Automatic vending machine
10451330 ยท 2019-10-22
Assignee
Inventors
Cpc classification
F25D2317/0684
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D31/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D17/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G07F9/105
PHYSICS
F25D2331/803
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D29/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2317/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2700/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2331/805
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D2317/0682
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
E04H7/22
FIXED CONSTRUCTIONS
F25D31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25D17/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G07F9/10
PHYSICS
Abstract
Automatic vending machine which cools products for sale. Sale of products not in an appropriate temperature state is prevented. A cooling device executes a partial cooling operation for cooling the product located on a lower side of the plurality of products stored in a product storage chamber when lower space temperature T1 inside the chamber becomes higher than upper-limit value TS.sub.u of set temperature range (S1.fwdarw.S2). Then, when the lower space temperature T1 is decreased to a lower-limit value TS.sub.L of the set temperature range, the automatic vending machine executes an entire cooling operation for cooling all the plurality of products (S3.fwdarw.S4). Furthermore, when the lower space temperature T1 becomes higher than upper-limit value TS.sub.u of the set temperature range during execution of the entire cooling operation, the automatic vending machine stops the entire cooling operation to execute the partial cooling operation (S5.fwdarw.S6).
Claims
1. An automatic vending machine which vertically arrays and stores a plurality of products inside a product storage chamber and sequentially dispenses the products starting with the product located at a lowermost part, the automatic vending machine comprising: a cooling device which cools the inside of the product storage chamber; a lower part temperature measuring unit which measures a temperature of a lower space inside the product storage chamber; a control unit which controls operation of the cooling device, and is able to selectively executes partial cooling operation for cooling the product located on a lower side of the plurality of products and entire cooling operation for cooling all the plurality of products; and a back-side duct which is disposed inside the product storage chamber on a back side thereof and extends heightwise of the product storage chamber, wherein when the temperature of the lower space inside the product storage chamber becomes higher than a set temperature range, the control unit executes the partial cooling operation to maintain the temperature of the lower space inside the product storage chamber within the set temperature range, the cooling device is configured so as to cool the plurality of products by cooling air inside the product storage chamber while circulating the air through the back-side duct, a circulation direction of the air inside the product storage chamber is the same for the partial cooling operation and the entire cooling operation, the back-side duct has: an upper opening part which opens at an upper part inside the product storage chamber; a lower opening part which opens at a lower part inside the product storage chamber; and a middle opening part which opens at a middle part between the upper part and the lower part inside the product storage chamber, the cooling device includes: a cooler which is disposed in a vicinity of the lower opening part of the back-side duct and cools ambient air; a first circulating fan which is disposed in a vicinity of the cooler; and a second circulating fan which is disposed in a vicinity of the upper opening part of the back-side duct, the air inside the product storage chamber circulates in the partial cooling operation so as to flow into the back-side duct from the middle opening part, pass through the back-side duct, flow out from the lower opening part, and thereafter flow into the back-side duct from the middle opening part again, the air inside the product storage chamber circulates in the entire cooling operation so as to flow into the back-side duct from the upper opening part, pass through the back-side duct, flow out from the lower opening part, and thereafter flow into the back-side duct from the upper opening part again, and the control unit drives only the first circulating fan in the partial cooling operation and drives the first circulating fan and the second circulating fan in the entire cooling operation.
2. The automatic vending machine according to claim 1, wherein the control unit makes switching from the partial cooling operation to the entire cooling operation after the temperature of the lower space inside the product storage chamber is decreased to the set temperature range due to the execution of the partial cooling operation.
3. The automatic vending machine according to claim 1, wherein the control unit stops the entire cooling operation to execute the partial cooling operation when the temperature of the lower space inside the product storage chamber becomes higher than the set temperature range during the execution of the entire cooling operation or when there is a possibility that the temperature of the lower space inside the product storage chamber becomes higher than the set temperature range during the execution of the entire cooling operation.
4. The automatic vending machine according to claim 1, wherein the products are bottled beverages, and the set temperature range is a temperature range in which the bottled beverages are in a supercooled state.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
MODE FOR CARRYING OUT THE INVENTION
(11) Hereinafter, an embodiment of the present invention will be described with reference to the accompanying drawings.
(12)
(13) A product shooter 4 is provided below the product storage device 3 inside the product storage chamber 2. The product shooter 4 is formed of a flat plate-like member having a large number of air holes and disposed inclined so as to extend downward from a back side towards a front side of the automatic vending machine 1. Then the automatic vending machine 1 is configured so that, for example, when pressing a product selection button, not illustrated, the product storage device 3 may discharge the bottled beverage P located at the lowermost part of the corresponding product storage column and the discharged bottled beverage P is guided to a product dispense port 5 by the product shooter 4.
(14) A back-side duct 6 which vertically extends is disposed inside the product storage chamber 2 on a back side thereof. The back-side duct 6 extends from vicinity of a bottom part to vicinity of a ceiling part inside the product storage chamber 2, and has: an upper opening part 61 which opens at an upper part inside the product storage chamber 2; a lower opening part 62 which opens at a lower part inside the product storage chamber 2; and a middle opening part 63 which opens between the upper opening part 61 and the lower opening part 62. In the present embodiment, the upper opening part 61 is formed so as to be located in the vicinity of the ceiling part inside the product storage chamber 2, the lower opening part 62 is formed so to be located below the product shooter 4, and the middle opening part 63 is formed so as to be located at a middle height position of the product storage device 3.
(15) An internal heat exchanger (evaporator) 7 and an internal blower fan 8 are provided at a lower part inside the product storage chamber 2, more specifically, below the product shooter 4. The internal heat exchanger 7 is disposed in vicinity of the lower opening part 62 of the back-side duct 6. The internal blower fan 8 is a fan capable of rotating in normal and reverse directions and is disposed in vicinity of the internal heat exchanger 7. Note that the internal heat exchanger 7 is arranged at a position between the lower opening part 62 of the back-side duct 6 and the internal blower fan 8; however, the internal blower fan 8 may be arranged at a position between the lower opening part 62 of the back-side duct 6 and the internal heat exchanger 7. Moreover, the internal heat exchanger 7 and/or the internal blower fan 8 may be disposed inside the back-side duct 6.
(16) Inside a mechanical compartment 9 located on a lower side of the product storage chamber 2, a compressor 10, an external heat exchanger (a condenser or a gas cooler) 11, and an expansion mechanism (capillary tube) 12 are disposed. Note that the expansion mechanism 12 may be disposed inside the product storage chamber 2. The internal heat exchanger 7, the compressor 10, the external heat exchanger 11, and the expansion mechanism 12 are connected together with a cooling pipe 13 which circulates a refrigerant. Moreover, an external blower fan 14 which sends airflow to the external heat exchanger 11 is disposed in vicinity of the external heat exchanger 11. Then, in the present embodiment, the internal heat exchanger 7, the internal blower fan 8, the compressor 10, the external heat exchanger 11, the expansion mechanism 12, and the external blower fan 14 form a cooling device 20 which cools the inside of the product storage chamber 2.
(17) The cooling device 20 circulates the air inside the product storage chamber 2 through the back-side duct 6 by the internal blower fan 8 and also circulates the refrigerant through the compressor 10, the external heat exchanger 11, the expansion mechanism 12, and the internal heat exchanger 7. The air inside the product storage chamber 2 is heat-exchanged with the refrigerant when passing through surroundings of the internal heat exchanger 7 to be cooled. Then, the inside of the product storage chamber 2 and eventually the plurality of bottled beverages P stored in each product storage column of the product storage device 3 are cooled. Therefore, the internal heat exchanger 7 corresponds to a cooler of the present invention, and the internal blower fan 8 corresponds to a circulating fan of the present invention.
(18) Furthermore, in the present embodiment, a temperature sensor (temperature measuring unit) 21 is provided at a bottom part of the product storage device 3. The temperature sensor 21 measures a temperature of vicinity of the bottled beverage P stored at a lowermost part in the product storage device 3, in other words, a temperature of a lower space (a lower space temperature T1) inside the product storage chamber 2. Note that the temperature sensor 21 is only required to measure the lower space temperature T1 inside the product storage chamber 2, and an installation position of the temperature sensor 21 is not limited to the bottom part of the product storage device 3.
(19) Operation of the cooling device 20 is controlled by a control unit (control section) 30. In the present embodiment, the product storage chamber 2 is configured so as to function as a supercooling chamber of which the inside is capable of being cooled by the cooling device 20 to cool the bottled beverages P, stored in the product storage device 3, in a supercooled state. Thus, the control unit 30 controls the operation of the cooling device 20 so that a temperature of the inside of the product storage chamber 2 may be held at a set temperature range TS in which the bottled beverages P are cooled and held in the supercooled state. Note that the set temperature range TS is a temperature equal to or less than a freezing point of the bottled beverages P, and it is possible to set the temperature at, for example, approximately 5 C.3 C..
(20) Here, the set temperature range TS of the inside of the product storage chamber 2 of the automatic vending machine 1 in the present embodiment is lower and has a narrower range than a set temperature range TS of conventional typical automatic vending machines. In other words, an appropriate temperature range or a permitted temperature range of the bottled beverages P as products is narrower than an appropriate temperature range or a permitted temperature range of the conventional automatic vending machines. Therefore, the automatic vending machine 1 in the present embodiment requires more detailed management of the temperature of the inside of the product storage chamber 2 than the conventional typical automatic vending machines. More specifically, it is required to prevent, as much as possible, occurrence of a situation in which the bottled beverage P not in an appropriate state, here, the bottled beverage P not in the supercooled state (including the bottled beverage P in a frozen state) are sold. Thus, the control unit 30 controls the operation of the cooling device 20 in a manner described below.
(21) In the present embodiment, the control unit 30 reads in the lower space temperature T1 inside the product storage chamber 2, measured by the temperature sensor 21, at a predetermined cycle during running of the automatic vending machine 1, and drives the cooling device 20, when necessary, to selectively execute partial cooling operation or the entire cooling operation. The partial cooling operation is executed mainly for cooling the bottled beverages P stored on a lower side in each product storage column of the product storage device 3, while the entire cooling operation is executed for cooling all the bottled beverages P stored in the product storage device 3. More specifically, when the lower space temperature T1 becomes higher than the set temperature range TS, the control unit 30 executes the partial cooling operation to maintain the lower space temperature T1 within the set temperature range TS, thereby holding the bottled beverages P on the lower side in a supercooled state (appropriate state). Moreover, the control unit 30 executes the entire cooling operation while maintaining the lower space temperature T1 within the set temperature range TS to thereby put the bottled beverages P, other than the bottled beverages P located on the lower side, in a supercooled state or a state close thereto.
(22) To execute the partial cooling operation, the control unit 30 drives the internal blower fan 8 into normal rotation and also actuates the compressor 10 and the external blower fan 14. Then, as illustrated in
(23) On the other hand, to execute the entire cooling operation, the control unit 30 drives the internal blower fan 8 into reverse rotation and also actuates the compressor 10 and the external blower fan 14. Then, as illustrated in
(24)
(25) In step S1, the control unit 30 determines whether or not the lower space temperature T1 inside the product storage chamber 2 becomes higher than an upper-limit value TS.sub.u of the set temperature range TS, that is, whether or not the lower space temperature T1>the upper-limit value TS.sub.u. The process proceeds to step S2 when the lower space temperature T1 becomes higher than the upper-limit value TS.sub.u of the set temperature range TS (when the lower space temperature T1>the upper-limit value TS.sub.u), and the present flow is terminated when the lower space temperature T1 is equal to or less than the upper-limit value TS.sub.u of the set temperature range TS (when the lower space temperature T1the upper-limit value TS.sub.u).
(26) In step S2, the control unit 30 drives the cooling device 20 to execute the partial cooling operation (see
(27) In step S3, the control unit 30 determines whether or not the lower space temperature T1 inside the product storage chamber 2 is decreased to a lower-limit value TS.sub.L(<the upper-limit value TS.sub.u) of the set temperature range TS, that is, whether or not the lower space temperature T1the lower-limit value TS.sub.L. The process proceeds to step S4 when the lower space temperature T1 is decreased to the lower-limit value TS.sub.L of the set temperature range TS (the lower space temperature T1the lower-limit value TS.sub.L), and the control unit 30 continues the partial cooling operation when the lower space temperature T1 has not decreased to the lower-limit value TS.sub.L of the set temperature range TS (the lower space temperature T1>the lower-limit value TS.sub.L of the set temperature range TS).
(28) In step S4, the control unit 30 makes switching from the partial cooling operation (see
(29) In step S5, as in step S1, the control unit 30 determines whether or not the lower space temperature T1 inside the product storage chamber 2 becomes higher than the upper-limit value TS.sub.u of the set temperature range TS. When the lower space temperature T1 becomes higher than the upper-limit value TS.sub.u of the set temperature range TS (the lower space temperature T1>the upper-limit value TS.sub.u), the process proceeds to step S6 to make switching from the entire cooling operation to the partial cooling operation, and then returns to step S3. More specifically, in step S6, the control unit 30 switches the internal blower fan 8 from the reverse rotation to the normal rotation. Then, the entire cooling operation is stopped to execute the partial cooling operation again. On the other hand, when the lower space temperature T1 is equal to or less than the upper-limit value TS.sub.u of the set temperature range TS (the lower space temperature T1the upper-limit value TS.sub.u), the process proceeds to step S7.
(30) Upon switching from the partial cooling operation to the entire cooling operation, the air in an upper space inside the product storage chamber 2 moves to the lower space. Since a temperature of the air in the upper space is normally higher than a temperature of the air in the lower space, the switching from the partial cooling operation to the entire cooling operation may cause the lower space temperature T1 to increase to become higher than the upper-limit value TS.sub.u of the set temperature range. When the increase in the lower space temperature T1 becomes higher than the upper-limit value TS.sub.u of the set temperature range, there is a possibility that the bottled beverage not in a supercooled state may be sold, which is not preferable. Thus, the control unit 30 monitors the lower space temperature T1 even during the execution of the entire cooling operation, and executes the partial cooling operation again when the lower space temperature T1 inside the product storage chamber 2 becomes higher than the upper-limit value TS.sub.u of the set temperature range TS (step S5.fwdarw.S6), thereby promptly returning the increased lower space temperature T1 to within the set temperature range TS.
(31) In step S7, as in step S3, the control unit 30 determines whether or not the lower space temperature T1 inside the product storage chamber 2 is decreased to the lower-limit value TS.sub.L of the set temperature range TS, that is, the lower space temperature T1the lower-limit value TS.sub.L. When the lower space temperature T1 is decreased to the lower-limit value TS.sub.L of the set temperature range TS (the lower space temperature T1the lower-limit value TS.sub.L), the process proceeds to step S8, and when the lower space temperature T1 has not decreased to the lower-limit value TS.sub.L of the set temperature range TS (the lower space temperature T1>the lower-limit value TS.sub.L of the set temperature range TS), the process returns to step S5 (continues the entire cooling operation).
(32) In step S8, the control unit 30 stops the cooling device 20. More specifically, the control unit 30 stops the internal blower fan 8, the compressor 10, and the external blower fan 14.
(33) In the present embodiment, the control unit 30 drives the cooling device 20 to execute the partial cooling operation when the lower space temperature T1 inside the product storage chamber 2 has become higher than the upper-limit value TS.sub.u of the set temperature range TS. Then the control unit 30 executes the entire cooling operation when the lower space temperature T1 inside the product storage chamber 2 is decreased to the lower-limit value TS.sub.L of the set temperature range TS due to the execution of the partial cooling operation. Moreover, the control unit 30 stops the entire cooling operation to execute the partial cooling operation again when the lower space temperature T1 inside the product storage chamber 2 becomes higher than the upper-limit value TS.sub.u of the set temperature range TS during the execution of the entire cooling operation, and stops the cooling device 20 when the lower space temperature T1 inside the product storage chamber 2 is decreased to the lower-limit value TS.sub.L of the set temperature range TS during the execution of the entire cooling operation.
(34) Thus, the lower space temperature T1 inside the product storage chamber 2 is maintained within the range of the set temperature range TS, and the bottled beverages P stored on the lower side in each product storage column of the product storage device 3, that is, the bottled beverages P which are to be sold next time or may be sold with a high probability, are held in a supercooled state. Therefore, a situation in which the bottled beverage P not in a supercooled state is sold is prevented. Moreover, the entire cooling operation is executed in a state in which the lower space temperature T1 is maintained within the range of the set temperature range TS, and thus, it is possible to put, in a supercooled state or a state close thereto, the bottled beverages P other than the bottled beverages P located on the lower side. Thus, for example, the situation that the bottled beverage P not in a supercooled state is sold is prevented even in a case in which sales of the bottled beverages P is in an excellent condition.
(35) Moreover, in the present embodiment, the switching between the partial cooling operation and the entire cooling operation is made by reversing the rotation direction of the single internal blower fan 8. Thus, it is easy to make the switching between the partial cooling operation and the entire cooling operation, and furthermore, cost increase of the automatic vending machine 1 due to, for example, an increase in the number of components, is prevented.
(36) Next, modified examples of the embodiment described above will be described. Note that, however, modified examples are not limited to Modified Examples 1 to 4 described below.
Modified Example 1
(37) In the embodiment described above, the control unit 30 executes the entire cooling operation following the partial cooling operation, although the present invention is not limited thereto. The control unit 30 may execute the entire cooling operation independently from the partial cooling operation. For example, the control unit 30 executes the partial cooling operation when the lower space temperature T1 becomes higher than the upper-limit value TS.sub.u of the set temperature range TS, and ends the partial cooling operation (stops the cooling device 20) when the lower space temperature T1 is decreased to the lower-limit value TS.sub.L of the set temperature range TS. Furthermore, the control unit 30 executes the entire cooling operation at a given timing when the lower space temperature T1 is within the set temperature range TS. Also in this case, the control unit 30 stops the entire cooling operation to execute the partial cooling operation when the lower space temperature T1 becomes higher than the upper-limit value TS.sub.u of the set temperature range TS during the execution of the entire cooling operation. Moreover, the control unit 30 ends the entire cooling operation (ends the cooling device 20) when the lower space temperature T1 is decreased to the lower-limit value TS.sub.L of the set temperature range TS.
Modified Example 2
(38) In the embodiment described above, the control unit 30 stops the entire cooling operation to execute the partial cooling operation when the lower space temperature T1 inside the product storage chamber 2 exceeds the upper-limit value TS.sub.u of the set temperature range TS during the execution operation of the entire cooling operation, although the invention is not limited thereto. The control unit 30 may stop the entire cooling operation to execute the partial cooling operation when there is a possibility that the lower space temperature T1 inside the product storage chamber 2 exceeds the upper-limit value TS.sub.u of the set temperature range TS during the execution of the entire cooling operation. The same applies to Modified Example 1.
(39) For example, the control unit 30 is capable of monitoring an increased value (increase width) T1 of the lower space temperature T1 inside the product storage chamber 2 at a predetermined time, and when the increased value T1 is equal to or greater than a determined value dTS, determining that there is a possibility that the lower space temperature T1 inside the product storage chamber 2 exceeds the upper-limit value TS.sub.u of the set temperature range TS. In this case, the control unit 30 may execute the flowchart illustrated in
(40) In
(41) In step S16, the control unit 30 determines whether or not the increased value T1 of the lower space temperature T1 calculated in step S15 is equal to or greater than the determined value dTS. Then the process proceeds to step S17 when the increased value T1 is equal to or greater than the determined value dTS, and proceeds to step S18 when the increased value T1 is less than the determined value dTS. Here, the determined value dTS may variably be set based on outside air temperature. Note that steps S17 to S19 are same as steps S6 to S8 of
Modified Example 3
(42) In the embodiment described above, the single internal blower fan 8 is provided as a circulating fan which circulates the air inside the product storage chamber 2. However, the present invention is not limited thereto, and an additional internal blower fan 41 may be provided inside the product storage chamber 2. In this case, as illustrated in
(43) To execute the entire cooling operation in Modified Example 3, the control unit 30 drives the internal blower fan 8 to rotate in a reverse direction and, in addition, actuates the additional internal blower fan 41. More specifically, the control unit 30 drives the internal blower fan 8 into reverse rotation and also actuates the additional internal blower fan 41 in step S4 of
Modified Example 4
(44) In the embodiment described above (see
(45) Furthermore, a second temperature sensor (temperature measuring unit) 44 is provided at a ceiling part of the product storage device 3 in Modified Example 4 (see
(46) To execute the partial cooling operation in Modified Example 4, the control unit 30 actuates the lower internal blower fan 42, the compressor 10, and the external blower fan 14. Then, as illustrated in
(47) Furthermore, to execute the entire cooling operation in Modified Example 4, the control unit 30 actuates the lower internal blower fan 42, the upper internal blower fan 43, the compressor 10, and the external blower fan 14. Then, as illustrated in
(48) Then the control unit 30 runs as in a flowchart illustrated in
(49) The control unit 30 determines in step S27 whether or not the lower space temperature T1 inside the product storage chamber 2 is equal to or greater than the lower-limit value TS.sub.L of the set temperature range TS. The process proceeds to step S28 when the lower space temperature T1 is equal to or greater than the lower-limit value TS.sub.L of the set temperature range TS, and proceeds to step S29 when the lower space temperature T1 is less than the lower-limit value TS.sub.L of the set temperature range TS. Note that process of step S27 is executed for the purpose of preventing excessive cooling of the lower space inside the product storage chamber 2, and more specifically, the bottled beverages P stored on the lower side in each product storage column of the product storage device 3.
(50) In step S28, the control unit 30 determines whether or not the upper space temperature T2 inside the product storage chamber 2 is decreased to the upper-limit value TS.sub.u of the set temperature range TS. The process proceeds to step S29 when the upper space temperature T2 is decreased to the upper-limit value TS.sub.u of the set temperature range TS and proceeds to step S27 when the upper space temperature T2 exceeds the upper-limit value TS.sub.u of the set temperature range TS.
(51) The control unit 30 stops the cooling device 20 in step S29. More specifically, the control unit 30 stops the lower internal blower fan 42, the upper internal blower fan 43, the compressor 10, and the external blower fan 14.
(52) Modified Example 4 also provides the same effects as the effects provided by the embodiment described above. Furthermore, Modified Example 2 may be applied to Modified Example 4, in this case, step S25 of
(53) Hereinabove, although the embodiments of the present invention and the modified examples thereof have been described, the present invention is not limited to the above-mentioned embodiments and modified examples, and can be variously modified and changed based on the technical concept of the present invention. For example, the above-mentioned embodiments and the modified examples, are directed to automatic vending machines which sells bottled beverages in a supercooled state as products; however, the present invention is widely applicable to automatic vending machines which cool products for sale.
REFERENCE SYMBOL LIST
(54) 1 automatic vending machine 2 product storage chamber 3 product storage device 6 back-side duct 7 internal heat exchanger 8, 41 to 43 internal blower fan (circulating fan) 10 compressor 11 external heat exchanger 12 expansion mechanism 14 external blower fan 20 cooling device 21 temperature sensor (lower part temperature measuring unit) 30 control unit (control section) 44 second temperature sensor (upper part temperature measuring unit) 61 upper opening part 62 lower opening part 63 middle opening part P bottled beverage (product)