Magnet device comprising stators and translators
10943721 · 2021-03-09
Assignee
Inventors
Cpc classification
H02K2201/03
ELECTRICITY
H02K33/16
ELECTRICITY
International classification
H01F7/18
ELECTRICITY
H02K41/03
ELECTRICITY
Abstract
A magnetic device comprising at least one stator (1) and one actuator (2), wherein the stator (1) and the actuator (2) respectively comprise at least one magnet with pole ends and a line of action of the magnet, and the actuator (2) can be moved linearly along a movement axis (3) and/or rotatably about a movement axis in a movement direction (4), wherein a stator line of action (15) of the stator (1) or a stator extension line (16) of the stator line of action (15), which stator extension line (16) extends as a geometric ray away from the pole end of the stator (1) as geometric tangent to the stator line of action (5), and an actuator line of action (25) of the translator (2) or an actuator extension line (26) of the translator line of action (25), which translator extension line (26) extends as a geometric ray away from the pole end of the translator (2) as geometric tangent to the translator line of action (25), respectively have intersection points (10), and the stator line of action (15), possibly the stator extension line (16), the translator line of action (25), and possibly the translator extension line (26) form a closed geometric shape so that the magnetic flux between the stator (1) and the translator (2) is bundled, wherein lines of action (5) and extension lines (6) extend through the magnetic device in an intersecting plane (11) comprising the movement axis (3).
Claims
1. A magnetic device comprising: at least one stator; and at least two actuators, wherein each actuator has at least one first inner actuator pole end and one second outer actuator pole end, wherein each stator has at least two first inner stator pole ends and two second outer stator pole ends, wherein the first inner stator pole ends are arranged opposite to the first inner actuator pole ends of said actuators and the second outer stator pole ends of said stator are arranged opposite to the second outer actuator pole ends of said actuators, wherein the actuators are movably supported with respect to the stator so that said actuators are linearly movable in parallel to a movement axis along a movement direction, wherein the stator comprises two magnets which are formed by two concentric hollow cylinders oriented along the movement axis, and wherein each actuator is arcuate between its pole ends in such a way that the magnetic flux is bundled from the first inner actuator pole end to the second outer actuator pole end or from the second outer actuator pole end to the first inner actuator pole end.
2. The magnetic device according to claim 1, wherein each stator is constructed as an electromagnet, while each actuator is constructed as a permanent magnet.
3. The magnetic device according to claim 1, wherein a winding extends between the concentric hollow cylinders.
4. The magnetic device according to claim 1, wherein the surface of the inner actuator pole end and the surface of the outer actuator pole end are equal in size.
5. The magnetic device according to claim 1, wherein the diameters of the two hollow cylinders are selected so that the surfaces of the inner stator pole end and the outer stator pole end of said stator are equal in size.
6. The magnetic device according to claim 1, wherein the surfaces of the pole ends of said stator and the surfaces of the pole ends of said actuators are equal in size.
7. The magnetic device according to claim 1, wherein the actuator has a sickle shape within any cross-section view containing the movement axis.
8. The magnetic device according to claim 1, wherein the movement axis is an axis of symmetry of the magnetic device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7) In the figures, the following reference symbols denote the following elements: r Stator/translator distance F Interaction force +/ Polarity 1 Stator 2 Translator 3 Movement axis 4 Movement direction 15 Stator line of action 25 Translator line of action 16 Geometric stator extension line 26 Geometric translator extension line 7 Magnet shielding element 8 Gap 9 Magnets 10 Intersection point 11 Winding 12 Intersecting plane 13 Centers 17 Inner stator pole end 18 Outer stator pole end 19 Inner translator pole end 20 Outer translator pole end
(8) The figures are exclusively used to clarify the invention disclosed here. The figures are in no case to be interpreted as restricting the object of the invention.
DESCRIPTION
(9)
(10) No movement of the translator 2 toward the stator 1 is marked in
(11) The polarity +/ of the magnets 9 is marked in
(12) The magnets 9 have a polygonal segment shape in the embodiment shown in
(13) With reference to the established teaching, the line of action of the magnets 9 have the shape of an arc segment. The stator line of action 15 and the translator line of action 25 thus have the shape of an arc segment. In
(14) The geometric extension lines are geometric rays, which extend from the pole end of the magnet 9 as extension lines of the magnetic lines of action. The stator extension lines 16 of the stator lines of action 15 are geometric rays, which extend away from the pole end of the stator 1 as geometric tangents toward the stator line of action 15. The translator extension lines 26 of the translator lines of action 25 are also geometric rays, which extend from the pole ends of the translator 2 as geometric tangents to the stator line of action 15.
(15) The geometric stator extensions 16 and translator extensions 26 intersect at an intersection line comprising intersection points 10. In the embodiment shown in
(16) In accordance with the teaching of geometry, the geometric stator extension 16 is oriented in the same manner as the stator line of action 15 in the end region of the magnet. The same is to be noted for the translator line of action 25 and the translator extension line 26.
(17) The lines of action 15, 25 and the geometric extensions 16, 26 form a closed geometric shape independently of the distance r of the translator to the stator. The magnetic flux between the magnets 9 of the stator 1 and the magnets 9 of the translator 2 are thus bundled.
(18) The sum of the torques, which are formed by the interaction forces F and the distance of these forces from the movement axis 3, is zero. The movement axis 3 is not subject to a torsional load as a result of the interaction forces F, the lines of action of which are spaced apart from the movement axis 3.
(19) In order to increase the effect of the bundling of the magnetic current between the magnets 9, magnet shielding elements 7 are arranged adjacently to the gap 8 resulting between the magnets.
(20)
(21) Building on the principle shown in
(22) The lines of action 15, 25 and the geometric extension lines 16, 26 oriented in the same direction thereto form a closed geometric shape. The extension lines 16, 26 intersect one another at an intersection line comprising an intersection point 10; in the embodiment shown in
(23) The magnets 9 of the stator 1 are designed as flat rectangles. The magnets 9 of the stator are electromagnets.
(24) The magnets 9 of the translators 2 are designed as flat arc segments, wherein the centers 13 of the arc segments are arranged adjacently to the stators, so that the arc segments form surfaces concave to one another. The centers 13 are located on the movement axis 3. The magnets 9 of the translators 2 are designed as permanent magnets.
(25) The translator lines of action 25 are marked as arcs in
(26) The stator extension lines 16 and the translator extension lines 26 are arranged congruently and in parallel in the gap 8 between the stator 1 and the translator 2.
(27) As a result of this arrangement, the magnetic fluxes between the magnets 9 of the stator 1 and the translators 2 are bundled.
(28) In order to increase the bundling, shielding elements 7 are arranged adjacently to the gap 8.
(29) A shifting of the magnets 9 of the stators outward, so that the adjacent lines of action 15, 25 and/or the extensions 16, 26 do not have any intersection point 10, would constitute a worse embodiment of the magnetic device according to the invention.
(30)
(31) In contrast to the second embodiment, the translators 2 have a polygonal shape in this case. The effect of the third embodiment is less than that of the second embodiment, since the interaction forces F in the third embodiment are at an angle to the movement direction 4.
(32) The stator 1 is designed as a rectangular magnet 9. In accordance with the established teaching, the stator line of action 15 and the stator extension line 16 run in parallel.
(33) The translator line of action 25 is marked in
(34) The extensions 16, 26 intersect one another at the intersection point 10, so that the extensions 16, 26 and the lines of action 15, 25 result in a closed shape. The extensions 16, 26 intersecting at the intersection point 10 are at an acute angle 14 to one another, which acute angle 14 is marked once, by way of example, in
(35)
(36) The magnetic device comprises a stator 1 and two translators 2 arranged laterally to the stator 1. As shown clearly in
(37) The translators 2 are designed as permanent magnets; the stator 1 is designed as an electromagnet. The winding of the stator 1 designed as an electromagnet is marked schematically in
(38) The lines of action 15, 25 and the extension lines 16, 26 of the magnets 9 designed as stator 1 and as translator 2, which lines of action 15, 25 extend through the magnetic device in an intersecting plane 11 comprising the movement axis 3, form a closed geometric shape. The intersection points (reference symbol 10) are not marked in
(39) The forces F generated by the magnets 9 bring about a movement of the translators 2 along the movement axis 3. The sum of the torques generated by the forces F and the distance of the respective force F to the movement axis is zero.
(40)
(41) The outer diameter a and the inner diameter b of the magnets 9 are marked in
(42) Similarly to
(43) The stator 1 is designed as an electromagnet, and the actuator 2 is designed as a permanent magnet.
(44) In the sectional view of
(45) The actuator line of action 25 extends in an arc within the sickle-shaped cross section of actuator 2, and thus similarly to the sickle-like shape of the actuator 2, in accordance with the established teaching, from a center of the pole end of the sickle-shaped actuator 2 to the center of the other pole end of the sickle-shaped actuator 2. The stator line of action 15 also extends, in accordance with the established teaching, from a center of the pole end of the stator 1 to the other pole end of the stator 1. Since the stator 1 extends linearly in the sectional view, the stator line of action 15 also extends linearly. The stator extension line 16 and the actuator extension line 26 extend congruently, so that these extension lines intersect one another.
(46) The surface of the inner stator pole ends 17 and the surface of the outer stator pole ends 18 are of equal size. To that end, due to their smaller diameter, the inner stator pole ends 17 have a greater width than the outer stator pole ends 18. Analogously thereto, the surface of the inner actuator pole ends 19 and the surface of the outer actuator pole ends 20 are of equal size. Due to the larger diameter of the outer actuator pole ends 19, the width of the outer actuator pole ends 20 is less than the width of the inner actuator pole ends. These proportions of the surfaces and the widths have the effect that a moment of force about the movement axis 3 is prevented.
(47)