The present invention relates to a magnetic coding free pin type lock cylinder structure.
It is a common way to lock the facility door with a lock and a manual operating mechanism in the industrial fields (such as electric power, petrochemical, transportation, metallurgy, coal and etc.), which is an indispensable safety measure to prevent the accident risk. Currently, ordinary lacks easily bought on the market are mainly used. Majority of these locks have a lock cylinder with a “marbles-spring” or “blade” structure, which leads to great defects in industrial applications mainly in terms of reliability: a. lock cylinder components are susceptible to rust due to the imperfect waterproof structure, especially in the maritime climate, acid rain climate or an environment with an electrochemical reaction; b. the dust can easily enter into the lock cylinder by the lock hole in a severe dust environment, which leads to failure to unlock the door, because there is no dustproof structure for the lock hole. To solve this problem, a new lock structure is developed. For example, as shown in
According to the above shortcomings and deficiencies of the prior art, the object of the present invention is to provide a magnetic coding free pin type lock cylinder structure, with good security, high reliability, easy digital management, simple structure and manufacturing process, and low production cost.
The technical solution of the present invention is provided as follows: the present invention includes a lock cylinder housing, a lock knob rotationally disposed within the lock cylinder housing, a lock cylinder front end cover and a lock cylinder rear end cover respectively located at two ends of the lock cylinder housing. At least one pin vertically moving groove and at least one pin horizontally rotary groove are provided on the inner wall of the lock cylinder housing. An unlocking hole for the magnetic coding key is provided axially at the end of the lock knob, opposite to the lock cylinder front end cover. A plurality of pin vertical sliding grooves is provided on the outer wall of the lock knob and a pin is provided in the at least one of the plurality of pin vertical sliding grooves. The free pin is a big pin or/and a small pin.
Preferably, pin moving cavities are formed by the pin vertical sliding grooves and the corresponding pin vertically moving grooves . Each pin moving cavity intersects with the pin horizontally rotary groove.
Preferably, the depth of the pin vertically moving grooves is the same as the depth of the pin horizontally rotary groove and the sum of the depth of the pin vertically moving grooves and the depth of the pin vertical sliding grooves is not less than the dimension of the big pins, to ensure that the big pins are freely movable. The depth of the pin vertically moving grooves and the depth of the pin horizontally rotary grooves are less than the dimension of the small pins and the depth of the pin vertical sliding grooves is more than the dimension of the small pins. When the lock cylinder is in a locking state, at least one big pin is located within the pin moving cavities. Separate from the pin horizontally rotary grooves, or at least one small pin is not entirely located within the pin vertical sliding grooves. When the lock cylinder is in an unlocking state, the big pin, is located within the pin moving cavities, intersecting with the pin horizontally rotary groove and the small pin is entirely located within the pin vertical sliding groove&
Preferably, a dustproof device is provided within the unlocking hole. The dustproof device includes a spring and a dustproof end cover. An end of the spring is located at the bottom of the unlocking hole and connected to the lock knob. The other end of the spring is connected to the dustproof end cover. In the locking state, the dustproof end cover is pushed to the opening of the unlocking hole by the spring.
Preferably, the lock knob is located along the axis of the lock cylinder housing, and the lock cylinder front end cover and the lock cylinder rear end cover are respectively located at two ends of the lock cylinder housing and envelop the lock knob.
Preferably, an O type sealing ring and a sealing gasket are provided successively from outside to inside, along the outer circumference of the lock knob. The O type sealing ring and the sealing gasket are located between the lock cylinder front end cover and the lock cylinder housing, and in the gap between the lock cylinder rear end cover and the lock cylinder housing.
Preferably, the unlocking hole is a cylindrical hole. A groove engaged with the magnetic coding key is provided on the side wall of the opening of the unlocking hole.
Preferably, the free pins are spherical or cylindrical.
The beneficial effects of the invention are listed as follows: the invention includes a lock cylinder housing, a lock knob rotationally disposed within the lock cylinder housing, a lock cylinder front end cover and a lock cylinder rear end cover respectively located at two ends of the lock cylinder housing. At least one pin vertically moving groove and at least one pin horizontally rotary groove are provided on the inner wall of the lock cylinder housing. An unlocking hole for the magnetic coding key is provided axially at the end of the lock knob, opposite to the lock cylinder front end cover. A plurality of pin vertical sliding grooves is provided on the outer wall of the lock lamb and a pin is provided in the at least one of the plurality of pin vertical sliding grooves. The free pin is a big pin or/and a small pin. Pin moving cavities are formed by the pin vertical sliding grooves and the corresponding pin vertically moving grooves. Each pin moving cavity intersects with the pin horizontally rotary groove. When the lock cylinder is in a locking state, at least one big pin is located within the pin moving cavities, separate from the pin horizontally rotary grooves, or at least one small pin is not entirely located within the pin vertical sliding grooves. When the lock cylinder is in an unlocking state, the big pin is located within the pin moving cavities, intersecting with the pin horizontally rotary groove and the small pin is entirely located within the pin vertical sliding grooves. Wherein, the pin moving cavities with a single big pin are referred to as controlled cavities, the pin moving cavities with one or more small pins are referred to as anti-picking cavities, and the pin moving cavities with two free pins of different size are referred to as coding cavities. The quantity of the lock codes is decided by the quantity of the coding cavities. The lock code value of the lock cylinder is determined by the relative position of the big pins and the small pins in each pin moving cavity. When the lock cylinder is placed in parallel to the ground, some small pins in the coding cavities and the anti-picking cavities fall into the bottom of the pin vertically moving grooves or the pin horizontally rotary grooves. At this point, even though the big pins are located at the intersection of pin moving cavities and the pin horizontally rotary grooves, some pin moving cavities cannot enter into the unlocking state due to small pins being located within the pin vertically moving grooves or the pin horizontally rotary grooves, and thus the anti-picking problem is solved accordingly. Therefore, the invention has a good security, high reliability, simple digital management, simple structure and manufacturing process, and low production cost.
As shown in
One pin moving cavity is taken as an example, to be described in detail as follows:
Additionally, in this embodiment of the invention, the depth of the pin vertically moving grooves 114 is the same as the depth of the pin horizontally rotary groove 113 to ensure that the free pins are movable. The sum of the depth of the pin vertically moving grooves 114 and the depth of the pin vertical sliding grooves 112 is not less than the dimension of the big pins 107, to ensure that the big pins 107 are freely movable. The depth of the pin vertically moving grooves 114 and the depth of the pin horizontally rotary grooves 113 are less than the dimension of the small pins 108 and the depth of the pin vertical sliding grooves 112 is not less than the dimension of the small pins 108, to ensure that the small pins 108 would not affect the rotation of the lock knob 104 in the normal unlocking state.
To improve the waterproof and dustproof effects of the technical solution of the invention, a dustproof device is provided within the unlocking hole 116. The dustproof device includes a. spring 109 and a dustproof end cover 110. An end of the spring 109 is located at the bottom of the unlocking hole 116 and connected to the lock knob 104. The other end of the spring 109 is connected to the dustproof end cover 110. In the locking state, the dustproof end cover 110 is pushed to the opening of the unlocking hole 116 by the spring 109. In addition, an O type sealing ring 105 and a sealing gasket 106 are provided successively from outside to inside, along the outer circumference of the lock knob 104. The O type sealing ring 105 and the sealing gasket 106 are located between the lock cylinder front end cover 102 and the lock cylinder housing 101, and in the gap between the lock cylinder rear end cover 103 and the lock cylinder housing 101.
The principle of the unlocking is provided as follows: after a correct magnetic coding key 115 is inserted into the unlocking hole 116, the free pins all move to the unlocking position due to the magnetic attraction of the magnetic coding key 115. At this point, the lock knob 104 and the lock cylinder housing 101 can be relatively rotary, and thus the lock cylinder can be unlocked.
The above embodiment is only illustrative, and not intended to limit the invention. All equivalent changes and modifications according to the invention should be covered by the scope of the claims.
Number | Date | Country | Kind |
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201410107543.3 | Mar 2014 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2015/000187 | 3/19/2015 | WO | 00 |