The invention relates to an electrically controlled lock, especially to an energy-saving magnetic lock.
Electronically controlled magnetic locks are used in the escape doors, for the purpose of anti-theft and escape, in the field of entrance guard more than 30 years. Such locks play an indelible role in the security aspect. Existing electronically controlled magnetic locks normally are in a locked mode as they are powered on, and are in an unlocked mode as they are powered off in the case of fire, emergency or access control. Magnetic lock tension F=K*AT, where A is the current, T is the number of turns. In accordance to the equation, the only way to increase the tension is to increase the current, however, the greater the current is and the longer the current power-on time is, power consumption is greater. The current power-on time is very long because the electronically controlled magnetic lock normally is in a power-on state. The current consumption will be high if current is great. This does not meet energy saving and emissions reduction requirements which countries around the world strongly advocated in recent years.
The object of the present invention is to provide an energy saving magnetic lock, which is in a normal low current state, is instantly converted to a high current state when a sensor senses artificial external force is equal to or greater than the predetermined value to overcome the above disadvantages of the existing magnetic locks often at a high current.
The invention provides an energy-saving magnetic lock, the energy-saving magnetic lock comprising:
a first lock module (I) mounted to a part of a door such as a doorframe; and
a second lock module (II), mounted to the other part of the door such as a door panel which can pivot about the doorframe, for interacting with the first lock module (I),
wherein the first lock module (I) comprises:
an electromagnet;
a slot with an opening in a suction surface of the electromagnet extending to the bottom of the electromagnet;
a trip rod inserted inside the slot;
a sensor equipped at the slot end;
a member, which is arranged between the trip rod and the slot, allowing the trip rod to move toward the slot opening axially a predetermined distance when the pressing force on the head of the trip rod is less than the predetermined value;
a circuit control board to which the electromagnet and the sensor are electrically coupled respectively,
wherein the trip rod has a length equal to the distance between the slot opening and a surface of the sensor facing the slot opening,
the second lock module (II) comprises:
an iron plate installed on or in the part of the door panel by a main screw,
wherein the main screw comprises: a rod whose end passes through a counterbore of the iron plate and being secured to the part of the door; and a cap abutting against the head of the trip rod when the electromagnet and the iron plate are sucked together and wherein a first elastic member is arranged between the iron plate and the cap of the main screw, and a second elastic member is arranged between the iron plate and the part of the door.
In a preferred embodiment, the member, which is arranged between the trip rod and the slot, allowing the trip rod to move toward the slot opening axially a predetermined distance when the pressing force on the head of the trip rod is less than the predetermined value comprises: a flange projecting radially outwardly from a side wall of the trip rod; at least two adjacent channels of different diameter constituting the slot; and a spring arranged around the outer periphery of the trip rod between the flange of the trip rod and the slot.
In a preferred embodiment, the slot comprises three adjacent sections, which comprise a first channel, a second channel and a third channel, each is a concentric cylindrical channel with an incremental diameter from the suction face of the electromagnet.
In a preferred embodiment, the first channel has a diameter which is greater than the rod diameter of the trip rod but smaller than the flange diameter of the trip rod. The second channel has a diameter which is greater than the flange diameter of the trip rod. The third channel has a headless screw secured therein. The headless screw is opened a central bore through which the tail of the trip rod passes.
In a preferred embodiment, the spring is arranged between the flange of the trip rod and the headless screw secured inside the slot.
In a preferred embodiment, the sensor has a āUā-like shape and an inductive surface of the sensor faces the center of the headless screw.
In a preferred embodiment, the tail of the trip rod passes through the headless screw and arrives at the center of the sensor where the trip rod is axially movable.
In a preferred embodiment, the sensor can be a pressure sensor or an optocoupling sensor.
In a preferred embodiment, the open position of the counterbore in the suction surface of the iron plate corresponds to the open position of the slot in the suction surface of the electromagnet. The counterbore comprises three adjacent sections, which each is a concentric cylindrical channel with a progressive decreased diameter from the suction surface of the iron plate.
In a preferred embodiment, the counterbore comprises a first channel for receiving the cap of the main screw, a second channel for receiving the first elastic member, and a third channel for receiving a part of the rod of the main screw. During assembly of the second lock module (II), the tail of the main screw passes through a center hole of the first elastic member into the third channel, then passes through the third channel and a central hole of the second elastic member arranged between the iron plate and the part of the door, and finally the tail of the main screw is fixed to the part of the door.
In a preferred embodiment, the first elastic member can be a butterfly shrapnel or a spring.
In a preferred embodiment, the second elastic member can be a rubber ring.
In a preferred embodiment, the first lock module (I) further comprises a lock housing for supporting and packaging it. The lock housing is provided with a indicator which is electrically coupled to the circuit control board.
In comparison with the prior art, the solution of the present invention has the advantages as follows:
The magnetic lock of the present invention, often in energy-saving state with low current operation, is converted from the energy saving state to a high tensile state once an external invasion force occurs, also issues short-range and long-range alerts for warning the external invasion to end, saving energy and having added alarm function, strengthening security of the magnetic lock.
The energy-saving magnetic lock according to an embodiment of the present invention is shown in
The member, which is disposed between the trip rod 11 and the slot 12, allowing the trip rod 11 to move toward the slot opening axially a predetermined distance when the pressing force on the head of the trip rod is less than the predetermined value comprises: a flange 111 projecting radially outwardly from a side wall of the trip rod, at least two adjacent channels of different diameter constituting the slot 12, and a spring 14 arranged around the outer periphery of the trip rod 11 between the flange 111 of the trip rod 11 and the slot 12. The purpose of the flange 111 is to limit movement distance of the trip rod 11 so as to avoid it out of the slot 12. The axis of the slot 12 is perpendicular to the suction surface of the electromagnet 1. As shown in
The circuit control board 15, to which the sensor 13 is electrically coupled, is provided with a DC input port, an automatic switching module of current level, a voltage output port, a warning signal trigger input port, and a warning signal trigger output port. The sensor 13 is electrically coupled to the warning signal trigger input in the circuit control board 15. A voltage input port of electromagnet 1 is coupled to the voltage output port in the circuit control board 15 via a terminal 151. A signal input port of an indicator 17 is coupled to the warning signal trigger output port in the circuit control board 15. The indicator 17 can play the role of visual alarm.
Preferably, as shown in
The open position of the counterbore 22 in the suction face of the iron plate 2 corresponds to the open position of the slot 12 in the suction face of the electromagnet 1. The axis of the counterbore 22 is perpendicular to the suction surface of the iron plate 2. As shown in
Implementation of energy-saving and warning function in the lock of the present invention is described below.
When the door is open, due to the action of the spring 14, the head of the trip rod 11 projects from the opening of the slot 12 in the suction surface of the electromagnet 1, at the same time the tail of the trip rod 11 is spaced from the sensor 13 at the bottom of the slot 12, as shown in
Alternately or additionally, the lock of the present invention can be provided with an auditory alarm and/or a visual alarm of any other type.
In summary, in the present invention the sensor is triggered by displacement of the trip rod, which is caused by movement of the door panel under an external force. The circuit controller can compare a pressure value of the trip rod on the sensor detected by the sensor with a predetermined value. The magnetic lock is instantly converted from the energy-saving (small current) mode to a high tension (high current) mode and meanwhile an alarm is triggered if the pressure of the trip rod on sensor is less than or equal to the predetermined pressure. The magnetic lock is back to a normal low current state if the pressure of the trip rod on sensor is above the predetermined pressure.
Number | Date | Country | Kind |
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2012 1 0484168 | Nov 2012 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2013/075985 | 5/21/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2014/079207 | 5/30/2014 | WO | A |
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Number | Date | Country | |
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20150308170 A1 | Oct 2015 | US |