SMART ELECTRIC AIR PUMP
20200256345 ยท 2020-08-13
Inventors
Cpc classification
F04D25/0666
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D27/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A47C27/082
HUMAN NECESSITIES
F04D25/068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/166
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/503
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A smart air pump comprises a housing defining an accommodating chamber. A main air pump is located in the accommodating chamber for inflating or discharging air from an inflatable body. The main air pump includes a cover defining an inlet and an outlet port. The cover divides the accommodating chamber into an impeller and a driving chamber. An air replenishing pump is located in the accommodating chamber. A driving switch, located in the driving chamber, connects to the main air pump. A central control unit electrically connects to the main air pump, the air replenishing pump, and the driving switch. The central control unit comprises a time control module configured to initiate periodic replenishment of air to the inflatable body. The time control module has a setting module and a counting module. An inflatable device including a smart air pump is also disclosed herein.
Claims
1. A smart air pump for an inflatable body, comprising: a housing defining an accommodating chamber; a main air pump located in said accommodating chamber, said main air pump being configured to inflate or discharge air from the inflatable body; wherein said main air pump includes a cover defining an inlet port and an outlet port, said cover dividing said accommodating chamber into an impeller chamber and a driving chamber with said impeller chamber extending between said housing and said cover and said driving chamber being in fluid communication with an outer environment of the smart air pump; an air replenishing pump located in said accommodating chamber and adjacent to said main air pump for replenishing air to the inflatable body; a driving switch located in said driving chamber, said driving switch being connected to said main air pump and configured to perform air passage switching; and a central control unit located in said driving chamber and electrically connected to said main air pump, said air replenishing pump, and said driving switch; wherein said central control unit comprises a time control module configured to initiate periodic replenishment of air to the inflatable body, said time control module having a setting module for setting a cycle time and a counting module for counting said cycle time.
2. The smart air pump according to claim 1, wherein said cycle time is greater than or equal to thirty seconds.
3. The smart air pump according to claim 2, wherein said cycle time is sixty seconds, five minutes, ten minutes, thirty minutes, or one hour.
4. The smart air pump according to claim 1, wherein after activating an inflation function of the smart air pump and deactivating an inflation function of said main air pump, said counting module begins counting for said cycle time and when said counting reaches an end of said cycle time, said air replenishing pump begins to replenish air until an air pressure inside the inflatable body is greater than or equal to a preset air pressure.
5. The smart air pump according to claim 4, wherein said counting module resets upon reaching said end of said cycle time.
6. The smart air pump according to claim 1, wherein said driving switch includes: an actuator in electrical communication with said central control unit and configured to activate in response to receiving a start signal from said center control unit; and an air passage switch in fluid communication with said outlet port and the outer environment, said air passage switch being coupled to said actuator such that said actuator moves said air passage switch to establish an inflation air passage configuration, a deflation air passage configuration, or a closed air passage configuration.
7. The smart air pump according to claim 6, wherein said actuator comprises a commutation motor.
8. The smart air pump according to claim 6, wherein said driving switch includes at least one position signal generator located in said driving chamber, said at least one position signal generator being coupled to said air passage switch and in electrical communication with said central control unit.
9. The smart air pump according to claim 8, wherein said at least one position signal generator comprises: a first signal generator configured to generate and send a position signal to said central control unit in response to said air passage switch establishing said inflation air passage configuration; a second signal generator configured to generate and send a position signal to said central control unit in response to said air passage switch establishing said deflation air passage configuration; and a third signal generator configured to generate and send a position signal to said central control unit in response to said air passage switch establishing said closed air passage configuration.
10. The smart air pump according to claim 6, wherein said air passage switch includes: an outer tube in fluid communication with the inflatable body and said outlet port; an inner tube fit within said outer tube, said inner tube being rotatable and axially movable within said outer tube and in fluid communication with the outer environment.
11. The smart air pump according to claim 10, wherein said outer tube defines: a first opening located at a first end of said outer tube for receiving said inner tube; a second opening located at a second end of said outer tube, said second opening being in fluid communication with the inflatable body; a third opening located on an outer tube wall, said third opening being adjacent to said first end of said outer tube and in fluid communication with said driving chamber; a fourth opening located on said outer tube wall, said fourth opening being axially spaced apart from said third opening and adjacent to said second end of said outer tube, said fourth opening also being in fluid communication with said driving chamber; and an inlet channel connected to said outlet port.
12. The smart air pump according to claim 11, wherein said inner tube defines: a fifth opening located at a first end of said inner tube, said fifth opening being in fluid communication with the outer environment; a sixth opening located at a second end of said inner tube and in fluid communication with the inflatable body; a seventh opening located on an inner tube wall and adjacent to said first end of said inner tube; an eighth opening located on said inner tube wall, opposite of said seventh opening and adjacent to said second end of said inner tube; and a separator located in said inner tube and dividing an interior of said inner tube into two spaces wherein said seventh opening and said eighth opening are provided on opposite sides of said separator.
13. The smart air pump according to claim 1, wherein said air replenishing pump comprises: a core defining an inlet port, an outlet port, and a core opening; at least one pivot arm including a magnet and a cup, said magnet and said cup being coupled to said at least one pivot arm, said cup being coupled to said core and covering said core opening to define an air chamber; and an electromagnetic device configured to generate magnetic flux causing said magnet and said at least one pivot arm to move, thereby causing said cup to compress and expand said air chamber.
14. The smart air pump according to claim 13, wherein, in response to said cup expanding said air chamber, said air replenishing pump draws air into said air chamber through a first one-way valve located at said inlet port; and, in response to said cup compressing said air chamber, said air replenishing pump discharges air from said air chamber through a second one-way valve located at said outlet port.
15. The smart air pump according to claim 13, wherein said at least one pivot arm comprises a pair of pivot arms located on opposing sides of said core and covering said core opening.
16. The smart air pump according to claim 13, wherein said air replenishing pump includes a base, said core being coupled to said base.
17. The smart air pump according to claim 16, wherein said base defines a first groove and a second groove, said first groove being in fluid communication with said inlet port to establish a first air passage for directing air into said air chamber via said inlet port, and said second groove being in fluid communication with said outlet port for directing air to the outer environment.
18. An inflatable device, comprising: an inflatable body; and a smart air pump located in said inflatable body, said smart air pump comprising: a housing defining an accommodating chamber; a main air pump located in said accommodating chamber, said main air pump being configured to inflate or discharge air from the inflatable body; wherein said main air pump includes a cover defining an inlet port and an outlet port, said cover dividing said accommodating chamber into an impeller chamber and a driving chamber with said impeller chamber extending between said housing and said cover and said driving chamber being in fluid communication with an outer environment of the smart air pump; an air replenishing pump located in said accommodating chamber and adjacent to said main air pump for replenishing air to the inflatable body; a driving switch located in said driving chamber, said driving switch being connected to said main air pump and configured to perform air passage switching; and a central control unit located in said driving chamber and electrically connected to said main air pump, said air replenishing pump, and said driving switch; wherein said central control unit comprises a time control module configured to initiate periodic replenishment of air to the inflatable body, said time control module having a setting module for setting a cycle time and a counting module for counting said cycle time.
19. The inflatable device according to claim 18, wherein said inflatable body includes a top sheet, a bottom sheet, and an enclosing sheet, said enclosing sheet connecting said top sheet with said bottom sheet to define an interior cavity extending between said top sheet, said bottom sheet, and said enclosing sheet.
20. The inflatable device according to claim 19, further including a plurality of reinforcing members located in said interior cavity and connected to said top sheet and said bottom sheet.
21. The inflatable device according to claim 18, wherein said inflatable body comprises an inflatable bed, an inflatable mattress, an inflatable boat, or an inflatable toy.
22. The inflatable device according to claim 18, wherein said air replenishing pump includes: a core defining an inlet port, an outlet port, and a core opening; at least one pivot arm including a magnet and a cup, said magnet and said cup being coupled to said at least one pivot arm, said cup being coupled to said core and covering said core opening to define an air chamber; and an electromagnetic device configured to generate magnetic flux causing said magnet and said at least one pivot arm to move, thereby causing said cup to compress and expand said air chamber.
23. The inflatable device according to claim 22, wherein, in response to said cup expanding said air chamber, said air replenishing pump draws air into said air chamber through a first one-way valve located at said inlet port; and, in response to said cup compressing said air chamber, said air replenishing pump discharges air from said air chamber through a second one-way valve located at said outlet port.
24. The inflatable device according to claim 22, wherein said at least one pivot arm comprises a pair of pivot arms located on opposing sides of said core and covering said core opening.
25. The inflatable device according to claim 22, wherein said air replenishing pump includes a base, said core being coupled to said base.
26. The inflatable device according to claim 25, wherein said base defines a first groove and a second groove, said first groove being in fluid communication with said inlet port to establish a first air passage for directing air into said air chamber via said inlet port, and said second groove being in fluid communication with said outlet port for directing air to the outer environment.
27. The inflatable device according to claim 18, wherein said cycle time is greater than or equal to thirty seconds.
28. The inflatable device according to claim 27, wherein said cycle time is sixty seconds, five minutes, ten minutes, thirty minutes, or one hour.
29. The inflatable device according to claim 18, wherein after activating an inflation function of the smart air pump and deactivating an inflation function of said main air pump, said counting module begins counting for said cycle time and when said counting reaches an end of said cycle time, said air replenishing pump begins to replenish air until an air pressure inside the inflatable body is greater than or equal to a preset air pressure.
30. The inflatable device according to claim 29, wherein said counting module resets upon reaching said end of said cycle time.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0037] Other features and advantages of the present disclosure will be better understood from the preferred embodiments described in detail with reference to the accompanying drawings, in which the same reference numerals are used to designate the same or similar components.
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DETAILED DESCRIPTION OF THE INVENTION
[0056] The implementation and usage of the embodiments of the present invention will be discussed in detail below. However, it should be understood that the specific embodiments of the present invention discussed herein are merely illustrative of specific ways to implement and use the present invention and do not limit the scope of protection of the present invention.
[0057]
[0058] The main air pump 101 is configured to inflate the inflatable body (for example, an inflatable mattress) or deflate the inflatable body. The air replenishing pump 20 is configured to automatically replenish air in the inflatable body. The driving switch 102 couples to the main air pump 101 and is capable of performing air passage switching. The air pressure sensor 149 is in communication with the inflatable body to detect the air pressure inside the inflatable body.
[0059] The central control unit 103 is coupled to the main air pump 101, the air replenishing pump 20, the driving switch 102, and the air pressure sensor 149. The central control unit 103 contains a program for sending a drive signal to actuate the driving switch 102 to start air passage switching, and for sending a start signal or a stop signal to the main air pump 101 to respectively activate or deactivate the main air pump 101, based on the air pressure inside the inflatable product detected by the air pressure sensor 149 in reference to a preset inflation pressure. The main air pump 101, the air replenishing pump 20, the air pressure sensor 149, and the central control unit 103 are located in an accommodating chamber of the housing 104. According to an embodiment of the present invention, the central control unit 103 can be, for example, a PCB (Printed Circuit Board) control unit.
[0060] As shown in
[0061] According to an embodiment of the present invention, the input unit 107 includes a first inflation signal input 1071, a second inflation signal input 1072, a third inflation signal input 1073, and a deflation signal input 1074. It should be appreciated that the first inflation signal input 1071, the second inflation signal input 1072, and the third inflation signal input 1073 correspond to three different preset inflation pressures. For example, in response to a user pressing any one of the above four inputs, a corresponding inflation signal or deflation signal is sent to the central control unit 103, and when a user presses the same input again, a corresponding deactivation signal is generated. According to an embodiment of the present invention, the input unit 107 can also include a deactivation signal input provided separately from the first inflation signal input 1071, the second inflation signal input 1072, the third inflation signal input 1073, and the deflation signal input 1074, wherein, in response to a user pressing any one of the above four inputs, a corresponding inflation signal or deflation signal is sent to the central control unit 103, and when a user presses the deactivation signal input, a corresponding deactivation signal is generated to the central control unit 103.
[0062] The panel 105 include a display unit. The display unit is coupled to the central control unit 103 for receiving a display signal in response to an inflation state or a deflation state, generated by the central control unit 103. In the embodiment shown in
[0063] According to an embodiment of the present invention, the central control unit 103 can further include a main control unit 1031 and an input control unit 1032. The main control unit 1031 couples to the main air pump 101, the air replenishing pump 20, the driving switch 102, and the air pressure sensor 149. The input control unit 1032 couples to the main control unit 1031 and to the input unit 107.
[0064] The structure of the main air pump 101 and the driving switch 102 will now be described with reference to
[0065] As best illustrated in
[0066] The air pressure sensor 149 is located in the driving chamber and is in communication with the inflatable body via a pressure measuring pipe. One end of the pressure measuring pipe couples to the air pressure sensor 149, and the other end of the pressure measuring pipe couples to a pressure tap provided on the housing 104. The pressure tap is in communication with the inflatable body.
[0067] The housing 104 defines a second venting hole 123, and the second venting hole 123 is in communication with the inflatable body. A one-way valve 118 is located at the second venting hole 123 for regulating airflow through the second venting hole 123.
[0068] The driving switch 102 is located inside of the driving chamber. The driving switch 102 includes an actuator 1021 and an air passage switch 1022. According to an embodiment of the present invention, the actuator 1021 comprises a commutation motor 128. The actuator 1021 couples to the central control unit 103 for receiving a start signal sent by the central control unit 103 to activate the commutation motor 128. The air passage switch 1022 couples to the outlet port 143 of the cover 108 and is in communication with the first venting hole 106 of the panel 105 and with the second venting hole 123 of the housing 104. The actuator 1021 drives the air passage switch 1022 to initiate air passage switching wherein the air passage includes an inflation air passage configuration, a deflation air passage configuration, and a closed air passage configuration.
[0069] According to an embodiment of the present invention, the driving switch 102 includes at least one position signal generating device. The position signal generating device is located in the driving chamber and is electrically connected to the central control unit 103. The position signal generating device is coupled to and triggered by the air passage switch 1022 to generate a position signal sent to the central control unit 103. As shown in
[0070] The air passage switch 1022 includes an outer tube 114 and an inner tube 115. The outer tube 114 is in fluid communication with the inflatable body via the second venting hole 123 of the housing 104. The outer tube 114 couples to the cover 108 and is in fluid communication with the outlet port 143 of the cover 108. The inner tube (also referred to as a commutation core) 115 is rotatably fitted in the outer tube 114 and is also axially movable within the outer tube 114. A first end of the inner tube 115 is in fluid communication with the first venting hole 106 on the panel 105. The actuator 1021 starts air passage switching by driving the inner tube 115 to move axially and rotate inside of the outer tube 114.
[0071] As best illustrated in
[0072] The inner tube 115 defines a fifth opening 305, a sixth opening 306, a seventh opening 307, and an eighth opening 308. The fifth opening 305 is located at a first end of the inner tube 115 and is in fluid communication with the outer environment of the inflatable body. The sixth opening 306 is located at a second end of the inner tube 115 and is in fluid communication with the second venting hole 123. The seventh opening 307 is located an inner tube wall of the inner tube 115. The eighth opening 308 is located on the inner tube wall opposite of the seventh opening 307. A separator 151 is located inside the inner tube 115 dividing an interior of the inner tube 115 into two spaces, e.g. an upper space and a lower space, that are not in communication with one another. The seventh opening 307 and the eight opening 308 are provided on opposites sides of the separator 151. In other words, the separator 151 is located between the seventh opening 307 and the eighth opening 308. According to an embodiment of the present invention, the inner tube 115 is movably and partially sleeved outside of a venting tube. The venting tube is in communication with the first venting hole 106, through the fifth opening 305. As best shown in
[0073] As best illustrated in
[0074] As also shown in
[0075] According to an embodiment of the present invention, the outer tube 114 may include a slideway, and the inner tube 115 may correspondingly include a sliding block (the slideway and the sliding block are not shown). The slideway is located on the tube wall of the outer tube 114 and has an arc shape with the center of the arc shape higher than both ends thereof. The sliding block is located on the outer surface of the inner tube 115. The sliding block is configured to be slidable within the slideway, such that the inner tube 115 is axially movable while being rotated.
[0076] When the inner tube 115 is rotated, the sliding block moves towards an first end of the slideway. At the same time, the inner tube 115 is axially moved toward the second venting hole 123. Accordingly, the third opening 303 is in alignment with the seventh opening 307, and the eighth opening 308 is in alignment with the inlet channel 300. At this time, the air passage switch 1022 establishes the inflation air passage configuration, and the inner tube 115 pushes the one-way valve 118 open, as shown in
[0077] When the inner tube 115 is rotated, the sliding block moves toward a second end of the slideway. At the same time, the inner tube 115 is axially moved toward the second venting hole 123. Accordingly, the fourth opening 304 is in alignment with the eighth opening 308, and the seventh opening 307 is in alignment with the inlet channel 300. At this time, the air passage switch 1022 establishes the deflation air passage configuration, and the inner tube 115 pushes the one-way valve 118 open, as shown in
[0078] When the sliding block is moved to an arc-shaped bottom at a center of the slideway, the inner tube 115 is axially moved away from the second venting hole 123, thereby releasing the force applied to the one-way valve 118 by the inner tube 115. Accordingly, the air passage switch 1022 establishes the closed air passage configuration, and the one-way valve 118 is closed to prevent fluid communication between the inflatable body and the outer environment of the inflatable body, as shown in
[0079] As shown in
[0080] As the inner tube 115 moves axially toward the second venting hole 123, the separator 151 of the inner tube 115 engages and pushes the valve rod 120, thereby moving the valve plate 119 axially to open the second venting hole 123. As the inner tube 115 moves axially away from the second venting hole 123, the force applied to the one-way valve 118 by the separator 151 of the inner tube 115 is released and the valve plate 119 is biased against the second venting hole 123 under a spring force of the spring 122. According to an embodiment of the present invention, the housing 104 includes a protective cover 124 located adjacent to the second end of the inner tube 115. The protective cover 124 couples to the housing 104 for protecting the one-way valve 118.
[0081] The air replenishing pump 20 couples to the central control unit 103 and defines a second inlet port (not shown) and a second outlet port 152. The second inlet port is configured to allow the air in the space outside of the smart electric air pump to enter the interior of the air replenishing pump 20. The second outlet port 152 is in communication with the inflatable body. The central control unit 103 comprises a time control module configured to initiate periodic replenishment of air to the inflatable body. The air replenishing pump 20 includes a mounting frame 147 for coupling the air replenishing pump 20 to the housing 104.
[0082] According to an embodiment of the present invention, the time control module includes a setting module for setting a cycle time and a counting module for counting the cycle time. After the air pressure inside of the inflatable product reaches the preset inflation pressure and the cycle time is set by the setting module and reached by the counting module, the central control unit 103 sends a start signal to the air replenishing pump 20 to initiate air replenishing. When the air pressure inside of the inflatable product, as detected by the air pressure sensor 149, is greater than or equal to a preset air pressure, the air replenishing pump 20 is stopped. The principle of the air replenishing operation is as follows. When the counting module counts to the preset cycle time, the central control unit 103 activates the air replenishing pump 20 to start and perform the air replenishing operation. At the same time, the air pressure sensor 149 detects the air pressure inside of the inflatable body. When the air pressure inside of the inflatable product is greater than or equal to the preset air pressure set by operating the first inflation signal input 1071, the second inflation signal input 1072, or the third inflation signal input 1073, the central control unit 103 triggers the air replenishing pump 20 to stop. Otherwise, the air replenishing pump 20 continues to perform the air replenishing operation, until the preset air pressure is reached. Accordingly, the central control unit 103 triggers the air replenishing pump 20 to stop. After the air replenishing pump 20 stops, the counting module recounts the cycle time to trigger the next cycle of the air replenishing operation. The air replenishing operation continues cycling in this manner.
[0083] As best illustrated in
[0084] The air replenishing pump 20 constructed in accordance with an embodiment of the present invention is shown in
[0085] According to an embodiment of the present invention, the air replenishing pump 20 includes a base 2017. The core 206 is mounted on the base 2017 to define the inlet port 2010 and the outlet port 2011. The base 2017 includes a first groove 2018, defining a first air passage for directing air from the outer environment of the inflatable body to the inlet port 2010 of the core 206. The base 2017 also includes a second groove 2019, defining a second air passage for directing air in the air chambers 2016 from the outlet port 2011 to the outer environment of the inflatable body. The first groove 2018 and the second groove 2019 are independent of each other. Moreover, the intake and discharge of air are staggered in time and do not occur simultaneously.
[0086] According to an embodiment of the present invention, the two cups 208 form two air chambers 2016 with the core 206. Each of the air chambers 2016 includes a first one-way valve 2012 and a second one-way valve 2013. As illustrated in
[0087] One period of compressing and one period of expanding are considered as one operating cycle. The operating frequency depends on the frequency of the alternating current in each country. For example, with an alternating current having a frequency of 50 Hz, the cup 208 compresses and expands the space of the air chamber 50 times per second, and the air replenishing pump 20 performs air replenishing operation 50 times per second. With an alternating current having a frequency of 60 Hz, the cup 208 compresses and expands the space of the air chamber 60 times per second, and the air replenishing pump 20 performs air replenishing operation 60 times per second.
[0088] The specific operation mode of the smart electric air pump 1 according to an embodiment of the present invention will be described below with reference to the flow chart in
[0089] First, after initializing the smart electric air pump 1, the operational process first switches to the closed air passage configuration, thereby allowing the entire smart air pump 1 to enter a standby state.
[0090] Then, in the event that a user presses one of the inflation signal inputs, e.g. the first inflation signal input 1071, the second inflation signal input 1072 or the third inflation signal input 1073, assuming that the initially preset inflation pressure is P, the air pressure sensor 149 determines whether current air pressure inside the inflatable body is greater than P+15, for example. In the event that the air pressure inside inflatable body is greater than P+15, the air passage switch 1022 is moved to establish the deflation air passage configuration to perform deflation. During this process, if an input for stopping deflation is received or the detected pressure is less than P, the air passage switch 1022 is moved to the closed air passage configuration. If the air pressure inside of the inflatable body is less than P+15, and it is detected whether current air pressure inside the inflatable product is less than P, the air passage switch 1022 is moved to establish the inflation air passage configuration and the main air pump 101 is activated to perform inflation. If the air pressure inside the inflatable body is not less than P, there is no need for inflation and the air passage switch 1022 is moved to establish the closed air passage configuration. During the inflation process, it is simultaneously detected whether the user gives an input for stopping the inflation and whether the inflation has timed out. When the above condition is detected, the main air pump 101 and the air replenishing pump 20 are subsequently deactivated and the air passage switch 1022 is moved to establish the closed air passage configuration, and the smart air pump 1 enters the standby state. After the inflatable product is inflated by the main air pump 101, and the air pressure inside the inflatable product reaches the pressure P, the air passage switch 1022 is moved to establish the closed air passage configuration, and then the main air pump 101 becomes deactivated. Accordingly, the counting module of the time control module of the central control unit 103 begins to count time. When the counting module counts to the cycle time preset by the setting module of the time control module (as illustrated in
[0091] In the event that a user presses the deflation signal input 1074 of the input unit 107, it is first determined whether the deflation signal input 1074 is pressed for more than one second (preset, as an example preset value). If the deflation signal input 1074 is pressed for more than one second, the air passage switch 1022 is moved to the deflation air passage configuration, and then the main air pump 101 is turned on to perform automatic deflation. If it is determined that the deflation signal input 1074 is pressed for more than four seconds (preset, again as an example preset value), a manual deflation mode can be entered, and further, it is simultaneously determined whether the manual deflation is performed for thirty seconds or whether the deflation signal input 1074 is released. When it is detected that the manual deflation is performed for thirty seconds or the deflation signal input 1074 is released, the deflation is stopped (that is, the main air pump 101 is turned off and the air passage is switched to the closed air passage configuration). During automatic deflation, if it is detected that the user gives an input for stopping the deflation or the deflation has timed out, the main air pump 101 is turned off and the air passage switch 1022 is moved to the closed air passage configuration, and then the smart air pump 1 returns to the standby state. In addition, during automatic deflation, it is detected in real time by the air pressure sensor 149 whether the air pressure inside the inflatable product is less than or equal to 0. If it is determined that the air pressure inside the inflatable body is less than or equal to 0, the deflation is directly stopped, and the entire system returns to the aforementioned standby state.
[0092] The technical content and features of the present invention have been disclosed herein. However, it should be understood that those skilled in the art can make various variations and improvements to the concepts disclosed herein under the inventive idea of the present disclosure, and all these variations and improvements belong to the scope of protection of the present invention.
[0093] The description for the above embodiments is illustrative and not restrictive, and the scope of protection of the present invention is determined by the claims.