This non-provisional application claims priority to and the benefit of, pursuant to 35 U.S.C. ยง 119(a), Chinese Patent Application No. CN202010055720.3 filed in China on Jan. 17, 2020. The disclosure of the above application is incorporated herein in its entirety by reference.
The present invention relates to the technical field of printers, and more particularly to a card-feeding device and a badge and card printer having the same.
The background description provided herein is for the purpose of generally presenting the context of the disclosure. Work of the presently named inventors, to the extent it is described in this background section, as well as aspects of the description that may not otherwise qualify as prior art at the time of filing, are neither expressly nor impliedly admitted as prior art against the present disclosure.
A badge and card printer is equipment for printing badges. In daily work and life, various photo-printed chest cards or badges that we see are printed through this equipment. When the badge and card printer prints, it is necessary to separate stacked cards and feed them individually. What plays a key role in this process is its internal card-feeding device.
A card-feeding device of the existing badge and card printer usually transports a card to cards outlet by using a friction force of rollers. Because the cards are stacked on a base of the card-feeding device, the electrostatic adsorption force between the cards is large, and the friction force of the rollers is likely to be insufficient to separate the underlying cards, resulting in failure of card-feeding. The badge and card printer often experiences downtime, which seriously affects the work efficiency.
Therefore, how to design a card-feeding device with a high card-feeding success rate is a technical problem that the industry urgently needs to solve.
In order to overcome the defects that the existing card-feeding device is prone to card-feeding failure, the present invention provides a card-feeding device and a badge and card printer having the card-feeding device. The card-feeding device uses a rotary card-feeding mechanism and a roller card-feeding mechanism to drive card-feeding, which can take into account the success rate and the card-feeding speed.
The technical solution adopted in the present invention is to design a card-feeding device, comprising: a base on which cards are stacked, a card outlet being provided at one end of the base; a rotary card-feeding mechanism which is located below the bottommost card and provided with a rotary swing arm and a push rod provided on the rotary swing arm, the push rod pushing the bottommost card towards the card outlet as the swing arm rotates; and a roller card-feeding mechanism which is installed between the rotary card-feeding mechanism and the card outlet and provided with a roller with an outer edge protruding from the top surface of the base, the bottommost card being transported to the card outlet when the roller rotates.
Preferably, the base is provided with a rotary groove for accommodating the rotation of the rotary swing arm, wherein the depth of the rotary groove changes continuously and matches a rotation trajectory of the rotary swing arm, the depth at a first extreme position on the rotary groove farthest from the card outlet is the smallest, and the depth at a second extreme position on the rotary groove closest to the card outlet is the largest;
when the push rod is rotated to the first extreme position, the push rod is raised to expose the top surface of the base; and
when the push rod is rotated to the second extreme position, the push rod sinks to be located below the top surface of the base.
Preferably, the rotary card-feeding mechanism also has a rotary table, wherein the middle of the swing arm is hinged on the rotary table, one end, which is provided with a push rod, of the rotary swing arm is a hook end, and the other end of the rotary swing arm is an adjusting end;
when the hook end rotates toward the first extreme position, the rotary groove gradually lifts the hook end upward; and
when the adjusting end rotates toward the first extreme position, the rotary groove gradually lifts the adjusting end upward, such that the hook end sinks.
Preferably, the rotary card-feeding mechanism is also provided with a worm gear fixed on the bottom of the rotary table and a worm rod meshed with the worm gear, one end of the worm rod penetrates out of the base and serves as a transmission end, and the transmission end is driven to rotate by a power mechanism.
Preferably, the transmission end is fixedly sleeved with a one-way bearing having an outer ring being connected with the power mechanism, wherein when the power mechanism rotates, the transmission end is driven to rotate by a reverse resistance of the one-way bearing.
Preferably, the roller is fixed on a rotary shaft arranged coaxially therewith, wherein one end of the rotary shaft penetrates out of the base and serves as a rotary end, and the rotary end is driven to rotate by the power mechanism.
Preferably, the rotary end is fixedly sleeved with a one-way bearing having an outer ring being connected with the power mechanism, wherein when the power mechanism rotates, the rotary end is driven to rotate by a reverse resistance of the one-way bearing.
Preferably, an outer ring of the one-way bearing is fixedly sleeved with a driven gear, the power mechanism is provided with a motor, and an output shaft of the motor is fixedly sleeved with a driving gear meshed with the driven gear.
Preferably, an outer edge of the roller is covered with an adhesive layer for increasing a friction force.
The present invention further provides a badge and card printer, which comprises the above card-feeding device.
Compared with the prior art, the present invention integrates two card-feeding methods for card feeding. The rotary card-feeding mechanism is used to separate the bottom cards and push them to the card outlet, thereby increasing a card-feeding success rate. The roller card-feeding mechanism is used to further transport the cards to the card outlet, thereby increasing the card-feeding speed.
The present invention is described in detail below with reference to the embodiments and the drawings, in which:
To make the objectives, technical solutions, and advantages of the present invention clearer, the present invention is further described in detail hereinafter with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described here are only used to explain the present invention, and are not used to limit the present invention.
As shown in
The rotary card-feeding mechanism is located below the bottommost card 3. The rotary card-feeding mechanism comprises a rotary table 6, a rotary swing arm 8 and a push rod 9. The base 1 is provided with a cavity in which the rotary table 6 is installed. The middle of the rotary swing arm 8 is hinged on the rotary table 6. The push rod 9 is provided on one end of the rotary swing arm 8, and this end serves as a hook end of the rotary swing arm 8. The other end of the rotary swing arm 8 is an adjusting end 7. A pair of lugs is provided in the middle of the swing arm 8. A supporting portion located between the pair of lugs is arranged on the rotary table 6. A hinge shaft passes through the pair of lugs and the supporting portion. The rotary swing arm 8 is in a state of a seesaw after being completely installed.
The base 1 is also provided with a rotary groove 11 for accommodating the rotation of the rotary swing arm 8. The rotary groove 11 is circular in a plan view. The depth of the rotary groove 11 continuously changes, and the depth matches a rotation trajectory of the rotary swing arm 8. In more detail, the rotary groove 11 is provided with an arc-shaped rib 110 located below the rotary swing arm 8. The height of the arc-shaped rib 110 continuously changes so that the depth of the rotary groove 11 continuously changes. The higher the height of the arc-shaped rib 110, the smaller the depth of the rotary groove 11 relative to the rotary swing arm 8; the lower the height of the arc-shaped rib 110, the greater the depth of the rotary groove 11 relative to the rotary swing arm 8. The depth of the first extreme position on the rotary groove 11 farthest from the card outlet is the smallest, that is, the height of the corresponding position on the arc-shaped rib 110 is the largest; and the depth of the second extreme position on the rotary groove 11 closest to the card outlet is the largest, that is, the height of the corresponding position on the arc-shaped rib 110 is the smallest.
As shown in
As shown in
The roller card-feeding mechanism comprises a rotating shaft 15 fixed coaxially with the roller 10. One end of the rotating shaft 15 penetrates out of the base 1 and serves as a rotating end. The rotary end is driven by a power mechanism to rotate. When the rotating shaft 15 rotates to drive the roller 10 to rotate, the roller 10 is in contact with the bottom surface of the card 3 above the roller, such that the card 3 is transported to the card outlet.
In order to make the structure compact, the rotary card-feeding mechanism and the roller card-feeding mechanism share a power mechanism. The specific structure is as follows: a first one-way bearing 4 is provided between the transmission end and the power mechanism, and an inner ring of the first one-way bearing 4 sleeves fixedly transmission end. A second one-way bearing 2 is provided between the rotary end and the power mechanism, and an inner ring of the second one-way bearing 2 fixedly sleeves the rotary end. The outer ring of each of the two one-way bearings is fixedly sleeved with a driven gear. Specifically, as shown in
Of course, in actual applications, two motors may also be used to drive the rotary card-feeding mechanism and the roller card-feeding mechanism to operate respectively, which is not limited in the present invention.
The foregoing descriptions are merely exemplary embodiments of the present disclosure, and are not intended to limit the present disclosure. Within the spirit and principles of the disclosure, any modifications, equivalent substitutions, improvements, etc., are within the protection scope of the present disclosure.
Number | Date | Country | Kind |
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202010055720.3 | Jan 2020 | CN | national |
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Number | Date | Country | |
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20210221634 A1 | Jul 2021 | US |