The present invention relates to the technical field of spring hinges, and in particular to a spring hinge used in household appliances that is connected between a main body and a cabinet door for assisting in elastically closing the cabinet door.
For an existing spring hinge used in a household appliance, to ensure that a cabinet door can be satisfactorily closed and at the same time the cabinet door can be kept in an open and stationary state in the process of taking out an article from a cabinet body or placing an article in the cabinet body after the cabinet door is opened without applying an external force to the cabinet door, a spring and eccentric cam combination mechanism is generally adopted. However, for the existing spring hinge, in the process of closing the cabinet door, after the cabinet door passes through a stationary position, the cabinet door is freely closed at a relatively large acceleration under the action of a spring. An excessively high closing speed of the cabinet door easily causes injuries or overturning of food.
To sum up, an object of the present invention is to propose a gear structure spring hinge to address the technical shortcoming that a closing speed is excessively high when an existing spring hinge used in a household appliance drives a cabinet door to close.
To address the technical problem presented in the present invention, a technical solution adopted is as follows: a gear structure spring hinge, wherein the hinge includes a fixing base and a hinge arm, the fixing base being connected to a first gear through a first gear shaft, a crank shaft being provided on a gear surface of the first gear, the crank shaft being movably connected to a pull rod, a spring assembly being sleeved on the pull rod, a front end of the spring assembly being mated with and snap-fitted to the fixing base; and the hinge arm includes a connecting arm and a second gear, the second gear being provided on an end of the connecting arm, the second gear and the connecting arm forming an integral structure, the second gear being connected to the fixing base through a second gear shaft, the second gear being meshed with the first gear.
The hinge arm further includes a mounting member with a mounting hole; an anti-detaching positioning groove is provided on a side edge of the connecting arm, both corners of a rear end of the connecting arm being chamfered; and a connecting arm groove for mating and snap-fitting with the connecting arm is provided on the mounting member, an elastic jaw for mating and snap-fitting with the anti-detaching positioning groove being provided on a groove wall of the connecting arm groove.
A first leaf spring structure mated and elastically clamped with the side edge of the connecting arm is provided on a side wall of the connecting arm groove, and a second leaf spring structure mated and elastically clamped with a side of the connecting arm is provided on a bottom wall of the connecting arm groove.
The spring assembly includes a bottom stopping piece, a spring and a lock nut that are sleeved on the pull rod in sequence, two raised lugs being provided on left and right sides of the bottom stopping piece respectively, and lug grooves mated with the two lugs being provided on the fixing base.
A stopping and limiting portion mated with the fixing base for position limiting is provided on the connecting arm.
Beneficial effects of the present invention are as follows: in the present invention, a first gear is driven by a spring assembly, the first gear driving a second gear meshed therewith, the second gear synchronously driving a cabinet door connected to a connecting arm to close; compared to existing spring hinges, by means of a gear meshed driving mechanism of the present invention, the closing speed of the cabinet door is effectively reduced, and an effect of damping is achieved, such that the cabinet door is closed in a more stable manner, and a force of the spring assembly is not affected after the spring assembly drives the cabinet door to close. The present invention is particularly suitable for use on such products as ovens and microwave ovens.
A structure of the present invention is further described below in connection with the accompanying drawings and particular preferred embodiments of the present utility model.
Referring to
as shown, a damping assembly 3 is further provided on the fixing base 1. The damping assembly 3 acts on the first gear 12 and is configured to weaken a force of impact exerted on the main body of the household appliance in the process of closing the cabinet door, thus reducing noise generated during closing of the door and improving the grade of the product. At the same time, the cabinet door is self-locked after completely closed.
A particular structure is as follows: the damping assembly 3 includes a sleeve body 31, a steel ball 32, a spring and a lock nut. An outer wall of the sleeve body 31 is snap-fitted on the fixing base 1. The steel ball 32, the spring and the lock nut are mounted within the sleeve body 31 in sequence, a portion of the steel ball 32 being exposed from the sleeve body. In addition to gear teeth mated and meshed with the second gear 22, the first gear 12 further includes a deceleration groove 121 and a self-locking groove 122 configured to be mated with the steel ball 32 of the damping assembly 3. In the process of closing the cabinet door, after entering a final stage of the closing process, the first gear 12 rotates at a relatively fast speed until the deceleration groove 121 is engaged with the steel ball 32. When the steel ball 32 climbs up from the deceleration groove 121, a resistance of the first gear 12 increases, so the first gear 12 slows down, so does the cabinet door. The first gear 12 continues rotating, and after the steel ball climbs out of the deceleration groove 121, the resistance decreases, and the cabinet door is closed under the action of the elastic force of the spring assembly 15. When the cabinet door is completely closed, the self-locking groove 122 continues being rotated with the first gear 12 to a position for interfacing with the exposed portion of the steel ball 32. The steel ball 32 enters the self-locking groove 122 and comes into elastic connection with the groove, thereby achieving an effect of self-locking, increasing a resistance at the moment of opening the door, and enabling more satisfactory closing of the cabinet door.
Referring to
In order to prevent the connecting arm 21 from being loosened from the mounting member 24, a first leaf spring structure 244 mated and elastically clamped with the side edge of the connecting arm 21 is provided on a side wall of the connecting arm groove 242, and a second leaf spring structure 245 mated and elastically clamped with a side of the connecting arm 21 is provided on a bottom wall of the connecting arm groove 242.
The spring assembly 15 includes a bottom stopping piece 151, a spring 152 and a lock nut 153 that are sleeved on the pull rod 14 in sequence. Protruded lugs 1511 are respectively provided on left and right sides of the bottom stopping piece 151. Lug grooves 16 mated with the two lugs are provided on the fixing base 1.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2016/081984 | 5/13/2016 | WO | 00 |
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WO2017/193360 | 11/16/2017 | WO | A |
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International Search Report (English and Chinese) and Written Opinion issued in PCT/CN2016/081984, dated Jan. 26, 2017. |
Number | Date | Country | |
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20190169902 A1 | Jun 2019 | US |