1997 A
D379297 Shires May 1997 S
5662297 Christensen et al. Sep 1997 A
D385177 Perry Oct 1997 S
5678703 Sawyer Oct 1997 A
D393390 Gottwald Apr 1998 S
D397928 Wise Sep 1998 S
5803643 Patelli et al. Sep 1998 A
5876147 Longo Mar 1999 A
5894610 Winter Apr 1999 A
D416785 Ming-Hsiao Nov 1999 S
D426142 Moore Jun 2000 S
D429461 Rowlay Aug 2000 S
6101675 Goldstein Aug 2000 A
D431460 Nichol Oct 2000 S
D438462 Nichol Mar 2001 S
6199808 Lin Mar 2001 B1
6216287 Wise Apr 2001 B1
6263523 Moore Jul 2001 B1
6302180 Yu Oct 2001 B1
6302614 Tseng Oct 2001 B1
6305558 Bates Oct 2001 B1
D466399 Jessee et al. Dec 2002 S
6543629 Samelson Apr 2003 B1
6640395 Bush Nov 2003 B2
6651830 Pan Nov 2003 B2
6651831 Samelson Nov 2003 B2
D483251 Suero, Jr. Dec 2003 S
6694543 Moore Feb 2004 B2
6715163 Cunningham Apr 2004 B1
D489249 Moore May 2004 S
6745909 Lai Jun 2004 B1
D498663 Moore Nov 2004 S
6824000 Samelson Nov 2004 B2
6845955 Hsu Jan 2005 B1
6862776 Chen Mar 2005 B2
6883664 Lee Apr 2005 B2
D506920 Taylor Jul 2005 S
6913156 Wolff Jul 2005 B1
7024706 Hess Apr 2006 B2
D522845 Suero Jun 2006 S
D522846 Suero, Jr. Jun 2006 S
D522847 Suero, Jr. Jun 2006 S
7055680 Liebers Jun 2006 B2
D525115 Harwanko Jul 2006 S
7076815 Orpilla Jul 2006 B2
7111336 Lai Sep 2006 B1
D534062 van den Bosch Dec 2006 S
D542125 Kaminski May 2007 S
D542897 Harwanko May 2007 S
D543754 Bauer et al. Jun 2007 S
D543756 Gilbert Jun 2007 S
D543839 Cooper et al. Jun 2007 S
D544786 Barrese Jun 2007 S
D547165 Barrese Jul 2007 S
D550542 Worrall et al. Sep 2007 S
D552455 Moore Oct 2007 S
7296772 Wang Nov 2007 B2
D557590 Moore Dec 2007 S
D563209 Samelson Mar 2008 S
D563526 Bauer Mar 2008 S
7346940 Liao Mar 2008 B1
D565937 Tsai Apr 2008 S
D567637 Moore Apr 2008 S
D576022 Goldstein Sep 2008 S
D577991 Chen Oct 2008 S
D586647 Didehvar Feb 2009 S
7512997 Dewees Apr 2009 B2
7597297 Isfeld et al. Oct 2009 B2
D618542 Bertken Jun 2010 S
7762508 Xu Jul 2010 B2
D624807 Barrese Oct 2010 S
D624808 Krawczak et al. Oct 2010 S
7857151 Barrese Dec 2010 B2
D631273 O'Brien et al. Jan 2011 S
D631732 Krawczak et al. Feb 2011 S
D633780 Barrese Mar 2011 S
D634609 Bauer Mar 2011 S
D636660 O'Connell Apr 2011 S
7926127 Barrese Apr 2011 B2
7950534 Kao May 2011 B2
D640078 Gilbert Jun 2011 S
7958577 Chang Jun 2011 B2
7987532 Bathurst et al. Aug 2011 B2
7987534 Lin Aug 2011 B2
7997428 Goldstein Aug 2011 B2
8015633 Ho Sep 2011 B2
D648619 Lowe Nov 2011 S
D648834 Gilbert Nov 2011 S
8056873 Hanley et al. Nov 2011 B1
D650263 Barrese Dec 2011 S
8069507 Didehvar et al. Dec 2011 B2
8069508 O'Connell Dec 2011 B2
8146182 Bauer Apr 2012 B2
8185981 Didehvar et al. May 2012 B2
8214938 Hanley et al. Jul 2012 B2
8215501 Trettin et al. Jul 2012 B2
8215863 Sohn Jul 2012 B2
D667295 Harwanko Sep 2012 S
8297870 Lenhart Oct 2012 B2
D671395 Harwanko Nov 2012 S
8341775 Didehvar Jan 2013 B2
8505129 Parker et al. Aug 2013 B2
8505749 Trettin et al. Aug 2013 B2
8522373 Bauer Sep 2013 B2
D691030 Lindo et al. Oct 2013 S
8800072 Chang Aug 2014 B2
8827587 Didehvar Sep 2014 B2
8851305 Didehvar Oct 2014 B2
20020084394 Barrett Jul 2002 A1
20030034316 Kao Feb 2003 A1
20030052070 Weisenburger Mar 2003 A1
20040178310 Marion Sep 2004 A1
20040182806 Figueroa Sep 2004 A1
20050053423 Doubler et al. Mar 2005 A1
20050230587 Yang Oct 2005 A1
20050268394 Monk et al. Dec 2005 A1
20060070177 Bathurst et al. Apr 2006 A1
20060156465 Lavi et al. Jul 2006 A1
20060218717 van den Bosch Oct 2006 A1
20070006377 Moore Jan 2007 A1
20070006378 Moore Jan 2007 A1
20070174956 Heaslip Aug 2007 A1
20080022451 Urlich et al. Jan 2008 A1
20080028513 Didehvar Feb 2008 A1
20080115265 Heaslip May 2008 A1
20080184479 Bathurst Aug 2008 A1
20080210827 Samelson Sep 2008 A1
20080245486 Brown Oct 2008 A1
20080245940 Brown Oct 2008 A1
20080282464 Bauer Nov 2008 A1
20080289096 Patel Nov 2008 A1
20090083905 O'Connell Apr 2009 A1
20090242713 Lowe et al. Oct 2009 A1
20110011813 Kao Jan 2011 A1
20110113547 O'Connell May 2011 A1
20120005823 Baines Jan 2012 A1
20120023657 Didehvar et al. Feb 2012 A1
20120036628 O'Connell Feb 2012 A1
20120110729 Baines May 2012 A1
20120123896 Prodanovic et al. May 2012 A1
20120152872 Didehvar Jun 2012 A1
20120152873 Didehvar Jun 2012 A1
20120152874 Didehvar Jun 2012 A1
20120167368 Napier et al. Jul 2012 A1
20120241399 Trettin et al. Sep 2012 A1
20120261370 Chuang Oct 2012 A1
20120284914 Bauer Nov 2012 A1
20120285914 Carney Nov 2012 A1
20140131298 Didehvar et al. May 2014 A1
Foreign Referenced Citations (28)
Number Date Country
625601 Sep 1981 CH
2221357 Mar 1996 CN
2228573 Jun 1996 CN
2349932 Nov 1999 CN
2566754 Aug 2003 CN
2705648 Jun 2005 CN
2835679 Nov 2006 CN
2893271 Apr 2007 CN
201001603 Jan 2008 CN
201187499 Jan 2009 CN
201189069 Feb 2009 CN
201363343 Dec 2009 CN
2051383 May 1971 DE
2460382 Apr 1986 DE
3539449 May 1987 DE
3539449 Jul 1992 DE
58405 Aug 1982 EP
58405 May 1985 EP
499003 Jan 1920 FR
2066283 Aug 1971 FR
1333384 Oct 1973 GB
2325397 Nov 1998 GB
2400813 Oct 2004 GB
2426693 Dec 2006 GB
2000-046021 Feb 2000 JP
2001-112561 Apr 2001 JP
2004-036803 Feb 2004 JP
2004-057213 Feb 2004 JP
Non-Patent Literature Citations (46)
Entry
Office Action issued Dec. 14, 2012 in U.S. Appl. No. 13/269,108.
U.S. Appl. No. 13/752,724 by Lindo, filed Jan. 29, 2013.
Office Action issued Apr. 2, 2013 in U.S. Appl. No. 29/437,013.
U.S. Appl. No. 29/451,499 by Harwanko, filed Apr. 3, 2013.
U.S. Appl. No. 13/911,191 by Didehvar, filed Jun. 6, 2013.
Office Action issued Jun. 21, 2013 in U.S. Appl. No. 13/752,724 by Lindo.
Office Action issued Jul. 8, 2013 in U.S. Appl. No. 13/269,108 by Didehvar.
U.S. Appl. No. 29/480,312 by Vacarro, filed Jan. 24, 2014.
U.S. Appl. No. 14/258,546 by Vaccaro, filed Apr. 22, 2014.
Office Action issued Jul. 2, 2014 in U.S. Appl. No. 13/269,108 by Didehvar.
Office Action issued Oct. 4, 2013 in U.S. Appl. No. 13/268,712 by Didehvar.
Office Action issued Oct. 11, 2013 in U.S. Appl. No. 13/269,030 by Didehvar.
Office Action issued Nov. 29, 2013 in U.S. Appl. No. 13/268,712 by Didehvar.
Office Action issued Dec. 6, 2013 in U.S. Appl. No. 13/269,108 by Didehvar.
Office Action issued Dec. 27, 2013 in U.S. Appl. No. 13/752,724 by Lindo.
<http://plumbing.hardwarestore.com/51-283-shower-rods-and-holders/stanless-steel-curved-shower-rod-609421.aspx>; “Stanless Steel Curved Shower Rod, 1″×5″”; web page printout date: Feb. 10, 2010; original web posting date: unknown, 1 page.
Office Action issued Jul. 8, 2011 in U.S. Appl. No. 11/833,044.
Office Action issued Dec. 11, 2012 in U.S. Appl. No. 29/381,234.
Notice of Allowance issued Jul. 24, 2012 in U.S. Appl. No. 29/422,283.
U.S. Appl. No. 29/398,880 by Lindo, filed Aug. 5, 2011.
Office Action issued Feb. 16, 2012 in U.S. Appl. No. 13/253,617.
U.S. Appl. No. 29/381,234 by Didehvar, filed Dec. 16, 2010.
U.S. Appl. No. 29/390,736 by Harwanko, filed Apr. 28, 2011.
U.S. Appl. No. 13/676,800 by Didehvar, filed Nov. 14, 2012.
Office Action issued Jul. 20, 2011 in U.S. Appl. No. 12/157,376.
Office Action issued Nov. 22, 2011 in U.S. Appl. No. 12/157,376.
U.S. Appl. No. 29/437,013 by Didehvar, filed Nov. 12, 2012.
U.S. Appl. No. 29/443,578 by Lindo, filed Jan. 18, 2013.
<http://www.amazon.com/Polder-Radial-Duo-Shower-Rod/dp/B001CEONRY>; Polder Radial Duo Shower Rod, web page printout date: Jun. 2, 2011; original web posting date and product availability date: unknown, 3 pages.
Photographs of Tension Rod With End Cap and Cover (1)—Date Unknown—Admitted Prior Art as of at least Nov. 13, 2011.
Photographs of Tension Rod With End Cap and Cover (2)—Date Unknown—Admitted Prior Art as of at least Nov. 13, 2011.
Three photographs of Maytex Mills “Ez-Up” tension rod (date unknown) (admitted prior art as of at least Nov. 13, 2011).
“Masterform Tool Company; Clevis Brackets”, web page printout date: Feb. 11, 2010; original web posting date and product availability date: unknown, 1 page. (admitted prior art as of at least Nov. 13, 2011), retrieved from: http://www.masterformtool.com/catalog.asp?category=2&class=11&subclass=0&part=0.
“Medium—to Heavy-Duty Repairable Cylinders”, Aro-20546 Clevis Bracket, SKU—40769, web page printout date: Feb. 11, 2010; original web posting date: unknown, 1 page. (admitted prior art as of at least Nov. 13, 2011), retrieved from: http://www.drillspot.com/products/40400/ingersoll-rand—20547—clevis—bracket.
“Clevis Bracket, Material: Forging, Weldment, or Ductile Iron”, web page printout date: Feb. 11, 2010; original web posting date: unknown, 1 page. (admitted prior art as of at least Nov. 13, 2011), retrieved from: http://www.aggressivehydraulics.com/products/cylinder-component-parts/mounts/.
JCPenney, “Curved Smart Shower Rod” (admitted prior art as of at least Nov. 13, 2011), retrieved from http://www.jcpenney.com/curved-smart-shower-curtain-rod/prod.jump?ppld=pp5002324584&cmvc=JCP|dept20000012|cat100250092|RICHREL&grView=&eventRootCatld=&currentTabCatld=&regld=.
Photograph of Curved Shower Rod by Hardware Resources (admitted prior art as of at least Nov. 13, 2011).
Photograph of a curved shower rod distributed by Popular Bath Products, Inc. (admitted prior art as of at least Nov. 13, 2011).
U.S. Appl. No. 14/465,370 by Didehvar, filed Aug. 21, 2014.
U.S. Appl. No. 14/465,355 by Didehvar, filed Aug. 21, 2014.
U.S. Appl. No. 14/522,226 by Walker, filed Oct. 23, 2014.
U.S. Appl. No. 29/506,250 by Walker, filed Oct. 14, 2014.
Office Action issued Aug. 20, 2014 in U.S. Appl. No. 13/911,191 by Didehvar.
Office Action issued Nov. 6, 2014 in U.S. Appl. No. 14/465,355 by Didehvar.
Office Action issued Jan. 7, 2015 in U.S. Appl. No. 14/465,355 by Didehvar.
English translation of an Office Action issued Dec. 9, 2014 in CN Application No. 201110461894.0.
Related Publications (1)
Number Date Country
20140130331 A1 May 2014 US