Liquid storage box, additive dispensing apparatus and identification method
12546053 ยท 2026-02-10
Assignee
- QINGDAO HAIER DRUM WASHING MACHINE CO., LTD. (Shandong, CN)
- HAIER SMART HOME CO., LTD. (Shandong, CN)
Inventors
Cpc classification
D06F2105/00
TEXTILES; PAPER
D06F34/14
TEXTILES; PAPER
D06F2103/00
TEXTILES; PAPER
International classification
Abstract
A liquid storage box, an additive dispensing apparatus and an identification method including a guiding identifier part with a set guiding trajectory is arranged on the liquid storage box; and any one or a combination of the number, position and trajectory shape of the guiding identifier part correspondingly represents types of additives. The additive dispensing apparatus has an intelligent identification assembly, including a first second wiring terminal connected to a detection circuit; elastic pushing members, including conductive elements in contact and electrical connection between the first and the second wiring terminal under normal conditions; and a rotating swing member, which may swing along the set guiding trajectory of the guiding identifier part on the liquid storage box and push the elastic pushing members at corresponding positions to disconnect the conductive elements from a wiring terminal when the liquid storage box is inserted into an insertion groove, achieving signal identification.
Claims
1. A liquid storage box, internally provided with a closed cavity for storing additives, wherein at least one guiding identifier part with a set guiding trajectory is arranged on an outer wall of the liquid storage box; and any one or a combination of a number, position and trajectory shape of the guiding identifier part arranged on the liquid storage box correspondingly represents types of the additives stored in the liquid storage box.
2. The liquid storage box according to claim 1, wherein the guiding identifier part is a guiding rib and/or a guiding groove arranged on the outer wall of the liquid storage box in an insertion and extraction direction of the liquid storage box; preferably, the guiding rib and/or the guiding groove is arranged on a top wall of the liquid storage box.
3. The liquid storage box according to claim 2, wherein the top wall of the liquid storage box sinks inward to form the guiding groove, and the guiding groove has a guiding wall that can change a direction of the guiding trajectory; and/or the top wall of the liquid storage box protrudes outward to form the guiding rib, and the guiding rib has a guiding wall that can change the direction of the guiding trajectory.
4. The liquid storage box according to claim 2, wherein the liquid storage box is provided with an identifier cover, and the guiding rib and/or the guiding groove is arranged on the identifier cover.
5. An additive dispensing apparatus, provided with an insertion groove for installing the liquid storage box according to claim 1, wherein an intelligent identification assembly for identifying types of additives in the liquid storage box is correspondingly arranged in the insertion groove, the intelligent identification assembly includes: a wiring terminal, including a first wiring terminal and a second wiring terminal which are connected to a detection circuit; an elastic pushing member, including a conductive element that is in contact and electrical connection between the first wiring terminal and the second wiring terminal in initial state; and a rotating swing member, which may swing along the set guiding trajectory of the guiding identifier part on the liquid storage box and push the elastic pushing member at corresponding position to disconnect the conductive element from the wiring terminal when the liquid storage box is inserted into the insertion groove, achieving signal identification.
6. The additive dispensing apparatus according to claim 5, wherein the additive dispensing apparatus includes an upper cover plate located at a top of the insertion groove, the rotating swing member includes a swing part, wherein a rotating shaft which is rotatably connected to the upper cover plate is arranged on an upper end surface of the swing part, a guiding column is arranged on a lower end surface of the swing part, and the guiding column may move along the guiding trajectory of the guiding identifier part to drive the swing part to swing; an abutting part, connected to the swing part at a set included angle, deflecting with the swinging of the swing part, and extruding the elastic pushing member to disconnect the conductive element from the wiring terminal.
7. The additive dispensing apparatus according to claim 5, wherein the elastic pushing member includes: a barrel shell, fixed to the upper cover plate; a sliding push rod, with one end located outside the barrel shell and abutting against the abutting part, and the other end extending into the barrel shell to abut an end of the conductive element; and a conductive element, movably arranged in the barrel shell, with two ends being in contact and electrical connection with the first wiring terminal and the second wiring terminal respectively; the rotating swing member swings to drive the abutting part to deflect and abut against the sliding push rod, and the sliding push rod pushes the conductive element to move, so as to disconnect at least one end of the conductive element from its corresponding wiring terminal, achieving signal identification.
8. The additive dispensing apparatus according to claim 7, wherein the intelligent identification assembly is fixed to the upper cover plate through an installation seat, the installation seat is internally provided with an accommodating cavity, and the elastic pushing member is installed in the accommodating cavity.
9. An intelligent identification assembly according to claim 5 includes a contact switch including a wiring terminal and a conductive spring piece which are correspondingly arranged and may be in contact or disconnected from each other, and the conductive spring piece and the wiring terminal being in a disconnected state in an initial state; and a swing triggering member, which is arranged on one side of the contact switch close to the conductive spring piece in a swinging mode and may push the conductive spring piece to be in contact conduction with the wiring terminal when the swing triggering member swings under an external force.
10. The intelligent identification assembly according to claim 9, wherein the intelligent identification assembly further includes an installation shell, and the installation shell includes: an upper shell body, the contact switch being arranged in the upper shell body; and a lower cover plate, and the swing triggering member being installed below the lower cover plate in an up-down swinging mode; the swing triggering member includes a swinging rod with one end rotatably connected below the lower cover plate, and an other end can push the conductive spring piece to move upward to be in contact connection with the wiring terminal.
11. The intelligent identification assembly according to claim 10, wherein a plurality of strip-shaped convex blocks are arranged on a bottom wall of the lower cover plate, and an interval space that accommodates the swinging rod is formed between two adjacent convex blocks; a first rotating shaft is arranged on each of the convex blocks, a rotating shaft hole is formed in one end of the swinging rod away from the spring piece ejection part, and the swinging rod is rotatably installed on the lower cover plate through the rotating shaft hole and the first rotating shaft.
12. The intelligent identification assembly according to claim 10, wherein the swinging rod includes a swinging rod body and a swinging rod pushing part for assisting in pushing the swinging rod to move upward, and the swinging rod pushing part is a protrusion arranged below the swinging rod body.
13. The intelligent identification assembly according to claim 12, wherein the swinging rod further includes a swinging rod limiting part for limiting a displacement of the swinging rod falling downward.
14. A sealing cover of the liquid storage box according to claim 1, wherein the sealing cover is installed at a dispensing port of the liquid storage box, and the dispensing port is closed under a normal conditions to form a closed cavity for storing additives in the liquid storage box; and an identification apparatus for identifying categories and/or remaining quantities of the additives in the liquid storage box is arranged on the sealing cover.
15. The sealing cover of the liquid storage box according to claim 14, wherein the identification apparatus includes at least two conductive contact pieces which are in contact with the additives in the liquid storage box and arranged on the sealing cover, and any one or a combination of a number and a position of the conductive contact pieces arranged on the sealing cover correspondingly represents types of the additives stored in the liquid storage box.
16. The sealing cover of the liquid storage box according to claim 15, wherein the identification apparatus further includes a conductive probe arranged on the sealing cover and extending into the closed cavity, the conductive contact piece exposed on an outer wall surface of the sealing cover is connected to the conductive probe, and the conductive contact piece is conducted with the additives in the closed cavity through the conductive probe.
17. The sealing cover of the liquid storage box according to claim 16, wherein the sealing cover includes a connecting sleeve with an outlet end located at the dispensing port of the liquid storage box and an inlet end extending into the liquid storage box, and the connecting sleeve is internally provided with a flow guide channel; and the sealing cover further includes a clamping end cap connected to the outlet end of the connecting sleeve and installed at the dispensing port in a sealing mode, and the conductive contact piece is arranged on the clamping end cap.
18. The sealing cover of the liquid storage box according to claim 15, wherein a first conductive contact piece and a second conductive contact piece which are spaced at different intervals are arranged on the sealing cover, and the interval correspondingly represents the types of the additives stored in the liquid storage box.
19. The sealing cover of the liquid storage box according to claim 11, wherein the identification apparatus further includes at least one photosensitive component arranged on the sealing cover, and any one or any combination of a number, position and transmittance of the photosensitive component correspondingly represents the types of the additives stored in the liquid storage box.
20. The sealing cover of the liquid storage box according to claim 11, wherein the identification apparatus further includes a crystal oscillator which is arranged in the sealing cover and may generate different frequencies, the crystal oscillator with different frequencies corresponds to different parameter information of the additives contained in the liquid storage box, and the parameter information at least includes category information of the additives.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Accompanying drawings, constituting a part of the present disclosure, are used for providing a further understanding of the present disclosure, schematic embodiments of the present disclosure and description thereof are used for explaining the present disclosure, and do not constitute an improper limitation on the present disclosure. Apparently, the accompanying drawings in the following description are only some embodiments, for those ordinarily skilled in the art, on the premise of no creative labor, other accompanying drawings can further be obtained from these accompanying drawings. In the figures:
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(30) Description of main components in the figures: 1, additive dispensing apparatus; 11, upper cover plate; 111, limiting block rib; 2, liquid storage box; 21, guiding identifier part; 211, guiding rib; 2111, guiding wall; 201, identifier cover; 202, one-way breather valve; 100, intelligent identification assembly; 301, detection wire; 230, PCB; 220, wiring terminal; 311, first wiring terminal; 312, second wiring terminal; 32, elastic pushing member; 321, barrel shell; 3211, limiting installation groove; 322, sliding push rod; 323, conductive spring; 33, rotating swing member; 331, swing block; 3311, rotating shaft; 3312, guiding column; 332, abutting plate; 34, installation seat; 341, extension connecting wall; 342, clamping jaw; 343, limiting convex rib; Z1, first identifier position; Z2, second identifier position; Z3, third identifier position; 100, intelligent identification assembly; 200, contact switch; 210, conductive spring piece; 300, swing triggering member; 310, swinging rod body; 320, spring piece ejection part; 330, swinging rod pushing part; 3310, inclined guiding wall; 340, swinging rod limiting part; 350, connecting lug; 3510, rotating shaft hole; 4, installation shell; 41, upper shell body; 411, connection part; 4111, threaded hole; 412, extension plate; 4121, clamping groove; 413, positioning insertion groove; 42, lower cover plate; 421, arc avoidance groove; 422, strip-shaped convex block; 423, flanging structure; 424, hole; 425, limiting groove; 426, clamping platform; 427, limiting support plate; 4271, limiting column; 428, positioning insertion plate; 429, limiting step; 5, waterproof pad; 51, flexible telescopic sleeve; 52, convex column; 2, liquid storage box; 61, concave-convex part; 201, identifier cover; 71, accommodating part; 72, integrated cover plate; 721, installation opening; 722, bolt column; 2001, sealing cover; 2011, clamping end cap; 2012, turnover clamping wall; 2013, flow guide channel; 2014, directional liquid inlet pipeline; 2015, conductive contact piece; 2016, conductive component; 2017, concave-convex part; 2018, third contact; 2019, electronic label; 101, fourth contact; 102, light blocking protrusion; 103, conductive probe; 2100, dispensing unit; 2101, external line; 2103, closed cavity; and 2104, box body.
(31) It should be noted that these accompanying drawings and textual descriptions are not intended to limit the conceptive scope of the present disclosure in any way, but to illustrate the concept of the present disclosure to those skilled in the art by referring to specific embodiments.
DETAILED DESCRIPTION
(32) In order to make objectives, technical solutions and advantages of embodiments of the present disclosure clearer, the technical solutions in the embodiments will be clearly and completely described below in conjunction with accompanying drawings in the embodiments of the present disclosure, and the following embodiments are used to illustrate the present disclosure, but not to limit the scope of the present disclosure.
(33) In the description of the present disclosure, it should be noted that the terms mounted, connected and connection should be understood in a broad sense unless otherwise specified and defined, for example, connection may be fixed connection or detachable connection or integrated connection, may be mechanical connection or electric connection, and may be direct connection or indirect connection through an intermediate medium. For those ordinarily skilled in the art, the specific meanings of the above terms in the present disclosure may be understood in specific situations.
(34) The present disclosure is further illustrated in detail below in conjunction with the embodiments.
Embodiment 1
(35) As shown in
(36) In this embodiment, as shown in
(37) In this embodiment, the guiding ribs 211 and/or the guiding grooves may be arranged on a bottom wall or top wall of the liquid storage box 2, or on other side walls of the liquid storage box 2 in contact with the insertion groove. Therefore, when the liquid storage box 2 is inserted into the insertion groove, an intelligent identification assembly 100 arranged on the insertion groove corresponding to the guiding identifier parts 21 may move along a guiding trajectory of each guiding rib 211 and/or each guiding groove, causing a position to shift, achieving signal identification, so as to achieve an objective of determining identity of the liquid storage box 2. Preferably, the guiding ribs 211 and/or the guiding grooves are arranged on the top wall of the liquid storage box 2. By arranging the guiding ribs 211 and/or the guiding grooves on the top wall of the liquid storage box 2, the intelligent identification assembly 100 correspondingly provided on the corresponding insertion groove may be installed on an integrated water circuit at a top of the insertion groove, which facilitates the wiring installation of a detection circuit, simplifies the circuit, and increases safety.
(38) More preferably, in an insertion direction of the liquid storage box 2, the guiding ribs 211 and/or the guiding grooves are arranged on a position of the top wall of the liquid storage box 2 close to a front end. The guiding ribs 211 and/or the guiding grooves are arranged on the front end of the liquid storage box 2, which can further ensure that the liquid storage box 2 can be smoothly and easily inserted into or extracted out of the insertion groove in the whole insertion and extraction process. Avoiding that the guiding ribs 211 and/or the guiding grooves and the intelligent identification assembly 100 are arranged in a middle position of the liquid storage box 2, if being set in the middle position, in the insertion and extraction process, the intelligent identification assembly 100 may interfere with the guiding ribs 211 and/or the guiding grooves, thereby affecting the smooth insertion or extraction of the liquid storage box 2 into or out of the insertion groove.
(39) Further, the top wall of the liquid storage box 2 concaves inward to form the guiding groove, and the guiding groove has a guiding wall 2111 that can change a direction of the guiding trajectory. Specifically, the top wall of the liquid storage box 2 may be arranged to have a certain thickness, the groove formed by inward sinking of the top wall of the liquid storage box 2 forms the guiding groove, a side wall of the guiding groove forms the guiding wall 2111, and a guiding column 3312 of the intelligent identification assembly 100 abuts the guiding wall 2111, and moves along the guiding trajectory of the guiding wall 2111. The guiding identifier part 21 is formed by the above groove, which is simple to form, easy to implement, and can achieve better guiding effect.
(40) Further, the liquid storage box 2 has at least two set identifier positions, the guiding identifier parts 21 are the guiding ribs 211 and/or the guiding grooves arranged at the identifier positions, and numbers and/or positions of the guiding ribs 211 and/or the guiding grooves arranged at the identifier positions of the liquid storage boxes 2 for different types of additives are different.
(41) In another implementation, as shown in
(42) In another relatively preferred implementation, the guiding identifier part 21 may also adopt a structure of both the guiding groove and the guiding rib 211.
(43) In this embodiment, a situation that the liquid storage box 2 has three identifier positions, and the guiding identifier part 21 adopts a structure of both the guiding groove and the guiding rib 211 is taken as an example for detailed description.
(44) Specifically, as shown in
(45) In one implementation, the groove structure includes a groove side wall parallel to an insertion and extraction direction of the liquid storage box 2, the first identifier position Z1 is located on a groove side wall of the groove structure, and the groove side wall of one side of the groove structure is arranged to have a certain bending angle, so as to form a first guiding wall 2111 that can change a direction of a guiding trajectory. In this implementation, the groove structure may not only provide a certain avoidance space for arranging the guiding rib 211, but also utilize its own structure to form the guiding identifier part 21.
(46) Both the second identifier position Z2 and the third identifier position Z3 are located in the groove, the guiding rib 211 may be arranged at the second identifier position Z2 or the third identifier position Z3 respectively, the guiding rib 211 includes a guiding side wall parallel to the insertion and extraction direction of the liquid storage box 2, and a side wall of one side of the guiding rib 211 is arranged to have a certain bending angle to form a second guiding wall 2111 that can change the direction of the guiding trajectory.
(47) In another implementation, the first identifier position Z1, the second identifier position Z2 and the third identifier position Z3 may all be provided in the groove, a position where the side wall of the groove is located does not constitute the identifier position. The guiding ribs 211 are arranged at the first identifier position Z1 and/or the second identifier position Z2 and/or the third identifier position Z3 to identify the types of the additives stored in the liquid storage box 2, and any one or a combination of the number and position of the guiding ribs 211 arranged on the liquid storage box 2 correspondingly represents the types of the additives stored in the liquid storage box 2. For example, it may be set that if the guiding rib 211 is arranged at the first identifier position Z1, it represents that the type of the additives stored in the liquid storage box 2 is a detergent: if the guiding rib 211 is separately arranged at the second identifier position, it represents that the type of the additives stored in the liquid storage box 2 is a softener: if the guiding rib 211 is separately arranged at the third identifier position, it represents that the type of the additives stored in the liquid storage box 2 is a disinfectant; and if the guiding ribs 211 are arranged at the second identifier position and the third identifier position at the same time, it represents that the type of the additives stored in the liquid storage box 2 is a softener.
(48) In the above solution, the groove structure provides an avoidance installation space for the guiding rib 211, a height of the guiding rib 211 is not larger than a depth of the groove structure, in this way, the guiding rib 211 may not protrude from the top wall of the liquid storage box 2, which effectively avoids the problem of mismatched installation between the liquid storage box 2 and the insertion groove due to the interference of the guiding rib 211.
(49) In the above implementation, the position and number of the guiding rib 211 arranged on the liquid storage box 2 are identified by the intelligent identification assembly 100 in the insertion groove, so as to infer the type of the additives stored in the liquid storage box 2. The identification method is intelligent and efficient, the structural shape of the liquid storage box 2 is used to identify the type of the additives stored therein, without the need for other identification structures, reducing the cost and simplifying the structure of the liquid storage box 2 at the same time.
(50) Further, in another relatively preferred implementation, as shown in
(51) Further, the identifier cover 201 may be an independent component arranged on the top wall of the liquid storage box 2. Preferably, in this embodiment, the identifier cover 201 is a part of the liquid storage box 2, and is arranged at a position of the top wall of the liquid storage box 2 close to the front end. In this way, the identifier cover 201 may be used as a carrier for arranging the guiding rib 211 and/or the guiding groove, and also forms part of the liquid storage box 2, making it versatile and reducing the cost.
(52) More preferably, an opening is provided in a top wall of the box body of the liquid storage box 2, and the identifier cover 201 is installed at the opening. The identifier cover 201 adopts a split structure, and is integrally assembled into the liquid storage box 2 internally provided with an independent closed cavity.
(53) Or, the identifier cover 201 is integrally formed with the box body of the liquid storage box 2, the identifier cover 201 is integrally formed with the liquid storage box 2 by adopting a blow molding process, the process is simplified, and the manufacturing cost is reduced.
(54) Preferably, as shown in
Embodiment 2
(55) As shown in
(56) As shown in
(57) Through the above settings, after the liquid storage boxes 2 for different types of additives are inserted into the insertion groove of the additive dispensing apparatus 1 respectively, the guiding identifier parts 21 with different numbers and/or positions arranged on different liquid storage boxes 2 resist and guide the rotating swing member 33 corresponding to the intelligent identification assembly 100 arranged on the additive dispensing apparatus 1, so that the conductive elements at corresponding identifier positions are disconnected from the wiring terminal 220 corresponding thereto. Different detection signals for the wiring terminals 220 with different numbers and different positions are generated after different liquid storage boxes 2 are installed in the additive dispensing apparatus 1, so as to achieve the effects of identifying the category information of the additives represented by the guiding identifier parts 21 arranged on the liquid storage boxes 2.
(58) Through the above method, the types of the additives in the liquid storage box 2 are determined according to the signal information of the wiring terminals 220 disconnected from the conductive elements, and the type of the liquid storage box 2 installed in the additive dispensing apparatus 1 may be accurately identified. So, it is achieved to automatically and accurately identify the types of the additives.
(59) In this embodiment, a plurality of liquid storage boxes 2 may be placed in the insertion groove, and each liquid storage box corresponds to one intelligent identification assembly 100. Each intelligent identification assembly 100 includes wiring terminals 220, elastic pushing members 32 and rotating swing members 33. The wiring terminals 220, the elastic pushing members 32 and the rotating swing members 33 form a detection mechanism for detecting guiding identifier parts 21 at corresponding identifier positions of the liquid storage boxes 2.
(60) In view with Embodiment 1 and
(61) If the intelligent identification assembly 100 only receives a signal which is generated by the wiring terminal 220 at the first identifier position Z1 being disconnected, it may be identified and determined that the type of the additive stored in the liquid storage box 2 is a detergent. If the intelligent identification assembly 100 only receives a signal which is generated by the wiring terminal 220 at the second identifier position Z2 being disconnected, it may be identified and determined that the type of the additives stored in the liquid storage box 2 is a conditioner. If the intelligent identification assembly 100 only receives a signal which is generated by the wiring terminal 220 at the third identifier position Z3 being disconnected, it may be identified and determined that the type of the additives stored in the liquid storage box 2 is a disinfectant. If the intelligent identification assembly 100 receives a signal which is generated by the wiring terminals 220 at the second identifier position Z2 and the third identifier position Z3 both being disconnected, it may be identified and determined that the type of the additives stored in the liquid storage box 2 is the softener.
(62) In this embodiment, it is in detailed described taking each intelligent identification assembly 100 including three groups of detection mechanisms as an example. Each intelligent identification assembly 100 may correspondingly identify eight categories of the liquid storage boxes 2, 2*2*2=8. Of course, the number of the detection mechanisms of the intelligent identification assembly 100 is not limited, which may also be four groups, five groups or the like, and more categories of the liquid storage boxes 2 of may be identified correspondingly.
(63) Further, as shown in
(64) In the above solution, a rotating shaft hole is formed in the upper cover plate 11, and the rotating shaft 3311 drives the swing part to rotate along the rotating shaft 3311 in a horizontal direction. The rotating shaft 3311 and the guiding column 3312 are not coaxially arranged, the rotating shaft 3311 and the guiding column 3312 are arranged on two sides of the swing part. The rotating shaft 3311 is arranged on a side of the swing part close to the elastic pushing member 32, and the guiding column 3312 is arranged on another side of the swing part away from the elastic pushing member 32, so that the swing part forms a cam-like structure.
(65) Under the limitation in a vertical direction and a limitation action of the rotating shaft 3311, the swing part is guided to drive the abutting part to rotate to push the elastic pushing member 32 by the guiding column 3312, so as to disconnect the conductive elements from the wiring terminals 220, achieving signal identification. Thus, the types of the additives stored in the liquid storage box 2 are detected and identified.
(66) Preferably, as shown in
(67) More preferably, the swing block 331 is integrally formed with the abutting plate 332, and an included angle between the swing block 331 and the abutting plate 332 is greater than 90. The included angle between the swing block 331 and the abutting plate 332 is greater than 90, so that when the swing block 331 rotates slightly, the abutting plate 332 may be driven to rotate to push the elastic pushing member 32.
(68) Further, as shown in
(69) In one implementation, the conductive element is movably arranged in the barrel shell 321 in an axis direction of the barrel shell 321. Without an external force, the conductive element is connected between the first wiring terminal 311 and the second wiring terminal 312, and a conduction signal is generated between the first wiring terminal 311 and the second wiring terminal 312.
(70) When a guiding rib 211 is arranged at a set identifier position of the liquid storage box 2, the rotating swing member 33 at a corresponding position moves along the guiding trajectory of the guiding rib 211 to inward push the sliding push rod 322 at the corresponding position, so as to disconnect the conductive element from the wiring terminal 220. A signal is generated by disconnecting the first wiring terminal 311 from the second wiring terminal 312. An elastic reset member is arranged in the barrel shell 321. Without a pushing force, the conductive element restores to an initial position in contact with the first wiring terminal 311 and the second wiring terminal 312 under an action of the elastic reset member.
(71) In another preferred implementation, in this embodiment, the conductive element includes a conductive spring 323 installed in the barrel shell 321 in a limiting mode and conductive contact pieces connected with two ends of the conductive spring 323. Of course, the conductive contact pieces may also be not arranged. The wiring terminals 220 are in direct contact and connected with the two ends of the conductive spring 323. A matching effect between the wiring terminals 220 and the conductive spring 323 can be further improved through the arrangement of conductive contact pieces, and the conductive efficiency is improved.
(72) As shown in
(73) In the above implementation, the conductive element adopts a structure of the conductive spring 323, which can achieve a conductive action and restore to the initial state without the external force and under the action of its own spring force. There is no need to additionally arrange the elastic reset member, the structure of the elastic reset member 32 is simplified, and the cost is reduced.
(74) Specifically, in this embodiment, as shown in
(75) Further, the sliding push rod 322 is movably arranged in the barrel shell 321 in the axis direction of the barrel shell 321. One end of the sliding push rod 322 extends out of the barrel shell 321 to abut against the abutting part, and the other end of the sliding push rod 322 abuts against the end of the conductive spring 323. Preferably, an outer diameter of the one end of the sliding push rod 322 abutting against the abutting part is expanded, so a contact area with the abutting part is increased, detachment is avoided, and a pushing effect is ensured.
(76) Further, two ends of the limiting installation groove 3211 are further provided with ports for allowing the first wiring terminal 311 and the second wiring terminal 312 to pass through, and the first wiring terminal 311 and the second wiring terminal 312 extends into the barrel shell 321 from the ports in two sides of the limiting installation groove 3211, so as to be in contact connection with the conductive contact pieces at the two ends of the conductive spring 323.
(77) As shown in
(78) Further, in this embodiment, the intelligent identification assembly 100 is fixed to the upper cover plate 11 through an installation seat 34. The installation seat 34 is internally provided with an accommodating cavity, the elastic pushing member 32 is fixedly installed in the accommodating cavity, and the barrel shell 321 is fixed into the accommodating cavity.
(79) Further, as shown in
(80) In this embodiment, one end of the wiring terminal 220 is fixed to the top wall of the installation seat 34 and connected to an external detection circuit, and the other end of the wiring terminal extends into the barrel shell 321 to be in contact connection with the conductive element. Further, the external detection circuit includes a PCB 230. All wiring terminals 220 of each intelligent identification assembly 100 are integrally arranged on the PCB 230, achieving an objective of rectification. In this way, output of signals in three circuits may be achieved with only two detection wires 301. In a case of the same actual principle, the PCB may also be not used, for example, each group of wiring terminals 220 are directly connected to the two detection wires 301. Further, as shown in
(81) This embodiment further provides an identification method with the above additive dispensing apparatus, including: a liquid storage box 2 being inserted into an insertion groove of the additive dispensing apparatus: a guiding identifier part 21 on the liquid storage box 2 resisting to guide a corresponding rotating swing member 33 in the insertion groove, so that conductive elements at corresponding identifier positions is disconnected from their corresponding wiring terminals 220; and acquiring signal information of the wiring terminals 220 disconnected from each conductive element, and determining types of additives in the liquid storage box 2 based on the signal information of the wiring terminals 220 disconnected from each conductive element. Through the above method, the types of the additives in the liquid storage box 2 are determined according to the signal information of the wiring terminals 220 disconnected from each conductive element. The liquid storage box 2 installed in the additive dispensing apparatus is accurately identified, so that the types of the additives is automatically and accurately identified.
Embodiment 3
(82) As shown in
(83) As a preferred solution of the sealing cover 2001, the sealing cover 2001 includes a connecting sleeve, of which an outlet end is located at the dispensing port of the liquid storage box 2, and an inlet end is extended into the liquid storage box 2. A flow guide channel 2013 is formed in the connecting sleeve. The sealing cover 2001 further includes a clamping end cap 2011 connected to the outlet end of the connecting sleeve and installed at the dispensing port in a sealing mode, and the conductive contact pieces 2015 are arranged on the clamping end cap 2011.
(84) In order that the type or remaining quantity of the additives in the liquid storage box 2 is detected, generally an identification or detection apparatus is directly arranged on the liquid storage box 2. In the following embodiment, the identification or detection apparatus is arranged on the sealing cover 2001, so as to identify or detect the type or remaining quantity of the additives in the liquid storage box 2.
(85) Specifically, as shown in
(86) Further, a first conductive contact piece 2015 and a second conductive contact piece 2015 which are spaced at an interval are arranged on the sealing cover 2001, and the interval correspondingly represents the type of the additive stored in the liquid storage box 2. Preferably, the interval information includes distance information, relative spatial orientation information and position information arranged on the liquid storage box 2 between the first conductive contact pieces 2015 and the second conductive contact pieces 2015.
(87) As shown in
(88) Preferably, one ends of the conductive probes 103 are connected to the sealing cover 2001, and the other ends of the conductive probes 103 extend into the closed cavity 2103. The ends of the conductive probes 103 connected to the sealing cover 2001 are as the conductive contact pieces 2015. Alternatively, contact pieces independently arranged on the sealing cover 2001 and being in contact with the conductive probes 103 form the conductive contact pieces 2015. The conductive contact pieces 2015 are arranged on the clamping end cap 2011. Preferably, one ends of the conductive probes 103 are connected to the conductive contact pieces 2015, and the other ends of the conductive probes 103 extend into the connecting sleeve. Alternatively, one ends of the conductive probes 103 are connected to the conductive contact pieces 2015, and the other ends of the conductive probes 103 are in the liquid storage box 2. More preferably, the conductive probes 103 are embedded into a wall of the connecting sleeve, and the conductive contact pieces 2015 are exposed outside the clamping end cap 2011. The conductive contact pieces 2015 protrude from an outer wall surface of the clamping end cap 2011, or are embedded into an outer wall of the clamping end cap 2011.
(89) It should be understood that the conductive contact pieces 2015 can identify or detect the type of the additive stored in the liquid storage box 2, wherein the conductive probes 103 play a role in conduction or information transmission as media or intermediates. The conductive probes 103 do not play any other role in this embodiment.
(90) As shown in
(91) As shown in
(92) As shown in
(93) As shown in
(94) A clothing treatment device is provided with the above dispensing apparatus. the additive is automatically dispensed through the dispensing apparatus.
(95) As shown in
(96) As shown in
(97) As shown in
(98) It should be understood that the conductive contact pieces 2015 can identify or detect the types of the additive stored in the liquid storage box 2, wherein the conductive probes 103 play a role in conduction or information transmission as media or intermediates, and the conductive probes 103 do not play a role in detecting a liquid level or state in this embodiment. It should be understood that the conductive probes 103 only need to be arranged on the sealing cover 2001, and the specific position setting needs to be determined in combination with the detection method and specific structures of designed components, which is not limited here.
(99) As shown in
(100) It should be understood that the positions of the conductive probes 103 at the sealing cover 2001 are not limited to be located on the liquid inlet pipeline. It may be any position setting through which t the detection method can be implemented. Similarly, the positions of the conductive contact pieces 2015 are not limited to be located on the turnover clamping wall 2012. It may be any position setting through which t the detection method can be implemented, which is not limited here.
Embodiment 4
(101) As shown in
(102) As shown in
(103) Preferably, as shown in
(104) The light emitting parts and the light receiving parts are in one-to-one correspondence with the photosensitive components. The light receiving parts may receive light beams reflected by the photosensitive components at the corresponding positions. After the liquid storage box 2 with the sealing cover 2001 is installed in the box body 2104, the photosensitive components on the turnover clamping wall 2012 reflect the light beams to the light receiving parts at corresponding positions. Preferably, the dispensing apparatus further includes an identification unit, and the identification unit determines the type of the additive in the liquid storage box 2 based on information of the reflected light beams received by all light receiving parts.
(105) It should be understood that the positions of the photosensitive components at the sealing cover 2001 are not limited to the turnover clamping wall 2012. It can be any position setting that can implement the detection method. Similarly, the positions of the optical detection mechanisms are not limited to the annular end cap, and it can be any position setting that can implement the detection method, which is not limited here.
Embodiment 5
(106) As shown in
(107) As shown in
(108) It should be understood that the positions of the concave-convex parts 2017 at the sealing cover 2001 are not limited to the clamping end cap 2011 or the turnover clamping wall 2012, and it may be any position setting that can implement the detection method. Similarly, the positions of the contact switches are not limited to the annular end cap, and it may be any position setting that can implement the detection method, which is not limited here.
Embodiment 6
(109) As shown in
(110) As shown in
(111) It should be understood that the crystal oscillator is arranged in the sealing cover 2001. Based on the specific structure of the sealing cover 2001, the external line 2101 can transmit signals with different frequencies to the outside and be electrically connected with a corresponding receiving and processing unit. That is, any design that can achieve the detection method based on the sealing cover 2001 belongs to the protection scope of this embodiment.
Embodiment 7
(112) As shown in
(113) Preferably, the conductive probes 103 are embedded into a sleeve wall of the connecting sleeve, and the conductive components 2016 are exposed outside the clamping end cap 2011. The conductive contact pieces 2015 protrude from an outer wall surface of the clamping end cap 2011, or are embedded into an outer wall of the clamping end cap 2011. An outer sidewall of the clamping end cap 2011 extends outward by a certain distance in a peripheral direction and then reversely bends to form a turnover clamping wall 2012, and the conductive components 2016 are arranged on an outer wall of the turnover clamping wall 2012.
(114) Specifically, the connecting sleeve further includes a directional liquid inlet pipeline 2014, and the directional liquid inlet pipeline 2014 is connected with the flow guide channel 2013. A port of the directional liquid inlet pipeline 2014 faces a bottom wall of the liquid storage box 2 and is close to the bottom wall of the liquid storage box 2. The additive in the liquid storage box 2 is discharged out of the liquid storage box 2 sequentially through the directional liquid inlet pipeline 2014, the flow guide channel 2013 and the dispensing port. The conductive probes 103 are embedded into an inner wall of the connecting sleeve or the directional liquid inlet pipeline 2014, a wire is arranged in the wall, and the conductive probes 103 are electrically connected with the conductive components 2016 through the wire. At the same time, the conductive components 2016 arranged on the turnover clamping wall 2012 are connected with an external line 2101, so that it is transmitted to a control system or other upstream and downstream systems, units, etc.
(115) It should be understood, in this embodiment, the conductive probes 103 are used for detecting the liquid level of the additive, and the conductive components 2016 do not involve identification of the type of the additive.
(116) Preferably, the conductive probes 103 are arranged at intervals, and the liquid level detection ends of the conductive probes 103 extend toward a bottom of the liquid storage box 2 and are higher than a bottom wall of the liquid storage box 2. The conductive probes 103 and the sealing cover 2001 are of an integrated structure formed by a melting, hot-pressing, hot-riveting and/or bonding process.
(117) A liquid level detection module is arranged on the dispensing apparatus. When the liquid storage box 2 having the conductive detection part of the sealing cover 2001 is placed into the dispensing apparatus, the liquid level detection module is in contact and electrical connection with the conductive detection part, and liquid level information of the additive in the liquid storage box 2 is judged through a feedback signal outputted by the liquid level detection module. The liquid level detection module at least includes an external line 2101.
(118) It should be understood that the positions of the conductive probes 103 at the sealing cover 2001 are not limited to be located on the liquid inlet pipeline. It may be any position setting through which the detection method can be implemented. Similarly, the positions of the conductive components 2016 are not limited to be located on the turnover clamping wall 2012. It may be any position setting through which the detection method can be implemented, which is not limited here.
Embodiment 8
(119) As shown in
(120) It should be understood that the position of the electronic label 2019 at the sealing cover 2001 is not limited to be located on the outer wall/inner wall. It may be any position setting through which the detection method can be implemented. Similarly, the position of the reading module is not specifically limited, and it may be any position setting through which the detection method can be implemented, which is not limited here.
Embodiment 9
(121) As shown in
(122) It should be understood that the identification apparatus for identifying the type and/or remaining quantities of the additive in the liquid storage box 2 is not limited to the methods or apparatuses in the above embodiments, and may further be any other existing or future developed methods or technologies, which is not limited here.
Embodiment 10
(123) A clothing treatment device is provided with any one or a combination of the above dispensing apparatuses in Embodiments 1 to 7. The additive is automatically dispensed through the dispensing apparatus.
Embodiment 11
(124) As shown in
(125) As shown in
(126) a contact switch 200, including a wiring terminal 220 and a conductive spring piece 210 which are correspondingly arranged and capable of being in contact connection or disconnected, and the conductive spring piece 210 and the wiring terminal 220 being in a disconnected state in an initial state; and a swing triggering member 300, which is arranged on one side of the contact switch 200 close to the conductive spring piece 210 in a swinging mode.
(127) When swinging under an external force, the swing triggering member 300 may push the conductive spring piece 210 to be in contact conduction with the wiring terminal 220. The conductive spring piece 210 is in contact with the wiring terminal 220 under the pushing of the swing triggering member 300, achieving conduction.
(128) As shown in
(129) In the above solution, the wiring terminal 220 and the conductive spring piece 210 may be correspondingly arranged up and down, the conductive spring piece is arranged below the wiring terminal 220, the swing triggering member 300 is arranged below the conductive spring piece 210 in an up-down swinging mode. When swinging upward under an action of the external force, the swing triggering member 300 pushes the conductive spring piece 210 to move upward to be in contact conduction with the wiring terminal 220, and the contact switch 200 is triggered to send out a detection signal for conduction.
(130) The wiring terminal 220 and the conductive spring piece 210 may also be correspondingly arranged left and right, the conductive spring piece is arranged on a left side or a right side of the wiring terminal 220 at a certain distance, the swing triggering member 300 is arranged on a left side or a right side of the conductive spring piece 210 in a left-right swinging mode. When swinging leftward or rightward under the action of the external force, the swing triggering member 300 pushes the conductive spring piece 210 to move leftward or rightward to be in contact conduction with the wiring terminal 220, and the contact switch 200 is triggered to send out the detection signal for conduction.
(131) Preferably, as shown in
(132) Further, in this embodiment, the intelligent identification assembly 100 includes a plurality of groups of contact switches 200. The swing triggering members 300 are arranged in one-to-one correspondence with the contact switches 200.
(133) When the swing triggering members 300 of different positions and/or numbers swing under the action of the external force, the conductive spring pieces 210 of the corresponding positions and/or numbers are correspondingly pushed to be in contact connection with the wiring terminals 220, which can achieve that the intelligent identification assembly 100 outputs different combinations of detection signals.
(134) Further, as shown in
(135) an upper shell body 41, wherein the contact switches 200 are arranged in the upper shell body 41, the upper shell body 41 is internally provided with an installation cavity with an opening at a lower end, and the contact switches 200 are arranged in the installation cavity: and a lower cover plate 42, wherein the lower cover plate 42 covers the opening at the lower end of the upper shell body 41, and the swing triggering members 300 is installed below the lower cover plate 42 in an up-down swinging mode.
(136) The swing triggering member 300 includes a swinging rod, one end of the swinging rod is rotatably connected on the lower of the lower cover plate 42, and the other end is capable of pushing the conductive spring pieces 210 to move upward to be in contact connection with the wiring terminals 220.
(137) Preferably, spring piece ejection parts 320 protruding upward are arranged at the ends of the swinging rods in contact with the conductive spring pieces 210. Holes 424 are formed in positions of the lower cover plate 42 corresponding to the spring piece ejection parts 320. When the swinging rods swing upward, the spring piece ejection parts 320 extend into the upper shell body 41 from the holes 424 to push the conductive spring pieces 210 to move upward to be in contact connection with the wiring terminals 220. By arranging the holes 424, the lower cover plate 42 can be effectively prevented from blocking and interfering that the swinging rods move upward to push the conductive spring pieces 210 to be in normal contact connection with the wiring terminals 220.
(138) More preferably, as shown in
(139) In this embodiment, the ejection columns and the swinging rods are integrally formed by melting, injection molding and/or bonding.
(140) Further, each swinging rod includes a swinging rod body 310 and a swinging rod pushing part 330 for assisting in pushing the swinging rod to move upward, the swinging rod body 310 is a rod with a certain extension length, and an extension direction of the swinging rod body 310 is parallel to an insertion direction of the liquid storage box 2 inserted into the additive dispensing apparatus 1.
(141) As shown in
(142) Preferably, as shown in
(143) More preferably, the plate-shaped convex rib is arranged on the swinging rod body 310 between the rotating end of the swinging rod and the spring piece ejection part 320, and the plate-shaped convex rib is arranged at a position of the swinging rod body 310 close to the spring piece ejection part 320. Through the above solution, when there is a slight change in the position of the plate-shaped convex rib, the displacement at the end of the spring piece ejection part 320 may be magnified several times, which can more accurately and efficiently detect and identify the type of the additive stored in the liquid storage box 2.
(144) Further, as shown in
(145) Preferably, as shown in
(146) When the swinging rod is located at the initial position, the swinging rod is in a downward inclined state, and the spring piece ejection part 320 and the conductive spring piece 210 are in a separated and non-contact state. When under an extrusion action of the concave-convex parts 61 on the liquid storage box 2, the swinging rod rotates upward to a triggering position, and the spring piece ejection part 320 at the triggering position is in contact with the conductive spring piece 210 and pushes the conductive spring piece 210 to move upward, so that the conductive spring piece 210 is in contact with the wiring terminal 220.
(147) More preferably, as shown in
(148) Further, as shown in
(149) A first rotating shaft is arranged on each convex block, the rotating shaft hole 3510 is formed in the end of the swinging rods away from the spring piece ejection part 320, and the swinging rod is rotatably installed on the lower cover plate 42 through the rotating shaft hole 3510 and the first rotating shaft. The first rotating shaft is fixedly connected between two adjacent convex blocks, and the swinging rod is rotatably connected to the first rotating shaft.
(150) Preferably, as shown in
(151) Through the flanging structure 423 arranged on the lower cover plate 42, an installation cavity for installing the swing triggering members 300 is formed, the swing triggering members 300 are installed in the installation cavity formed by the lower cover plate 42 and the flanging structure 423 to provide certain protection for the swing triggering members 300. The swing triggering members 300 are not visible from the outside, improving aesthetics. The second rotating shaft may further be arranged between the flanging structure 423 and the convex blocks to install the swinging rods, so that a space below the lower cover plate 42 can be utilized more reasonably.
(152) Further, as shown in
(153) Preferably, as shown in
(154) More preferably, the waterproof pad 5 includes a waterproof pad body covering an upper surface of the lower cover plate 42, and the flexible telescopic sleeve 51 is arranged at a position of the waterproof pad body corresponding to the hole 424. The flexible telescopic sleeve 51 is a flexible rubber film with a plurality of circles of wrinkles, and a plurality of circles of wrinkle structures is as protruding upward or sinking downward, so the telescopic performance of the flexible telescopic sleeve 51 is improved, and the conductive spring pieces 210 can be pushed with the upward movement of the spring piece ejection parts 320. The waterproof pad 5 is provided with the deformable flexible telescopic sleeves 51 in contact with the spring piece ejection parts 320. The deformable flexible telescopic sleeves 51 can extend upward with the movement of the spring piece ejection parts 320, and a pressing action of the swinging rod body 310 is transmitted, so as to trigger the contact switches 200 to be conducted.
(155) More preferably, as shown in
(156) In the above solution, when swinging upward, the swing triggering members 300 drive the spring piece ejection parts 320 to press the flexible telescopic sleeves 51, the flexible telescopic sleeves 51 can be deformed, and the swing triggering members 300 press the conductive spring pieces 210 through the convex column of the flexible rubber film to conduct the contact switches 200. Through the above method, the flexible telescopic sleeves 51 transmit movement of the swing triggering members, the contact switches 200 are conducted, and it is completely avoided the effects of high temperature, high humidity, impurities and the like of an interior of the accommodating part 71 of the additive dispensing apparatus 1 on the conduction of the contact switches 200.
(157) In this embodiment, the waterproof pad 5 is made of a rubber material as a whole, and has a good water isolating effect, low costs and a certain elasticity. The body of the waterproof pad 5 may be connected and fixed to an upper of the lower cover plate 42 through a bonding, clamping mode or through a connector.
(158) Since the above intelligent identification assembly 100 is installed at an installation opening 721 formed in an integrated water path on the additive dispensing apparatus 1, the intelligent identification assembly 100 is in direct contact with the liquid storage box 2. An environment of the additive dispensing apparatus 1 is high-temperature and high-humidity, and has certain impurities. The direct contact of the condensed water and pollutants with the conductive spring pieces 210 may lead to the problems of accidental contact and the like. In order to solve the problem, in this embodiment, the above flexible rubber film is installed on the lower cover plate 42. The arrangement can effectively prevent water, dust and other pollutants from polluting the conductive spring pieces 210, so a normal identification detection effect of the intelligent identification assembly 100 is not affected, and the sensitivity and identification efficiency of the intelligent identification assembly 100 are improved.
(159) Further, as shown in
(160) Preferably, as shown in
(161) A limiting support plate 427 for supporting and fixing the PCB 230 is arranged on the lower cover plate 42. The limiting support plate 427 is fixedly arranged on the upper surface of the lower cover plate 42, and is distributed and arranged at front and rear ends of the lower cover plate 42 to provide a more balanced and stable support force for the PCB 230.
(162) As shown in
(163) More preferably, an annular boss is arranged at a top of the limiting column 4271, so as to clamp and limit the PCB 230 on the limiting support plate 427. Or, an external thread is arranged on the limiting column 4271, and the PCB 230 is fixed on the limiting support plate 427 through a nut.
(164) Alternatively, as shown in
(165) This embodiment provides another setting mode of the conductive spring pieces 210 and the wiring terminals 220. The difference from the above implementation is that the conductive spring pieces 210 are freely arranged below the PCB 230, with two ends not fixed.
(166) Specifically, the conductive spring pieces 210 are movably arranged below the PCB 230 in an up-down moving mode. At least one vertical guiding rod is arranged on the conductive spring pieces 210, a guiding hole is formed in the PCB 230, and the vertical guiding rod is movably arranged in the guiding hole up and down.
(167) In a natural state, the conductive spring pieces 210 are supported and fixed on the limiting support plate 427 under the action of the gravity, the conductive spring pieces 210 are not substantially connected with the limiting support plate 427 and the PCB 230. Limiting holes matched with the limiting column 4271 on the limiting support plate 427 are formed in the conductive spring pieces 210, and the limiting column 4271 penetrates through the limiting holes of the conductive spring pieces 210 and the PCB 230 sequentially to limit the conductive spring pieces 210 and the PCB 230 in a circumferential direction. First wiring terminals and second wiring terminals are arranged on the PCB 230 at intervals, the conductive spring pieces 210 move upward as a whole under an action of a swing pushing force, to be in contact with the first wiring terminals and the second wiring terminals respectively, and a circuit between the first wiring terminals and the second wiring terminals is conducted.
(168) In this embodiment, as shown in
(169) Preferably, in this embodiment, as shown in
(170) Further, as shown in
Embodiment 12
(171) As shown in
(172) At least one concave-convex part 61 is arranged on the liquid storage box 2 and exposed on the outer wall, and the type of the additive contained in the liquid storage box 2 is accurately identified by using any one or a combination of information such as the number, relative position and setting position on the liquid storage box 2 of the concave-convex parts 61.s Type information of the additive in different liquid storage boxes 2 is clearly identified.
(173) In the embodiment of the present disclosure, there may be various liquid storage boxes 2, and the various liquid storage boxes 2 are used for containing different types of additives correspondingly. Concave-convex parts 61 with any one or a combination of the number and position being different are arranged on the liquid storage boxes 2 for storing the different types of additives. In the embodiment of the present disclosure, the types of the additives include the following: a detergent, an odorant, a softener, a disinfectant, etc., and the different type of additives may be correspondingly dispensed separately or in combination. When the clothing treatment device executes different programs, the different types of additives are correspondingly used to correspondingly treat laundry. In the embodiment of the present disclosure, each liquid storage box 2 installed on the additive dispensing apparatus 1 may further store detergents with different concentrations respectively, such as super concentrated, concentrated, ordinary and low foam. Correspondingly the detergents of corresponding categories are dispensed when the clothing treatment device executes different washing programs, so that different pieces of laundry are correspondingly washed, and a washing effect of the clothing treatment apparatus is improved.
(174) In a first implementation:
(175) As shown in
(176) In this embodiment, the concave-convex parts 61 are protrusions protruding outward from the outer walls of the liquid storage boxes 2. In this embodiment, in the figure, for the convenience of expression, the concave-convex parts 61 are all represented as the protrusions protruding outward from the outer walls of the liquid storage boxes 2.
(177) In this embodiment, the concave-convex parts 61 may be integrally formed with the liquid storage boxes 2 and directly formed by the outer walls of the liquid storage boxes 2. Or, the concave-convex parts 61 are separated from the liquid storage boxes 2, and formed by independent components installed on the outer walls of the liquid storage boxes 2. In this embodiment, the concave-convex parts 61 may be made of any material, but it needs to ensure that when the concave-convex parts 61 are in contact with the swing triggering members 300 of the intelligent identification assembly 100, extrusion contact with the swing triggering members 300 may be generated due to protruding, so that the contact switches 200 generate triggering signals.
(178) Preferably, in this embodiment, in order to further improve the action accuracy of the concave-convex parts 61 on the contact switches 200, the following settings may be made. At least part of the outer wall of the liquid storage box 2 is a smooth surface, the smooth outer wall surface is provided with parts that produce concave and convex changes in an inner and outer direction of the liquid storage box 2, and the parts with the concave and convex changes form the concave-convex parts 61. So, the positions where the concave-convex parts 61 are formed are smooth planes with height changes, so as to improve triggering sensitivity when the concave-convex parts 61 are in contact with the swing triggering members 300.
(179) In this embodiment, the concave-convex parts 61 may be designed into any shape, such as a circle, a square, an ellipse, a polygon and any other shape and structure. In this embodiment, in order to ensure to the accurately detect the concave-convex parts 61, generally, all concave-convex parts 61 arranged on the liquid storage box 2 have the same shape. The replacement convenience and aesthetic appearance of the liquid storage box 2 are improved.
(180) Preferably, as shown in
(181) Further, the identifier cover 201 may be an independent component arranged on the top wall of the liquid storage box 2. Preferably, in this embodiment, the identifier cover 201 is a partial structure of the liquid storage box 2, and is arranged at a position of the top wall of the liquid storage box 2 close to the front end. In this way, the identifier cover 201 may be used as a carrier for arranging the concave-convex parts 61, and also forms the partial structure of the liquid storage box 2, which makes it versatile and reducing the cost.
(182) More preferably, an opening is formed in a top wall of the box body of the liquid storage box 2, and the identifier cover 201 is installed at the opening. The identifier cover 201 is an independent member, and is assembled into the liquid storage box 2 to form an independent closed cavity inside.
(183) Or, the identifier cover 201 is integrally formed with the box body of the liquid storage box 2, the identifier cover 201 is integrally formed with the liquid storage box 2 by adopting a blow molding process. The process is simplified, and the manufacturing cost is reduced.
(184) Preferably, as shown in
(185) An installation hole for installing the one-way breather valve 202 is formed in the identifier cover 201, and the one-way breather valve 202 is installed in the installation hole in a sealing mode. Compared to a manner of installing the one-way breather valve at other positions of the box body of the liquid storage box 2, by installing the one-way breather valve 202 on the identifier cover 201, processing and manufacturing are convenient, and the processing process of the liquid storage box 2 is further simplified.
(186) As shown in
(187) For example, a concave-convex part 61 arranged on a detergent liquid storage box 2 for containing a detergent is located at a position a. A concave-convex part 61 arranged on a bleach liquid storage box 2 for containing a bleach is located at a position b. A concave-convex part 61 arranged on a disinfectant liquid storage box 2 for containing a disinfectant is located at a position c, and so on.
(188) In a second implementation:
(189) As shown in
(190) In this embodiment, the information of the concave-convex parts 61 is the number of the concave-convex parts 61 arranged on the outer surface of the liquid storage box 2.
(191) For example, two concave-convex parts 61 are arranged on the detergent liquid storage box 2 for containing the detergent, three concave-convex parts 61 are arranged the bleach liquid storage box 2 for containing the bleach, one concave-convex part 61 is arranged on the disinfectant liquid storage box 2 for containing the disinfectant, and so on.
(192) In this embodiment, the information of the concave-convex parts 61 includes distance information, relative spatial orientation information and position information arranged on the liquid storage box 2 among the concave-convex parts 61.
(193) For example: the concave-convex parts 61 are arranged at a position a, a position b and a position c on the liquid storage box 2 for containing the detergent respectively, the concave-convex parts 61 are arranged at a position a and a position b on the liquid storage box 2 for containing the bleach respectively, the concave-convex parts 61 are arranged at a position a and a position c on the liquid storage box 2 for containing the disinfectant respectively, and so on.
(194) In this embodiment, the number information and the position information of the concave-convex parts 61 may further be correspondingly combined, so as to correspond more types of the additives.
Embodiment 13
(195) As shown in
(196) In this embodiment, at least one concave-convex part 61 is arranged on an outer wall of the liquid storage box 2, and any one or a combination of the number and position of the concave-convex parts 61 arranged on the liquid storage box 2 correspondingly represents type of the additive stored in the liquid storage box 2.
(197) As shown in
(198) Preferably, in this embodiment, as shown in
(199) Further, as shown in
(200) Preferably, as shown in
(201) More preferably, an identification unit is provided for determining the type of the additive in the liquid storage box 2 based on information of the contact switches 200 in contact with the concave-convex parts 61.
(202) In this embodiment, the identification unit is integrated on or independently arranged outside the additive dispensing apparatus 1. The identification unit may acquire the information of the contact switches 200 in contact with the concave-convex parts 61 under the pushing of the swing triggering members 300, and compare the acquired information of the contact switches 200 in contact with the concave-convex parts 61 under the pushing of the swing triggering members 300 with a prestored database to obtain type information of the additives in the liquid storage box 2 corresponding to the acquired information of the contact switches 200 in contact with the concave-convex parts 61. The type of the additive in the liquid storage box 2 is accurately determined.
(203) In this embodiment, the identification unit may be directly arranged on the additive dispensing apparatus 1, or may be arranged on a clothing treatment apparatus with the additive dispensing apparatus 1, or may further be arranged on a cloud server, a mobile terminal and other intelligent terminals being in communication with the additive dispensing apparatus 1.
(204) This embodiment further provides an identification method for the above additive dispensing apparatus 1, including: putting a liquid storage box 2 into an accommodating part of the additive dispensing apparatus 1; each concave-convex part 61 on the liquid storage box 2 abutting against the swing triggering members 300 of the intelligent identification assembly 100, so that the swing triggering members 300 swing towards the conductive spring pieces 210, to push the conductive spring pieces 210 at corresponding positions to be in contact conduction with the wiring terminals 220; and determining the type of additive in the liquid storage box 2 based on signal information of the wiring terminals 220 in contact conduction with each conductive spring piece 210.
(205) Through the above method, after different liquid storage boxes 2 are inserted into the accommodating part of the additive dispensing apparatus 1, the concave-convex parts 61 with different positions and/or different numbers on the liquid storage boxes 2 are in contact with the swing triggering members 300 at corresponding positions to generate press action, push the different swing triggering members 300 to rotate upward, so that the conductive spring pieces 210 at corresponding positions are in contact conduction with the wiring terminals 220. Thus, circuit is conducted and outputs signals. The numbers and/or positions of the concave-convex parts 61 on the liquid storage boxes 2 for different types of additives are different, so different swing triggering members 300 are pushed, and on-off situations of all contact switches 200 are also different, so that the intelligent identification assembly 100 can output different combinations of detection signals. The type of the additive is accurately determined by identifying the concave-convex parts 61 arranged on the liquid storage boxes 2.
(206) In the present application, after the liquid storage box 2 is pushed into the accommodating part 71, the concave-convex part on the liquid storage box 2 are presses the swinging rod pushing part 330 of the swing triggering member 300. So, the swinging rod body 310 at corresponding position moves upward around the rotating shaft, and the spring piece ejection part 320 above the swinging rod body 310 pushes the conductive spring piece 210 to be in contact with the wiring terminal 220 or conductive contact on the PCB 230. The circuit is conducted and outputs the signals.
(207) Through the swing triggering members 300, the drawing and pulling motion of the liquid storage box 2 in front-rear direction may make the swinging rod body 310 move in up-down direction, so as to trigger the corresponding contact switch 200. The swing triggering member 300 can play a role in reversing and transmitting the force, so it is more convenience to operate for the intelligent identification assembly 100. The different concave-convex parts 61 of different liquid storage boxes push correspondingly the swing triggering members 300, so different signals are output, thereby identifying the types of the additives stored in the liquid storage boxes 2.
(208) The above descriptions are only preferred embodiments of the present disclosure and do not limit the present disclosure in any form. Although the present disclosure has been disclosed in the preferred embodiments, it is not intended to limit the present disclosure. Any technical personnel familiar with the present patent, within the scope of the technical solution of the present disclosure, may make some changes or modifications to equivalent embodiments by utilizing the technical content mentioned above. Any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present disclosure, which are not separated from the technical solution of the present disclosure, still fall within the scope of the solution of the present disclosure.