A lottery ticket issuing module
By designing a base rack, a whole promissory note warehouse and a ticket promotion mechanism in the lottery ticket vending machine, combined with photoelectric sensors and electromagnet control, the stable issuance of multiple whole promissory notes is achieved, which solves the problem of insufficient storage of whole promissory notes, reduces the replenishment frequency and improves the stability of issuance.
Patent Information
- Application Number
- CN202310770560.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-28
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2043-06-28
AI Technical Summary
The number of whole promissory notes stored in the lottery ticket vending machine is small, which leads to the problem of high replenishment frequency.
A lottery ticket issuance module is designed, including a base frame, a whole ticket warehouse and a ticket promotion agency. Multiple whole tickets are placed in the entire ticket warehouse. By pushing the component drive stop to slide, the lowest level of the entire ticket is launched, and the photoelectric sensor and electromagnet are used to control the issuance process, and combined with the belt conveyor and pallet structure, the stable issuance of multiple whole tickets is achieved.
It effectively reduces the frequency of replenishment of the entire promissory note, improves the storage volume and issuance stability of the entire promissory note, and reduces the issuance failure caused by tilt and lag.
Smart Images

Figure CN116704662B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of self-service lottery ticket vending equipment, and in particular to a module for issuing a whole book of lottery tickets. Background Art
[0002] With the development of the domestic lottery industry, the sales of scratch-off lottery tickets have grown rapidly, attracting an increasing number of lottery ticket buyers. To improve the convenience of lottery purchases and reduce labor costs, lottery ticket vending machines have also seen rapid development. In addition to selling individual tickets, lottery tickets are also sold in entire books to meet diverse purchasing needs. Therefore, automatic ticket vending machines are often equipped with a module for dispensing entire books of lottery tickets to meet these diverse sales needs.
[0003] Related technologies such as Figure 1 As shown, a full-book lottery ticket dispensing module includes a storage box 900 with multiple partitions 910 fixedly connected within. Adjacent partitions 910 form a ticket bin 920. Each bin 920 has a ticket drop-out opening at the bottom, and a door 930 is located at the bottom of each bin to seal the drop-out opening. This door 930 is controlled by a control system. During use, a staff member places a full book of tickets in each bin 920. Upon receiving a purchase order, the control system opens one of the doors 930, causing the full book of tickets to fall out of the drop-out opening, completing the sale.
[0004] Regarding the above-mentioned related technologies, the inventors found that each ticket bin can only hold one whole book of tickets. When the whole book of tickets in the ticket bin is sold, the ticket bin becomes empty and is prone to being sold out. It needs to be replenished in time to continue selling. There is a defect that the lottery ticket vending machine has a small number of whole books of tickets that can be stored, resulting in a high frequency of replenishment. Summary of the Invention
[0005] In order to alleviate the problem that the number of whole-book tickets stored in lottery ticket vending machines is small, resulting in a high replenishment frequency, the present application provides a lottery whole-book ticket issuing module.
[0006] This application provides a lottery ticket issuing module that uses the following technical solutions:
[0007] A lottery whole-book ticket dispensing module comprises a base frame, a whole-book ticket compartment and a ticket pushing mechanism, wherein the whole-book ticket compartment is connected to the base frame, wherein a plurality of whole-book tickets arranged in stacks are placed in the whole-book ticket compartment, and a ticket dispensing port is provided on the whole-book ticket compartment, and the ticket pushing mechanism comprises a block and a pushing component, wherein the block is slidably connected to the bottom of the whole-book ticket compartment, the pushing component is connected to the base frame, and the pushing component is connected to the block to drive the block to slide cyclically at the bottom of the whole-book ticket compartment, and the block is used to push the whole-book tickets located at the bottom layer out of the ticket dispensing port.
[0008] By adopting the above technical solution, multiple whole banknotes are stacked and placed in the whole banknote bin. After the ticket issuing module receives the exit instruction, the pushing component is started, driving the block to slide, so that the block can push the whole banknotes on the bottom layer out of the ticket outlet. At the same time, the other whole banknotes move down to the bottom of the whole banknote bin under the action of their own gravity. According to the received instruction, the pushing component continuously drives the block to move in a cycle, so that the whole banknotes can be pushed out repeatedly. Since multiple whole banknotes can be placed in each whole banknote bin at one time, the frequency of replenishing whole banknotes can be effectively reduced.
[0009] Preferably, a sensing mechanism is provided on the base frame, and the sensing mechanism includes a photoelectric sensor, the photoelectric sensor is connected to the base frame, the photoelectric sensor is used to detect the block, and the photoelectric sensor is electrically connected to the pushing assembly.
[0010] By adopting the above technical solution, after the pushing component drives the block to move a whole banknote out of the ticket outlet, the block can be continued to be driven to move to the position of the photoelectric sensor. After the photoelectric sensor detects the block, the pushing component is controlled to cut off power, and the ticket issuance process of the whole banknote can be completed. After receiving the ticket issuance instruction again, the pushing component can be started again to issue the next ticket.
[0011] Preferably, the sensing mechanism further includes a supporting seat and an electromagnet, the supporting seat is slidably connected to the base, the photoelectric sensor is fixedly connected to the supporting seat, the electromagnet is connected to the base, and the electromagnet is used to drive the supporting seat to slide under the action of magnetic force.
[0012] By adopting the above technical solution, after the block moves to the photoelectric sensor position and stops after completing a ticket issuing process, when the ticket issuing module receives a ticket issuing instruction again, the electromagnet starts and drives the supporting seat to move under the action of magnetic force, thereby moving the photoelectric sensor to the side of the block. At this time, after the photoelectric sensor can no longer detect the block, the photoelectric sensor controls the pushing component to start, and the next ticket issuing process can be carried out.
[0013] Preferably, a lower pressure plate is placed in the whole bill bin, and the lower pressure plate puts pressure on the whole bill in the whole bill bin.
[0014] By adopting the above technical solution, the counterweight above the whole banknote is increased by using the lower pressure plate, thereby improving the stability of a stack of whole banknotes during the bill issuance process, while ensuring that multiple whole banknotes can fall smoothly as the bills are issued by the bill issuance module.
[0015] Preferably, a belt conveyor is provided in the whole-book bill warehouse, and a ticket dropping cavity is provided between the belt conveyor and the ticket outlet. Multiple stacks of whole-book bills are placed in the whole-book bill warehouse, one stack of whole-book bills is located in the ticket dropping cavity, and the other stacks of whole-book bills are placed on the belt conveyor in sequence.
[0016] By adopting the above technical solution, one stack of whole bills is placed in the ticket dropping chamber, and the other stacks of whole bills are placed on the belt conveyor. When the ticket issuing module issues tickets, the stack of whole bills in the ticket dropping chamber is first issued one by one. When the whole bills in the ticket dropping chamber are issued, the belt conveyor is started to convey the next stack of whole bills into the ticket dropping chamber, thereby achieving the situation where the whole bills can be issued in sequence while increasing the placement capacity of the whole bill bin.
[0017] Preferably, a support frame is slidably connected in the whole bill bin, the belt conveyor is arranged on the support frame, a screw rod is threadedly connected on the side wall of the whole bill bin, and the screw rod is rotatably connected to the support frame.
[0018] By adopting the above technical solution, the support frame is slidably connected in the whole bill bin, and the staff can drive the support frame to slide by turning the screw, so that the size of the ticket dropping cavity can be adjusted, so that the ticket dropping cavity can adapt to whole bills of different specifications, reducing the possibility of the whole stack of whole bills in the ticket dropping cavity being tilted due to the ticket dropping cavity being too large, and improving the applicability of the ticket dispensing module.
[0019] Preferably, an auxiliary support mechanism is provided on the whole bill warehouse, and the auxiliary support mechanism includes a power component and two support plates, and the two support plates are respectively passed through the opposite side walls of the whole bill warehouse, and the power component is connected to the whole bill warehouse, and the two support plates are both connected to the power component, and the power component drives the two support plates to slide in the direction of approaching or moving away from each other.
[0020] By adopting the above technical solution, since the height of the belt conveyor is higher than the bottom surface of the whole bill bin, if a stack of whole bills on the belt conveyor falls directly into the ticket dropping cavity, it is easy to cause the whole stack of whole bills to tilt. By utilizing the two pallets, when a stack of whole bills on the belt conveyor is transported to the ticket dropping cavity, it will first be pushed onto the two pallets, and then the power component is started to synchronously pull the two pallets out of the whole bill bin, so that the whole bills on the two pallets can fall directly into the ticket dropping cavity, reducing the possibility of the whole bills tilting.
[0021] Preferably, the power assembly includes a second motor, a bidirectional screw and two sliders, the second motor is fixedly connected to the whole bill warehouse, the bidirectional screw is rotationally connected to the whole bill warehouse, the second motor is transmission-connected to the bidirectional screw, the two sliders are both threadedly connected to the bidirectional screw, the two sliders are connected to the bidirectional screw in opposite directions of thread rotation, the two sliders are arranged in a one-to-one correspondence with the two support plates, the sliders are fixedly connected to the corresponding support plates, and a downward pressure mechanism is provided on the whole bill warehouse, the downward pressure mechanism includes a winding roller and a pull rope, the winding roller is coaxially fixedly connected to the bidirectional screw, the pull rope is wound on the winding roller, and the pull rope is fixedly connected to the downward pressure plate.
[0022] By adopting the above technical solution, the second motor is used to drive the two-way screw to rotate, which can drive the two sliders to move, and can drive the two supporting plates to be inserted into the whole bill storage bin, so that the two supporting plates support a stack of whole bills. Then the second motor drives the two-way screw to reverse, which can drive the two supporting plates to slide outward synchronously, so that the whole bills on the two supporting plates can fall directly into the bill dropping cavity, reducing the possibility of the whole bills tilting; at the same time, the winding roller and the two-way screw are coaxially fixedly connected, and the two-way screw will synchronously drive the winding roller to rotate when driving the two supporting plates to insert, so that the winding roller can synchronously pull the lower pressure plate up, so that the next stack of whole bills can smoothly enter the bill dropping cavity. When the two-way screw rotates in the opposite direction to pull out the two supporting plates, it can also drive the winding roller to reverse and lower the pull rope, so that the lower pressure plate can press on the new stack of whole bills.
[0023] Preferably, a vibration motor is provided inside the lower pressing plate.
[0024] By adopting the above technical solution, after the leveled tickets on the bottom layer are issued, when the whole banknotes of the same stack are stuck in the whole banknote bin and cannot fall down, the vibration motor can be started, and the vibration of the vibration motor can be used to drive the whole banknotes to vibrate, so that the whole banknotes can fall to the bottom of the whole banknote bin, reducing the possibility of the whole banknotes being stuck in the whole banknote bin and causing ticket issuance failure.
[0025] Preferably, a push plate is fixedly connected to the conveyor belt of the belt conveyor, and the push plate is slidably connected to the frame of the belt conveyor. The push plate is located near the end of the belt conveyor away from the ticket outlet; a distance sensor is provided on the push plate, and the distance sensor detects the distance between the push plate and the side wall of the entire ticket bin away from the ticket outlet.
[0026] By adopting the above technical solution, a push plate is used to push multiple stacks of whole bills to move synchronously, reducing the possibility of whole bills in the same stack being plugged into each other due to different movement speeds of whole bills in the same stack, ensuring the smooth fall of each whole bill, and at the same time using a distance sensor to detect the moving distance of the push plate. When the distance sensor reaches the preset detection distance, it can promptly remind the staff to make up the ticket.
[0027] In summary, this application has at least the following beneficial technical effects:
[0028] 1. By placing multiple banknotes in the banknote compartment, the push component drives the block to slide after the ticket dispensing module receives the exit command, causing the block to push the banknotes on the bottom layer out of the ticket outlet. At the same time, the other banknotes move down to the bottom of the banknote compartment under their own gravity. According to the received command, the push component continuously drives the block to move cyclically, pushing the banknotes out repeatedly. Since each banknote compartment can hold multiple banknotes at a time, the frequency of banknote replacement can be effectively reduced.
[0029] 2. By installing a belt conveyor in the whole-book ticket bin, staff can place one stack of whole-book tickets in the ticket drop chamber and other stacks of whole-book tickets on the belt conveyor. When the ticket dispensing module dispenses tickets, the first stack of whole-book tickets in the ticket drop chamber is dispensed one by one. When the whole-book tickets in the ticket drop chamber are dispensed, the belt conveyor starts and transports the next stack of whole-book tickets to the ticket drop chamber. This allows whole-book tickets to be dispensed sequentially while increasing the storage capacity of the whole-book ticket bin.
[0030] 3. By arranging two pallets on the whole bill bin, and utilizing the two pallet settings, when a stack of whole bills on the belt conveyor is transported to the bill drop chamber, they will first be pushed onto the two pallets, and then the power component will be started to synchronously pull the two pallets out of the whole bill bin, so that the whole bills on the two pallets can fall directly into the bill drop chamber, reducing the possibility of the whole bills tilting. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] Figure 1 It is the background technology figure of this application;
[0032] Figure 2 This is a schematic diagram of the overall structure of Example 1 of the present application;
[0033] Figure 3 This is a schematic structural diagram of the pushing assembly in Example 1 of the present application;
[0034] Figure 4 is a structural diagram of the sensing mechanism in Example 1 of the present application;
[0035] Figure 5 This is a schematic diagram of the overall structure of Example 2 of the present application;
[0036] Figure 6 This is a schematic cross-sectional view of the entire ticket compartment in Example 2 of the present application;
[0037] Figure 7 Schematic diagram of the structure of the auxiliary support mechanism in Example 2 of the present application;
[0038] Figure 8 This is a schematic diagram of the structure of the two support plates supporting the leveled bills in Example 2 of the present application;
[0039] Figure 9 It is a structural diagram of the vibration motor in Example 2 of the present application.
[0040] Reference numerals: 100, base frame; 200, whole ticket compartment; 210, ticket outlet; 220, lower pressure plate; 230, vibration motor; 300, ticket pushing mechanism; 310, pushing assembly; 311, first motor; 312, pulley; 313, belt; 320, stopper; 400, sensing mechanism; 410, supporting seat; 420, photoelectric sensor; 430, electromagnet; 500, belt conveyor; 510 , ticket dropping chamber; 520, support frame; 530, screw; 600, auxiliary support mechanism; 610, support plate; 620, power assembly; 621, second motor; 622, bidirectional screw; 623, slider; 700, pressing mechanism; 710, winding roller; 720, pull rope; 800, push plate; 810, distance sensor; 900, placement box; 910, partition; 920, ticket bin; 930, door opening and closing. DETAILED DESCRIPTION
[0041] The following is combined with Figure 2-9 This application is described in further detail.
[0042] The embodiment of the present application discloses a module for issuing a whole book of lottery tickets.
[0043] Example 1
[0044] Reference Figure 2 and Figure 3 A lottery ticket dispensing module includes a base frame 100, to which a ticket bin 200 is fixedly connected. The ticket bin 200 is a hollow rectangular structure with a ticket outlet 210 at one end. The ticket outlet 210 is located near the bottom of the ticket bin 200. The ticket bin 200 is used to hold multiple flattened tickets, which are stacked from bottom to top. A lower pressure plate 220 is placed within the ticket bin 200 and fits within the ticket bin 200. A ticket pusher 300 is mounted on the base frame 100 and is used to push the tickets in the ticket bin 200 out of the ticket outlet 210 one by one.
[0045] Reference Figure 2 and Figure 3 The ticket pushing mechanism 300 includes a pushing assembly 310, which includes a first motor 311. The first motor 311 is fixedly connected to the base frame 100. The base frame 100 is rotatably connected to two pulleys 312. The two pulleys 312 are respectively located near the ends of the base frame 100 in the longitudinal direction. The first motor 311 is coaxially fixedly connected to one of the pulleys 312. A belt 313 is sleeved on the outer side of the two pulleys 312. A stopper 320 is fixedly connected to the belt 313. The stopper 320 rotates with the rotation of the belt 313. A clearance slot is provided at the bottom of the full-book ticket compartment 200. The stopper 320 can pass through the clearance slot and extend into the flattened ticket compartment 920. The height of the stopper 320 extending into the full-book ticket compartment 200 is less than the thickness of a flattened ticket.
[0046] Reference Figure 3 and Figure 4 The base 100 is mounted with a sensing mechanism 400. The sensing mechanism 400 includes a support base 410 slidably connected to the base 100. A photoelectric sensor 420 is fixedly connected to the support base 410. The photoelectric sensor 420 is used to detect the stopper 320 and is electrically connected to the first motor 311. An electromagnet 430 is fixedly connected to the base 100 and connected to the support base 410. The electromagnet 430 drives the support base 410 to reciprocate under the action of a magnetic force.
[0047] Reference Figure 3 and Figure 4After the ticket dispensing module receives the ticket dispensing instruction, the first motor 311 is started, the first motor 311 drives the pulley 312 to rotate, the rotation of the pulley 312 drives the belt 313 to rotate, and then drives the stopper 320 to move, so that the stopper 320 pushes the entire ticket box at the bottom layer to move toward the ticket dispensing port 210 until the entire ticket is pushed out of the ticket dispensing port 210, and then the belt 313 continues to run to drive the stopper 320 to continue to move. When the stopper 320 moves to the position of the photoelectric sensor 420, the photoelectric sensor 420 senses the stopper 320, and then stops the control system. The first motor 311 is powered, causing it to stop rotating, completing the output of one banknote. The remaining banknotes are then pushed down to the bottom of the banknote compartment 200 by the pressure of the lower pressure plate 220. Upon receiving another output command, the electromagnet 430 is powered, magnetically driving the support 410 to move. Once the photoelectric sensor 420 no longer detects the stopper 320, power is restored to the first motor 311, which then drives the pulley 312 to rotate. This in turn drives the stopper 320 to continue conveying the bottom banknotes toward the ticket outlet 210. This cycle repeats according to the invoice command. Since each banknote compartment 200 can hold multiple banknotes at once, the frequency of re-ordering banknotes can be effectively reduced.
[0048] The implementation principle of a whole-book lottery ticket issuing module in an embodiment of the present application is as follows: by stacking multiple whole-book tickets in a whole-book ticket bin 200 in a vertical direction, after the ticket issuing module receives a ticket issuing instruction, the first motor 311 is started, and the first motor 311 drives the stopper 320 to move through the belt 313, so that the stopper 320 can push the whole-book tickets located at the bottom layer out from the ticket outlet 210, thereby issuing the whole-book tickets, and then the other whole-book tickets will move down to the bottom of the whole-book ticket bin 200 under the pressure of the lower pressure plate 220, and then continue to control the rotation of the stopper 320 to enable the whole-book tickets in the whole-book ticket bin 200 to be issued one by one; since each whole-book ticket bin 200 can hold multiple whole-book tickets at a time, the frequency of replenishing whole-book tickets can be effectively reduced.
[0049] Example 2
[0050] Reference Figure 5 、 Figure 6 and Figure 7This embodiment differs from Example 1 in that, to further increase the capacity of whole banknotes within the banknote bin 200, a belt conveyor 500 is installed within the banknote bin 200. The belt conveyor 500 is located near the bottom of the banknote bin 200 and runs along the length of the banknote bin 200. A cavity, designated as the banknote drop cavity 510, is reserved between the belt conveyor 500 and the end of the banknote bin 200 where the banknote outlet 210 is located. A pressing mechanism 700 is installed on the leveling banknote bin 920 to drive the pressing plate 220 to press down on a stack of whole banknotes near the banknote outlet 210. When in use, the staff can put multiple stacks of whole bills into the whole bill bin 200 at the same time to increase the placement capacity of the whole bills in the whole bill bin 200. One stack of whole bills is directly placed at the bottom of the whole bill bin 200, located in the ticket drop cavity 510, and the other stacks of whole bills are placed on the belt conveyor 500 and arranged side by side along the length direction of the belt conveyor 500. After the ticket dispensing module receives the ticket dispensing instruction, it first pushes the stack of whole bills placed on the bottom of the whole bill bin 200 through the stopper 320. A stack of whole banknotes is issued one by one. When all the whole banknotes are issued, the pressing mechanism 700 drives the pressing plate 220 to move upward, and then starts the belt conveyor 500, so that the belt conveyor 500 can drive the next stack of leveled banknotes to fall into the banknote dropping chamber 510, and then the next stack of whole banknotes can be issued in sequence. The belt conveyor 500 drives multiple stacks of whole banknotes to enter the banknote dropping chamber 510 in sequence, so that the whole banknotes can be issued in sequence while increasing the placement capacity of the whole banknote bin 200.
[0051] Reference Figure 6 and Figure 7 Due to the height difference between the belt conveyor 500 and the bottom surface of the whole-book bill bin 200, when a stack of whole-book bills on the belt conveyor 500 falls from the belt conveyor 500 into the bill dropping cavity 510, the stack of whole-book bills may easily fall into the bill dropping cavity 510 at an angle, affecting the output of the whole-book bills. For this reason, an auxiliary support mechanism 600 is installed on the whole-book bill bin 200.
[0052] The auxiliary support mechanism 600 includes support plates 610 that are installed on both side walls of the full-book ticket bin 200 in the longitudinal direction. Both support plates 610 are located in the ticket drop chamber 510 and are flush with the upper surface of the belt conveyor 500. Both support plates 610 are slidably connected to the full-book ticket bin 200. A power assembly 620 is installed on the full-book ticket bin 200.
[0053] The power assembly 620 includes a second motor 621 fixedly connected to the entire ticket bin 200. The main shaft of the second motor 621 is coaxially fixedly connected to a bidirectional screw 622. The bidirectional screw 622 is rotatably connected to the entire ticket bin 200. Two sliders 623 are threadedly connected to the bidirectional screw 622. The two sliders 623 are connected to the bidirectional screw 622 in opposite directions of thread rotation. The two sliders 623 are arranged in a one-to-one correspondence with the two support plates 610, and the sliders 623 are fixedly connected to their corresponding support plates 610.
[0054] Reference Figure 7 and Figure 8 The pressing mechanism 700 includes two winding rollers 710 coaxially sleeved on the outside of the bidirectional screw 622. The two winding rollers 710 are fixedly connected to the bidirectional screw 622. A pull rope 720 is wound around each winding roller 710, and the pull rope 720 is fixedly connected to the lower pressing plate 220. After a stack of whole bills is completely pushed out of the bill drop chamber 510, the lower pressing plate 220 falls to the bottom of the whole bill bin 200, and then the second motor 621 is started. The second motor 621 drives the bidirectional screw 622 to rotate. The rotation of the bidirectional screw 622 drives the two sliders 623 threadedly connected thereto to slide in a direction approaching each other, so that the two supporting plates 610 are inserted into the whole bill bin 200. At the same time, the winding rollers 710 can rotate synchronously with the bidirectional screw 622, and then can wind the pull rope 720, so that the pull rope 720 can synchronously pull the lower pressing plate 220 upward. Then, the belt conveyor 500 is started. When the belt conveyor 500 pushes the next stack of whole bills into the bill drop chamber 510, it will first move to the two supporting plates 610, and then the second motor 621 drives the bidirectional screw 622 to reverse, so that the two supporting plates 610 can slide out of the whole bill warehouse 200, and then the whole bills on the two supporting plates 610 can fall directly into the bill drop chamber 510, reducing the possibility of the whole bills tilting. At the same time, the reversal of the bidirectional screw 622 can lower the pull rope 720, so that the lower pressure plate 220 can press on the new stack of whole bills.
[0055] Reference Figure 7 and Figure 9 In the process of each whole banknote falling, it is easy for the whole banknote to get stuck at the top and unable to fall. For this reason, two vibration motors 230 are fixedly connected to the interior of the lower pressure plate 220. When the block 320 cycles a process and detects that no banknote has been issued, the two vibration motors 230 are started, which can drive the lower pressure plate 220 to vibrate, and apply vibration to the whole banknote, so that the whole banknote can fall to the bottom of the whole banknote bin 200, reducing the possibility of the whole banknote being stuck in the whole banknote bin 200 and causing a banknote issuance failure.
[0056] Reference Figure 6 and Figure 7To improve the stability of the belt conveyor 500 in pushing each stack of banknotes, a push plate 800 is fixedly connected to the conveyor belt of the belt conveyor 500. The push plate 800 is vertically arranged and located near the end of the belt conveyor 500 away from the ticket outlet 210. The push plate 800 is slidably connected to the frame of the belt conveyor 500. As the multiple stacks of banknotes supported by the belt conveyor 500 move, the push plate 800 can apply a propulsive force to the stacks, ensuring that multiple banknotes in each stack move synchronously, reducing the possibility of adjacent stacks of banknotes being misaligned and affecting their drop.
[0057] Reference Figure 7 A distance sensor 810 is fixedly connected to the pushing plate 800. The distance sensor 810 is used to detect the distance between the pushing plate 800 and the side wall of the whole banknote bin 200 away from the ticket outlet 210. As the pushing plate 800 pushes the whole banknote to move, the distance between the pushing plate 800 and the side wall of the whole banknote bin 200 away from the ticket outlet 210 will become farther and farther. When the pushing plate 800 pushes the last stack of whole banknotes into the ticket drop cavity 510, the distance sensor 810 reaches the preset detection distance. At this time, it can remind the staff to make up the tickets in time.
[0058] Reference Figure 6 and Figure 7 When the distance between the belt conveyor 500 and the ticket outlet 210 is large, the stack of whole banknotes in the ticket chamber 510 is prone to tilting, affecting the normal dispensing of the whole banknotes. Setting the ticket chamber 510 to a size that is suitable for the whole banknotes can ensure stability during the dispensing of the whole banknotes, but it is difficult to accommodate whole banknotes of different sizes. To this end, a support frame 520 is slidably connected to the whole banknote bin 200. The support frame 520 slides along the length of the whole banknote bin 200, and the belt conveyor 500 is fixedly connected to the support frame 520. A screw 530 is inserted into the end of the whole banknote bin 200 away from the ticket outlet 210. The screw 530 is threadedly connected to the whole banknote bin 200 and passes through the side wall of the whole banknote bin 200 to be rotatably connected to the support frame 520. By rotating the screw 530, the staff can drive the support frame 520 to move, thereby driving the belt conveyor 500 to move, and then adjust the distance between the belt conveyor 500 and the ticket outlet 210, so as to adapt to whole bills of different sizes and specifications, thereby improving the applicability of the ticket issuing module.
[0059] The implementation principle of a lottery whole-book ticket issuing module in an embodiment of the present application is as follows: by setting a belt conveyor 500 in the whole-book ticket bin 200, when in use, the staff can put multiple stacks of whole-book tickets into the whole-book ticket bin 200 at the same time, thereby increasing the placement capacity of whole-book tickets in the whole-book ticket bin 200, so that one stack is placed in the ticket drop chamber 510, and the other stacks of whole-book tickets are placed on the belt conveyor 500. When all the whole-book tickets in the ticket drop chamber 510 are issued, the belt conveyor 500 is started and the next stack of whole-book tickets can be conveyed into the ticket drop chamber 510, thereby achieving the situation where the whole-book tickets can be issued in sequence while increasing the placement capacity of the whole-book ticket bin 200.
[0060] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A lottery ticket issuing module, characterized by: The invention comprises a base frame (100), a whole-book ticket bin (200) and a ticket pushing mechanism (300), wherein the whole-book ticket bin (200) is connected to the base frame (100), a plurality of whole-book tickets arranged in stacks are placed in the whole-book ticket bin (200), a ticket outlet (210) is provided on the whole-book ticket bin (200), and the ticket pushing mechanism (300) comprises a stopper (320) and a pushing component (310), wherein the stopper (320) is slidably connected to the bottom of the whole-book ticket bin (200), the pushing component (310) is connected to the base frame (100), the pushing component (310) is connected to the stopper (320) to drive the stopper (320) to slide cyclically at the bottom of the whole-book ticket bin (200), and the stopper (320) is used to push the whole-book tickets located at the bottom layer to be discharged from the ticket outlet (210); A lower pressure plate (220) is placed in the whole bill bin (200), and the lower pressure plate (220) bears pressure on the whole bills in the whole bill bin (200); The whole bill bin (200) is provided with an auxiliary support mechanism (600), the auxiliary support mechanism (600) comprising a power assembly (620) and two supporting plates (610), the two supporting plates (610) being respectively arranged on two opposite side walls of the whole bill bin (200), the power assembly (620) being connected to the whole bill bin (200), the two supporting plates (610) being both connected to the power assembly (620), and the power assembly (620) driving the two supporting plates (610) to slide in a direction of approaching or moving away from each other; The power assembly (620) includes a second motor (621), a bidirectional lead screw (622) and two sliders (623), wherein the second motor (621) is fixedly connected to the entire bill storage (200), the bidirectional lead screw (622) is rotationally connected to the entire bill storage (200), the second motor (621) is transmission-connected to the bidirectional lead screw (622), and the two sliders (623) are both threadedly connected to the bidirectional lead screw (622), and the threads of the two sliders (623) connected to the bidirectional lead screw (622) have opposite rotation directions. The two sliders (623) are arranged in a one-to-one correspondence with the two support plates (610), and the sliders (623) are fixedly connected to the corresponding support plates (610). A downward pressing mechanism (700) is provided on the whole bill storage (200), and the downward pressing mechanism (700) includes a winding roller (710) and a pull rope (720). The winding roller (710) is coaxially fixedly connected to the bidirectional screw (622), and the pull rope (720) is wound on the winding roller (710). The pull rope (720) is fixedly connected to the downward pressing plate (220); The second motor (621) drives the bidirectional lead screw (622) to rotate, which drives the two sliders (623) to move, and drives the two supporting plates (610) to be inserted into the whole bill storage (200), so that the two supporting plates (610) support a stack of whole bills. Then, the second motor (621) drives the bidirectional lead screw (622) to reverse, which drives the two supporting plates (610) to slide outward synchronously, so that the whole bills on the two supporting plates (610) can directly fall into the bill drop chamber (510), reducing the possibility of the whole bills being tilted. At the same time, the winding roller (710) is used to rotate the two supporting plates (610) to move the whole bills. ) and the coaxial fixed connection of the bidirectional lead screw (622). When the bidirectional lead screw (622) drives the two supporting plates (610) to be inserted, it will synchronously drive the winding roller (710) to rotate, so that the winding roller (710) can synchronously pull the lower pressure plate (220) upward, so that the next stack of whole bills can smoothly enter the bill drop chamber (510). When the bidirectional lead screw (622) rotates in the opposite direction to pull out the two supporting plates (610), it can also drive the winding roller (710) to reverse and lower the pull rope (720), so that the lower pressure plate (220) can be pressed on the new stack of whole bills.
2. A lottery ticket issuing module according to claim 1, characterized in that: The base frame (100) is provided with a sensing mechanism (400), the sensing mechanism (400) comprising a photoelectric sensor (420), the photoelectric sensor (420) being connected to the base frame (100), the photoelectric sensor (420) being used for detecting the block (320), and the photoelectric sensor (420) being electrically connected to the pushing assembly (310).
3. A lottery ticket issuing module according to claim 2, characterized in that: The sensing mechanism (400) further comprises a supporting seat (410) and an electromagnet (430), wherein the supporting seat (410) is slidably connected to the base frame (100), the photoelectric sensor (420) is fixedly connected to the supporting seat (410), and the electromagnet (430) is connected to the base frame (100), and the electromagnet (430) is used to drive the supporting seat (410) to slide under the action of a magnetic force.
4. A lottery ticket issuing module according to claim 1, characterized in that: A belt conveyor (500) is provided in the whole-book bill warehouse (200), and a bill drop cavity (510) is provided between the belt conveyor (500) and the bill outlet (210). Multiple stacks of whole-book bills are placed in the whole-book bill warehouse (200), one stack of whole-book bills is located in the bill drop cavity (510), and the other stacks of whole-book bills are placed on the belt conveyor (500) in sequence.
5. A lottery ticket issuing module according to claim 4, characterized in that: A support frame (520) is slidably connected in the whole bill bin (200), the belt conveyor (500) is arranged on the support frame (520), and a screw rod (530) is threadedly connected to the side wall of the whole bill bin (200), and the screw rod (530) is rotatably connected to the support frame (520).
6. A lottery ticket issuing module according to claim 1, characterized in that: A vibration motor (230) is provided inside the lower pressing plate (220).
7. The lottery ticket issuing module according to claim 4, characterized in that: A push plate (800) is fixedly connected to the conveyor belt of the belt conveyor (500), and the push plate (800) is slidably connected to the frame of the belt conveyor (500). The push plate (800) is located near the end of the belt conveyor (500) away from the ticket outlet (210); a distance sensor (810) is provided on the push plate (800), and the distance sensor (810) detects the distance between the push plate (800) and the side wall of the full-book ticket bin (200) away from the ticket outlet (210).
Citation Information
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