1. Field of the Invention
The present invention relates to a cable lock, especially to a self-locking cable lock.
2. Description of the Prior Arts
Cable locks are attached securely to cables that bind, lock and hold objects securely. Generally speaking, small, high value, pilferable objects such as computers, household appliances and the like on display need to be locked in place. Cable locks are used to keep the objects from being stolen. However, conventional cable locks must be locked and unlocked with keys. Using keys to lock conventional cable locks on objects is inconvenient because the keys must be controlled and protected.
To overcome the shortcomings, the present invention provides a self-locking cable lock to mitigate or obviate the aforementioned problems.
The main objective of the present invention is to provide a self locking cable lock. The self-locking cable lock has a main shell, an external sleeve, an internal sleeve, a lock shell, a lock cylinder and a lock actuating assembly. The external sleeve is mounted in the main shell and has a stationary protruding rod extending out of the main shell. The internal sleeve is mounted in the external sleeve, is allowed to move axially relative to the external sleeve and has two movable protruding rods. The movable protruding rods extend out of the external sleeve and have inclined distal ends. The lock cylinder is mounted in the lock shell. The lock actuating assembly is mounted in the lock cylinder. The stationary protruding rod is pushed into a keyhole of a desired appliance and the movable protruding rods can be pressed to move axially. Then the cable lock is able to be self locking.
Other objectives, advantages and novel features of the invention will become more apparent from the following detailed description when taken in conjunction with the accompanying drawings.
With reference to
The main shell (10) is tubular, is attached to the cable (70) and may have two opening ends, a sidewall and a joint (11). The joint (11) is formed on the sidewall of the main shell (10) and is attached to the cable (70).
The external sleeve (20) is mounted rotatably in the main shell (10), is tubular and has a front end, a rear end, an outer wall, an inner wall, a stationary protruding rod (23), two through holes (211), a slot (24) and a passing hole (25). With further reference to
The internal sleeve (30) is mounted in the external sleeve (20), is only allowed to move axially with respect to the external sleeve (20) and rotates simultaneously with respect to the external sleeve (20). The internal sleeve (30) has a front end, a rear end, a sidewall, two movable protruding rods (33), an annular flange (34) and two gaps (36). The front end may be a close end (31). The rear end may be an opening end (32). The movable protruding rods (33) are formed separately on the front end of the internal sleeve (30), extend out of the through holes (211) in the external sleeve (21) and are slidably held inside the channels (231) in the stationary protruding rod (23), respectively. Each movable protruding rod (33) has an inclined distal end. The annular flange (34) is formed around the rear end of the internal sleeve (30). The gaps (36) are formed separately in the sidewall of the internal sleeve (30), respectively correspond to the slot (24) and the passing hole (25) in the external sleeve (20) and may divide the sidewall into two sector parts (35). The sector parts (35) respectively correspond to and engage the sector recesses (26) in the external sleeve (20) to allow the internal sleeve (30) moving axially with respect to the external sleeve (20) and rotating simultaneously with the external sleeve (20).
The lock shell (40) is mounted in the internal sleeve (30) and has a sidewall, a through hole (41) and a passing hole (42). The through hole (41) is formed through the sidewall of the lock shell (40) and corresponds to and align with the slot (24) in the external sleeve (20). The passing hole (42) is formed through the sidewall of the lock shell (40) and corresponds to and align with the passing hole (25) in the external sleeve (20).
The lock cylinder (50) is mounted in the lock shell (40) and has a stationary segment (51), a spring (81), a rotatable segment (52) and a locking pin assembly (53).
The stationary segment (51) is tubular, is mounted in the lock shell (40) near the front end and has a front end, a rear end, a sidewall, a through hole (514), a passing hole (515) and an optional protrusion (513). The front end may be a close end (511). The rear end may be an opening end (512). The through hole (514) is formed through the sidewall of the stationary segment (51) and corresponds to and align with the through hole (41) in the lock shell (40). The passing hole (515) is formed through the sidewall of the stationary segment (51) and corresponds to and align with the passing hole (42) in the lock shell (40). The protrusion (513) is formed on the close end (511) of the stationary segment (51). The spring (81) is mounted in the internal sleeve (30), is mounted between the front end of the stationary segment (51) of the lock cylinder (50) and the internal sleeve (30) and may be mounted around the protrusion (513) on the stationary segment (51).
The rotatable segment (52) is mounted in the lock shell (40) near the rear end and has a front end, a rear end, an active turning protrusion (521) and an optional central post (522). The active turning protrusion (521) is semicircular, is formed on the front end of the rotatable segment (52) and extends into the stationary segment (51). The central post (522) is formed on the rear end of the rotatable segment (52).
The locking pin assembly (53) is mounted in the stationary and rotatable segments (51, 52). When the locking pin assembly (53) is locked, the rotatable segment (52) is restricted to be not rotatable with respect to the stationary segment (51). When the locking pin assembly (53) is unlocked, the rotatable segment (52) is allowed to be rotatable with respect to the stationary segment (51).
The lock actuating assembly (60) is mounted in the stationary segment (51) of the lock cylinder (50) and has a guide rod (61), an actuating rod (63), a spring (64) and an optional bearing (62).
The guide rod (61) is mounted in the stationary segment (51) of the lock cylinder (50) and has an outer end, an inner end, an optional head (611) and an optional receiving recess (612). The outer end extends through the through holes (514, 41) of the stationary segment (51) and the lock cylinder (40) and through the gap (36) of the internal sleeve (30) and extends into the slot (24) in the external sleeve (20). The head (611) is formed on the inner end of the guide rod (61). The receiving recess (612) is formed in the inner end of the guide rod (61).
The actuating rod (63) is mounted movably in the stationary segment (51) of the lock cylinder (50) and has an outer end, an inner end, an inactive turning protrusion (631) and an optional receiving recess (632). The outer end extends through the passing holes (515, 42) of the stationary segment (51) and the lock cylinder (40), selectively extends through the gap (36) of the internal sleeve (30) and selectively extends into the passing hole (25) of the external sleeve (20). The inactive turning protrusion (631) is formed on the inner end of the actuating rod (63) and abuts the active turning protrusion (521) of the rotatable segment (52) of the lock cylinder (50). The receiving recess (632) is formed in the inner end of the actuating rod (63) and corresponds to the receiving recess (612) of the guide rod (61).
The spring (64) is mounted between the guide rod (61) and the actuating rod (63) and is attached respectively to the inner ends of the guide rod (61) and the actuating rod (63). The spring (64) may be mounted respectively in the receiving recesses (612, 632) of the guide rod (61) and the actuating rod (63).
The bearing (62) is mounted in the through hole (41) of the lock shell (40) and is mounted around the guide rod (61) to abut the head (611) of the guide rod (61) to keep the guide rod (61) from escaping the through hole (41) of the lock shell (40).
With reference to
With reference to
With reference to FIGS. 2 and 6–11, the cable lock as described is pushed to lock into a keyhole (91) in a desired appliance (90). The keyhole (91) of the desired appliance (90) is a step hole to alternatively allow the stationary protruding rod (23) or the movable protruding rods (23) to pass through. The stationary protruding rod (23) is inserted into the keyhole (91). When the movable protruding rods (33) contact with the appliance (90), the internal sleeve (30) is pushed to extend out of the internal sleeve (20). When the internal sleeve (30) can not be pushed backward any more, the inclined distal ends of the movable protruding rods (33) slides along the appliance (90) to self rotate the internal sleeve (30) and the external sleeve (20) is rotated simultaneously. Therefore, the movable protruding rods (33) are allowed to extend into the keyhole (91) and the cable lock engages the keyhole (91). After the engagement, the lock shell (40) and the lock cylinder (50) is pushed into the external sleeve (20) to mount the lock shell (40) and the lock cylinder (50) securely in the external sleeve (20). Then the cable lock is locked in the keyhole (91).
The advantage of the present invention as discussed below. With the protruding rods (23, 33) on the external and internal sleeves (20, 30) and the simultaneously rotating between the external and internal sleeve (20, 30), the cable lock can be self locking into the keyhole (91) without the proper key. Being self locking for the cable lock is more convenient.
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 features of the invention, the disclosure is illustrative only. Changes may be made in the details, 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.
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