1. Field of the Invention
The present invention relates to a code-changeable assembly and a dial wheel device, and more particularly to a code-changeable assembly and a dial wheel device for a combination lock.
2. Description of Related Art
A conventional dial wheel device has a seat, a positioning rod, a restoring element, multiple dial wheel assemblies, and an adjuster. The seat has a first side surface. The positioning rod is mounted on the first side surface of the seat and has a through recess. The restoring element is mounted on the positioning rod and is connected to the first side surface of the seat. The dial wheel assemblies are connected with each other and are mounted on the positioning rod. One of the dial wheel assemblies facing the first side surface of the seat is connected to the restoring element. The adjuster is mounted on an end of the positioning rod and is connected to one of the dial wheel assemblies close to the end of the positioning rod. Each dial wheel assembly has an outer ring, a retaining element, a pushing element and a torsion spring. The outer ring has a retaining recess. The retaining element is mounted in the outer ring and has a retaining portion. The retaining portion is inserted into the retaining recess of the outer ring selectively. The pushing element is mounted in the outer ring and abuts the retaining element. The torsion spring is mounted on the pushing element.
In the code-unchanged state, the retaining portion of the retaining element is inserted into the retaining recess of the outer ring, and the retaining element and the outer ring are coactive. In the code-changing state, the adjuster is controlled to push the retaining element, the pushing element and the torsion spring in the outer ring. The retaining portion of the retaining element is moved out from the retaining recess of the outer ring, and the retaining element and the outer ring are non-coactive. Then, users turn the outer ring to select one of the code combinations on the outer ring, and then the adjuster is controlled. The retaining element is inserted into the retaining recess of the outer ring again, and the retaining element and the outer ring are coactive again.
As such, each dial wheel assembly of the dial wheel device has many components and is inconvenient in assembly.
To overcome the shortcomings, the present invention tends to provide a code-changeable assembly and a dial wheel device to mitigate or obviate the aforementioned problems.
The main objective of the invention is to provide a code-changeable assembly and a dial wheel device being easy to assemble.
The code-changeable assembly has a controller and a dial wheel assembly. The dial wheel assembly is mounted on the controller and has an outer ring, an inner ring and a torsion spring. The outer ring has multiple retaining grooves formed in an inner surface of the outer ring. The inner ring is controlled by the controller and located in the outer ring, and has a retaining portion and a positioning recess. The retaining portion is mounted on an outer surface of the inner ring. The positioning recess is formed in an inner surface of the inner ring. The torsion spring is mounted on the inner ring and connected to the controller.
The dial wheel device has a controller, a dial wheel module, a seat and a restoring element. The controller has a positioning rod and an adjuster. The positioning rod has a plate, a locking hole, a first chute, a rod body, a slot and multiple positioning elements. The locking hole is formed through the plate. The first chute is formed in the plate. The rod body is formed on the plate. The slot is formed in the rod body and is in communication with the locking hole. The positioning elements are mounted on an outer surface of the rod body. The adjuster is rotatably mounted on the rod body of the positioning rod and has two shafts and a guide element. The shafts protrude out from the plate. The guide element is inserted into the first chute. The dial wheel module is mounted on the rod body of the controller and is connected to the adjuster. The dial wheel module has multiple dial wheel assemblies and each dial wheel assembly has an outer ring, an inner ring and a torsion spring. The outer ring has multiple retaining grooves formed in an inner surface of the outer ring. The inner ring is located in the outer ring and has a retaining portion and a positioning recess. The retaining portion is mounted on an outer surface of the inner ring and is selectively inserted into one of the retaining grooves of the outer ring. The positioning recess is formed in an inner surface of the inner ring and each positioning element is inserted into a corresponding one of the positioning recesses of the dial wheel assemblies. The torsion spring is mounted on the inner ring and is connected to the rod body. The seat is mounted on a distal end of the rod body of the positioning rod. The restoring element is mounted on the rod body of the positioning rod, and two ends of the restoring element are connected to the dial wheel module and the seat respectively.
In the code-unchanged state, the retaining portion of the inner ring is inserted in one of the retaining grooves, and the outer ring and the inner ring are coactive. In the code-changing state, the adjuster is rotated and the guide element is moved along the first chute for forming a lateral displacement to push the inner ring. Thus, the retaining portion of the inner ring is moved out from the corresponding one of the retaining grooves of the outer ring, and the outer ring and the inner ring are non-coactive. Then, users can turn the outer ring to reset the code. When the code-changing state is finished, the adjuster is rotated again and the outer ring and the inner ring are coactive again. Therefore, the components of the code-changeable assembly are simplified and the dial wheel device is easy to assemble and operate.
With reference to
The controller 1 has a positioning rod 10 and an adjuster 20. The positioning rod 10 has a plate 11, a locking hole 13, a first chute 14, a rod body 12, a slot 15 and multiple positioning elements 16. The locking hole 13 is formed through the plate 11. The first chute 14 is formed in the plate 11. The rod body 12 is formed on plate 11. The slot 15 is formed in the rod body 12 and is in communication with the locking hole 13. The positioning elements 16 are mounted on an outer surface of the rod body 12. The adjuster 20 is rotatably mounted on the rod body 12 of the positioning rod 10. The adjuster 20 has two shafts 21 and a guide element 22. The shafts 21 protrude out from the plate 11. The guide element 22 is inserted into the first chute 14.
The dial wheel assembly 31 is mounted on the controller 1 and has an outer ring 32, an inner ring 33 and a torsion spring 34. The outer ring 32 has multiple retaining grooves 35 formed in an inner surface of the outer ring 32. The inner ring 33 is controlled by the controller 1 and is located in the outer ring 32, and has a retaining portion 36, a retaining surface 331, a positioning recess 37 and a notch 39. The retaining portion 36 is formed on an outer surface of the inner ring 33. The positioning recess 37 is formed in an inner surface of the inner ring 33. The notch 39 is formed in the inner surface of the inner ring 33 and is diametrically opposite to the positioning recess 37. The retaining surface 331 is formed on the inner surface of the inner ring 33 except at positions where the notch 39 and the positioning recess 37 are formed, and selectively abuts one of the positioning elements 16. The torsion spring 34 is mounted on the inner ring 33 and is connected to the rod body 12 of the controller 1.
With further reference to
With reference to
The dial wheel module 30 is mounted on the rod body 12 of the controller 1 and is connected to the adjuster 20. The dial wheel module 30 has multiple dial wheel assemblies 31 as aforementioned. The retaining portion 36 of each dial wheel assembly 31 is selectively inserted into one of the retaining grooves 35 of the outer ring 32. Each positioning element 16 is inserted into a corresponding one of the positioning recesses 37 of the dial wheel assemblies 31.
The seat 40 is mounted on a distal end of the rod body 12 of the positioning rod 10.
The restoring element 50 is mounted around the rod body 12 of the positioning rod 10, and two ends of the restoring element 50 are connected to the dial wheel module 30 and the seat 40 respectively.
With reference to
The seat 40 has an assembly hole 41 and a pin hole 42. The assembly hole 41 is formed in a surface of the seat 40 facing the dial wheel assemblies 31. The pin hole 42 is formed in the seat 40 and is laterally in communication with the assembly hole 41. The positioning rod 10 has a positioning pin 111. The positioning pin 111 is retractable and is mounted on the distal end of the rod body 12. When the distal end of the rod body 12 is inserted into the assembly hole 41 of the seat 40, the positioning pin 111 is inserted into the pin hole 42 of the seat 40. The positioning rod 10 has two second chutes 17 formed through the plate 11, and each shaft 21 protrudes out from a corresponding one of the second chutes 17 of the positioning rod 10. The first chute 14 is formed in an inner surface of the plate 11 and has a positioning surface 18 and a guide surface 19. The guide surface 19 is formed in and is inclined relative to the inner surface of the plate 11. The positioning surface 18 is located at an end of the guide surface 19.
With reference to
Before changing the code, the positioning recesses 37 of the inner rings 33 are rotated to align with the positioning elements 16, and the retaining surfaces 331 of the inner rings 33 are kept from abutting the positioning elements 16. With reference to
With reference to
A chain is connected to the seat 40 and a locking bar 60 with two ends of the chain, respectively. The locking bar has multiple teeth. With reference to
The locking bar 60 is inserted into the locking hole 13 of the positioning rod 10 and the teeth of the locking bar 60 protrude out of the slot 15 of the rod body 12. In the locked state of the dial wheel device, the notches 39 of the inner rings 33 do not face the slot 15 of the positioning rod 10, and the teeth of the locking bar 60 are stopped by the retaining surfaces 331 of the inner rings 33. Therefore, the locking bar 60 cannot be removed out of the dial wheel device. Accordingly, the adjuster 20 pushes the inner ring 33 in the code-unchanged state, and the retaining portion 36 of the inner ring 33 is moved out from a corresponding one of the retaining grooves 35 of the outer ring 32. Therefore, the outer ring 32 and the inner ring 33 are non-coactive. After resetting of the code is finished, the outer ring 32 and the inner ring 33 are coactive. Thus, the components of the code-changeable assembly 31 are simplified and the dial wheel device is easy to assemble and operate.
In addition, the elastic piece 38 is mounted on the inner ring 33 and is located at the second base plane 312. When the retaining portion 36 of the inner ring 33 is moved out from a corresponding one of the retaining grooves 35 of the outer ring 32, the elastic piece 38 is still inserted in one of the retaining grooves 35. Therefore, the rotating process of the outer ring 32 generates a tactile indication of the positioning effect.
Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and function of the invention, the disclosure is illustrative only, and changes may be made in detail, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.