SLIM PUMP STRUCTURE
20190107122 ยท 2019-04-11
Inventors
Cpc classification
F04D29/4293
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/586
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/2205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/2261
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/426
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/0673
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/4273
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/0626
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/58
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20
ELECTRICITY
Abstract
A slim pump structure includes a case, a rotor assembly, a flow guide plate, a stator assembly and an enclosure member. The case has a first side and a second side. The first side is formed with a pump chamber. A partitioning section partitions the pump chamber into a first chamber and a second chamber. A pivotal section upward extends from the second chamber. A center of the pivotal section is formed with a bearing hole. The second side is recessed to form a cavity corresponding to the pivotal section. Multiple axial ribs are formed on a circumference of the cavity at intervals. Each two adjacent ribs define a gap therebetween. The rotor assembly is received in the second chamber. The flow guide plate covers the second chamber so as to uncommunicate the second chamber from the first chamber. The stator assembly is correspondingly disposed on the case.
Claims
1. A slim pump structure comprising: a case having a first side and a second side, the first side being formed with a pump chamber, a partitioning section partitioning the pump chamber into a first chamber and a second chamber, a pivotal section upward extending from the second chamber, a center of the pivotal section being formed with a bearing hole, the second side being recessed to form a cavity corresponding to the pivotal section, multiple axial ribs being formed on a circumference of the cavity at intervals, each two adjacent ribs defining a gap therebetween; a rotor assembly received in the second chamber, the rotor assembly having a hub and a blade wheel, a rotary shaft downward extending from the hub, the rotary shaft being inserted in the bearing hole, a flow way being annularly formed on one side of the blade wheel, the flow way communicating with the first and second chambers; a flow guide plate disposed on an outer circumference of the rotor assembly to cover the second chamber so as to uncommunicate the second chamber from the first chamber; a stator assembly received in the cavity, the stator assembly having multiple poles respectively correspondingly received in the gaps; and an enclosure member correspondingly disposed on the case to cover the case, the enclosure member and the flow guide plate defining therebetween a communication chamber in communication with the first chamber and the flow way.
2. The slim pump structure as claimed in claim 1, wherein the case further has a water inlet and a water outlet, the water inlet communicating with the first chamber, the water outlet communicating with the second chamber.
3. The slim pump structure as claimed in claim 1, wherein an inner wall of the bearing hole is formed with multiple axial channels in communication with the second chamber.
4. The slim pump structure as claimed in claim 1, wherein the flow guide plate has a top face and a bottom face, at least one raised body being formed on the top face to abut against the enclosure member, the bottom face covering the outer circumference of the rotor assembly.
5. The slim pump structure as claimed in claim 1, wherein a fitting section protrudes from the cavity corresponding to the bearing hole, the stator assembly being composed of multiple silicon steel sheets, a center of the stator assembly being formed with a perforation for correspondingly fitting on the fitting section.
6. The slim pump structure as claimed in claim 1, wherein the rotor assembly further has a magnetic member, the magnetic member being annularly disposed on an inner circumference of the rotor assembly.
7. The slim pump structure as claimed in claim 1, wherein a bearing is disposed in the bearing hole and the rotary shaft is passed through the bearing.
8. The slim pump structure as claimed in claim 1, wherein the case further has a stator cover, the stator cover being correspondingly disposed on an outer side of the stator assembly to cover the stator assembly, the stator cover being formed with an opening, a circuit board being connected with and disposed in the opening.
9. The slim pump structure as claimed in claim 2, wherein the second side of the case is formed with a receiving recess, the receiving recess being selectively formed on the second side of the case between the water inlet and the water outlet or along a periphery of the second side of the case.
10. The slim pump structure as claimed in claim 8, wherein the circuit board is a flexible printed circuit board.
11. The slim pump structure as claimed in claim 1, wherein the first side of the case is further formed with a locating groove along the outer circumference of the pump chamber, a leakproof member being correspondingly inlaid in the locating groove.
12. The slim pump structure as claimed in claim 1, wherein one end of the partitioning section is formed with a tongue section for providing flow guide effect, the tongue section and the partitioning section being integrally formed.
13. The slim pump structure as claimed in claim 2, wherein the water inlet and the water outlet have a flat form.
14. The slim pump structure as claimed in claim 1, wherein each rib has a continuous form or a discontinuous form and each rib has a cross section with a configuration of T-shape, semicircular shape or any other shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0023] Please refer to
[0024] In this embodiment, the partitioning section 201, the tongue section 208, the pivotal section 203 and the fitting section 2053 are, but not limited to, integrally formed with the case 20. In other words, the case 20, the partitioning section 201, the tongue section 208, the pivotal section 203 and the fitting section 2053 can be alternatively separately manufactured according to a user's requirement and then assembled with each other. This can achieve the same effect.
[0025] The pivotal section 203 upward extends from the second chamber 2022. The center of the pivotal section 203 is formed with a bearing hole 2031. The inner wall of the bearing hole 2031 is formed with multiple axial channels 2032 in communication with the second chamber 2022. A bearing 26 is disposed in the bearing hole 2031. The second side 20b is recessed to form a cavity 205 corresponding to the pivotal section 203 of the first side 20a. The fitting section 2053 protrudes from the center of the cavity 205 corresponding to the bearing hole 2031 of the first side 20a. Multiple axial ribs 2051 are formed on a circumference of the cavity 205 at intervals. Each two adjacent ribs 2051 define a gap 2052 therebetween (as shown in
[0026] In addition, the first side 20a of the case 20 is further formed with a locating groove 204 along the outer circumference of the pump chamber 202. A leakproof member 29 is correspondingly disposed in the locating groove 204 to prevent the working fluid 3 from leaking outside in operation of the slim pump structure 2.
[0027] A water inlet 243 and a water outlet 244 are disposed on one side of the case 20. In this embodiment, the water inlet 243 and the water outlet 244 are, but not limited to, disposed on the same side of the case 20. In practice, the water inlet 243 and the water outlet 244 can be disposed in different positions according to the user's requirement. This will not affect the effect achieved by the present invention. The water inlet 243 communicates with the first chamber 2021. The water outlet 244 communicates with the second chamber 2022. In this embodiment, the water inlet 243 and the water outlet 244 have a flat form to minify the volume of the present invention and slim the present invention.
[0028] The rotor assembly 21 is received in the second chamber 2022. The rotor assembly 21 has a hub 211 and a blade wheel 212. A rotary shaft 213 downward extends from the hub 211. The rotary shaft 213 is passed through the bearing 26 and inserted in the bearing hole 2031. A flow way 214 is annularly formed on one side of the blade wheel 212. The flow way 214 communicates with the first and second chambers 2021, 2022. A magnetic member 25 is annularly disposed on inner circumference of the rotor assembly 21.
[0029] The flow guide plate 22 is disposed on the outer circumference of the rotor assembly 21 to fully cover the second chamber 2022 so as to uncommunicate the second chamber 2022 from the first chamber 2021. The flow guide plate 22 has a top face 221 and a bottom face 222. At least one raised body 2211 is formed on the top face 221 to abut against the enclosure member 24. The bottom face 222 covers the outer circumference of the rotor assembly 21.
[0030] The stator assembly 23 is received in the cavity 205. The stator assembly 23 is composed of multiple silicon steel sheets 231, which are stacked on each other. The center of the stator assembly 23 is formed with a perforation 233 for fitting on the fitting section 2053 of the cavity 205. The stator assembly 23 has multiple poles 232 respectively correspondingly received in the gaps 2052 of the cavity 205. In other words, the configuration of the gaps 2052 is varied with the configuration of the poles 232, whereby the poles 232 can be correspondingly received in the gaps 2052.
[0031] In addition, a stator cover 27 is correspondingly disposed on outer side of the stator assembly 23 to cover and fix the stator assembly 23 in the case 20. The stator cover 27 is formed with an opening 271. The second side 20b of the case 20 is formed with a receiving recess 206. A circuit board 28 is connected with the opening 271 and disposed in the receiving recess 206. In this embodiment, the receiving recess 206 is, but not limited to, formed on the second side 20b of the case 20 between the water inlet 243 and the water outlet 244 for illustration purposes. Alternatively, the receiving recess 206 can be selectively disposed along the periphery of the second side 20b of the case 20 (as shown in
[0032] The enclosure member 24 is correspondingly disposed on the case 20 to cover the case 20. The enclosure member 24 and the flow guide plate 22 define therebetween a communication chamber 241 in communication with the first chamber 2021 and the flow way 214.
[0033] In this embodiment, the case 20 and the enclosure member 24 has a hexagonal configuration for illustration purposes. Each corner of the case 20 is formed with a connection section 207 and each corner of the enclosure member 24 is formed with an assembling section 242 for correspondingly assembling and connecting with the connection section 207. The case 20 and the enclosure member 24 can be connected by means of engagement, insertion or adhesion. Alternatively, the case 20 and the enclosure member 24 can be connected by means of screws (not shown) or any other locking components.
[0034] Please now refer to
[0035] In conclusion, in comparison with the conventional pump structure, the present invention has the following advantages: [0036] 1. The pump structure of the present invention is slimmed. [0037] 2. The volume of the pump structure of the present invention is minified. [0038] 3. The heat dissipation efficiency of the pump structure of the present invention is greatly increased.
[0039] The present invention has been described with the above embodiments thereof and it is understood that many changes and modifications in such as the form or layout pattern or practicing step of the above embodiments can be carried out without departing from the scope and the spirit of the invention that is intended to be limited only by the appended claims.