Fan for an Automatic Dispensing Device
20250207601 ยท 2025-06-26
Inventors
- Lavis DU (Shenzhen, CN)
- Chaoqin GUO (DongGuan, Guangdong, CN)
- Dan IBBITSON (Hull, GB)
- Akira NAIDU (Liverpool, GB)
- Jake Stephen WILLIAMS (Hull, GB)
- Charles YAO (Shenzhen, CN)
Cpc classification
H02K21/24
ELECTRICITY
F04D25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K11/0094
ELECTRICITY
A61L2209/134
HUMAN NECESSITIES
International classification
F04D25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K11/00
ELECTRICITY
H02K21/24
ELECTRICITY
Abstract
A fan (1) for an automatic dispensing device, wherein the fan (1) is configured to generate an air flow when a rotor (3) of the fan (1) is rotating. The fan (1) comprises a drive circuit (6), an electromagnet (8) having at least one electromagnetic coil, the electromagnetic coil connected to the drive circuit (6), a rotor (3) for generating the airflow, and at least four magnets (14a, 14b, 14c, 14d, 14e, 14f, 14g, 14h) arranged on a circle (18) on the rotor (3) and spaced apart by the same angle (alpha), wherein the electromagnet (8) is arranged above or under the circle (18) of the rotor (3) and configured to attract or repel said magnets (14a, 14b, 14c, 14d, 14e, 14f, 14g, 14h), and the drive circuit (6) is configured to switch a current direction in the electromagnetic coil of the electromagnet (8) to sequentially attract and then repel each magnet as the rotor rotates. The fan further comprises a magnetic element (16) arranged above or under the rotor (3) in proximity (20) of the circle (18) of the rotor (3) such that the magnetic element (16) attracts one of the magnets (14a) to its position when the electromagnetic coil is not powered by the drive circuit (6) and the rotor (3) is not rotating or gradually coming to a halt after the electromagnetic coil has been un-powered, wherein none of the other magnets (14b, 14c, 14d, 14e, 14f, 14g, 14h) assumes a position directly under or above the electromagnet (8) when the rotor (3) comes to a halt. In a preferred embodiment, the fan (1) further includes a floating suspension to reduce wear and tear over time.
Claims
1. A fan for an automatic dispensing device, wherein the fan is configured to generate an air flow when a rotor of the fan is rotating, the fan comprising: a drive circuit; an electromagnet having at least one electromagnetic coil, the electromagnetic coil connected to the drive circuit; a rotor for generating the airflow; and at least four magnets arranged on a circle (18) on the rotor (3) and spaced apart by the same angle (alpha), wherein the electromagnetic coil of the electromagnet (8) is arranged above or under the circle of the rotor and configured to attract or repel said magnets; and the drive circuit is configured to switch a current direction in the electromagnetic coil of the electromagnet to sequentially attract and then repel each magnet as the rotor rotates; and a magnetic element arranged above or under the rotor in proximity of the circle of the rotor wherein the magnetic element is configured to attract one of the magnets to its position when the electromagnetic coil is not powered by the drive circuit and the rotor is not rotating or gradually coming to a halt after the electromagnetic coil has been un-powered, wherein none of the other magnets assumes a position directly under or above the electromagnetic coil of the electromagnet when the rotor comes to a halt.
2. The fan according to claim 1, wherein the magnetic element is metallic.
3. The fan according to claim 1, wherein the magnetic element is made of iron, cobalt or nickel.
4. The fan according to a claim 1, wherein the magnetic element is a plate.
5. The fan according to claim 1, wherein the electromagnetic coil of the electromagnet and the magnetic element are spaced apart by at least 30 degrees relative to the circle.
6. The fan according to claim 1, wherein the fan comprises between four and twelve magnets.
7. The fan according to claim 1, wherein the electromagnetic coil of the electromagnet and the nearest magnet relative to the electromagnetic coil are spaced apart by an angle (beta) of between 5 and 45 degrees, relative to the circle when the electromagnetic coil is not powered by the drive circuit and the rotor is not rotating.
8. The fan according to claim 1, wherein the magnetic poles of each magnet are oriented in the same direction.
9. The fan of claim 8, wherein the drive circuit is configured to switch the direction of the current in the electromagnetic coil of the electromagnet as each magnet passes the electromagnet and when the electromagnet is equidistant from two adjacent magnets.
10. The fan according claim 1, wherein the at least four magnets comprise one or more neodymium magnets.
11. The fan according to claim 1, wherein the rotor comprises a rotation shaft, an end of which is suspended in an opening of a support structure of the fan, a first suspension magnet is arranged in and fixed to the opening of the support structure the first suspension magnet surrounding the said rotation shaft such that the rotation shaft can freely rotate in an opening of the first suspension magnet, a second suspension magnet is arranged at a distance from the first suspension magnet, the second suspension magnet surrounding the rotation shaft and is fixed to the rotation shaft such that the second suspension magnet rotates together with the rotation shaft when the rotor is rotating, and the first and second suspension magnets are configured to repel each other.
12. The fan according to claim 1, wherein the fan is configured to be operated with the rotor rotating in a horizontal plane.
13. The fan according to claim 1, wherein the fan is powered by a solar panel.
14. The fan according to claim 5, wherein the electromagnetic coil of the electromagnet and the magnetic element are spaced apart by at least 45 degrees relative to the circle.
15. The fan according to claim 14, wherein the electromagnetic coil of the electromagnet and the magnetic element are spaced apart by at least 90 degrees relative to the circle.
16. The fan (1) according to claim 1, wherein the fan (1) comprises eight magnets.
17. The fan according to claim 7, wherein the electromagnetic coil of the electromagnet and the nearest magnet relative to the electromagnetic coil are spaced apart by an angle (beta) of between 5 and 25 degrees, relative to the circle when the electromagnetic coil is not powered by the drive circuit and the rotor is not rotating.
Description
[0006] In the following, the prior art as well as the present invention are illustrated with reference to the figures:
[0007]
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016] The solar panel 4 is coupled to the drive circuit 6 which is connected to the electromagnet 8. The fan 10 is coupled to the at least one magnet 14. The fan 10 is located proximate to the electromagnet 8 so that the magnetic field generated by the electromagnet is sufficiently strong to attract or repel the at least one magnet 14. The fan 10 is located proximate to the reservoir 12 so that the fan increases airflow and distribution of the volatile substance is increased.
[0017] In the example illustrated in
[0018]
[0019]
[0020]
[0021] In this example, in order to generate the north pole and south pole from the electromagnet, the electromagnet comprises a coil that is wound such that a positive current generates a south pole and a negative current generates a north pole. The electromagnet is positioned proximate the magnets so that the magnetic energy is converted to kinetic energy in the fan via the magnetic interaction between the electromagnet 8 and the magnets 14a,b,c,d.
[0022] As shown in
[0023] The switching of the current in the electromagnet described above provides an efficient mechanism of transferring the electrical energy to kinetic energy in the fan using the magnetic attraction and repulsion between the electromagnet 8 and the magnets 14 coupled to the fan 10.
[0024] The circuit may be selected to provide an oscillating current on the electromagnet. In the example illustrated above the electromagnet comprises a single coil and the circuit selected in order to provide an oscillating current. The circuit may, for example, be a Schmitt trigger that provides an oscillating current to the coil. In other examples, a physical switch may be used to switch the current direction. In a further example, a logic integrated circuit (IC) may be used.
[0025] In another example, the electromagnet comprises a first coil 8a and a second coil 8b. The first coil 8a is located proximate to the second coil 8b. In this example, the fan is driven by the electromagnetic by applying a current in one direction through the first coil 8a and applying a current in the opposite direction in the second coil 8b. This results in the first coil 8a having a magnetic pole direction in the opposite direct to the magnetic pole from the second coil 8b.
[0026]
[0027] In the example described above the fan comprises four magnets 14. In other examples the fan may comprise a different number of magnets 14. For example, the fan may comprise 2, 3, 4, 6, 7 or 8 magnets. The number of magnets 14 may depend upon the size of the fan 10, for example it may be beneficial to use a greater number of magnets 14 for a larger fan 10.
[0028]
[0029] The graphical representation shows how the current may be varied through the electromagnet 8 and the position of the four magnets relative to the electromagnet in time. As illustrated, the current in the electromagnet is varied in time and switches from a positive current to a negative current or from a negative current to a positive current as each magnet 14a,b,c,d passes the electromagnet. In this example, in order to generate the north pole and south pole from the electromagnet, the electromagnet comprises a coil that is wound such that a positive current generates a south pole and a negative current generates a north pole. The electromagnet is positioned proximate the magnets so that the magnetic energy is converted to kinetic energy in the fan via the magnetic interaction between the electromagnet 8 and the magnets 14a,b,c,d.
[0030] As shown in
[0031] In the example above the magnet 14 is a neodymium magnet. In other examples, the one or more magnet may be a ferrite magnet and/or other rare earth magnet.
[0032] The electromagnet may be a coil made from copper, for example enamelled copper coil wire. In an example, the copper wire may have a thickness between 0.04 and 0.05 mm. In an example, the electromagnet may have between 1000 and 8000 turns on the coil, for example 2000 to 7000 turns, for example 3000 to 6000 turns, for example 4000 to 5000 turns.
[0033] In the example above, the automatic dispensing device comprises a solar panel. In other examples, the dispensing device may be powered from a power storage unit (e.g. battery power) and/or connected to an external electricity supply (e.g. mains power).
[0034] In the examples described above, the electromagnet 8 interacts with at least one magnet 14 coupled to the fan 10. The electromagnet 8 may also interact with at least one magnet 14 coupled to a paddle or stirrer that is configured to move within the volatile substance to generate a current in the volatile substance.
[0035] Any feature as described and depicted in the prior art as referred to above in
[0036]
[0037] The magnetic element 16 can e.g. be an iron plate. Every time the rotor 3 of the fan 1 comes to a stop, the attractive force of the iron plate on the magnets ensures that one of the magnets 14a is attracted to its position and sits underneath it when the rotor 3 stops. The design of the fan 1, specifically the arrangement of the magnets and the electromagnetic coil of the electromagnet, ensures that one of the magnets 14b, 14c, 14d, 14e, 14f, 14g, 14h always stays at a fixed distance from the electromagnetic coil of the electromagnet 8 in said stop position of the rotor 3. This reduces the energy required to build momentum for the rotor of the fan to rotate upon activation. If a solar panel is used to power the fan, less light intensity (lux) is needed to activate the fan 1 compared to the prior art fan as depicted e.g. in
TABLE-US-00001 TABLE 1 Without iron plate With iron plate 16: 16: Startup-Lux Startup-Lux 146 78 182 97 164 89 164 93 141 78 average lux: 159 87
[0038] Table 1 shows the lux data measured for activating (i.e. getting the rotor of the fan in motion) solar-powered fans. Five fans have been built according to the present invention (i.e. including the magnetic element 16; see
[0039]
[0040] The first suspension magnet 28 is arranged in and fixed to the opening 24 of the support structure 26. The first suspension magnet 28 surrounds the rotation shaft 22 such that the rotation shaft 22 can freely rotate in an opening 30 of the first suspension magnet 28.
[0041] The second suspension magnet 32 is arranged at a distance from the first suspension magnet 28. The second suspension magnet 32 surrounds the rotation shaft 22 and is fixed to the rotation shaft 22 such that the second suspension magnet 32 rotates together with the rotation shaft 22 when the rotor 3 is rotating. The first and second suspension magnets 28, 32 are configured to repel each other. This can e.g. be achieved when corresponding magnetic poles (e.g. north <-> north, or south <-> south) of the suspension magnets 28 respectively 32 face each other.
[0042] In this embodiment, the rotation shaft 22 levitates (floats) above the base (bottom) of the opening 24 in which it is suspended. This results in a reduction in friction and wear on components. For example, the levitating rotation shaft 22 reduces the contact between the shaft 22 and the bottom of the opening 24 compared to a non-levitating rotation shaft. The reduction in contact reduces physical wear on both the rotation shaft 22 and the opening 24 (e.g., the end of the rotation shaft drilling a hole into the bottom of the opening 24 over time is prevented). In this embodiment, contact between the end of the rotation shaft 22 and the bottom of the opening is avoided by the floating arrangementenabled by the first and second suspension magnets 28 and 32 which repel each other.
[0043] Diagram 1 shows measurements of the rounds per minute (RPM) taken over time (over 7 weeks) for a fan according to
[0044] In the examples above, the magnetic element 16 is made of iron, the magnetic element 16 may also be made from cobalt or nickel.
[0045] In the example described with reference to
[0046] It is envisaged that further modifications and developments can be made without departing from the scope of the invention described herein.