Linear motor heat dissipation structure
10491078 ยท 2019-11-26
Assignee
Inventors
Cpc classification
International classification
H02K9/22
ELECTRICITY
Abstract
A linear motor heat dissipation structure including multiple teeth arranged linearly at predetermined intervals each with coil wound around rectangular tube-shaped bobbin, and heat dissipation member provided between adjacent coils that dissipates heat generated coils by transmitting the heat to an external section. Heat dissipation member is sandwiched by bowed sections of coils that are curved outwards within edges of rectangular tube-shaped bobbin due to elastic force of coils. Accordingly, even when there are component tolerances and assembly tolerances, those tolerances are absorbed by the elastic deformation of the bowed section of coils such that the variance in the contact state between coil and heat dissipation member is made smaller so that stable and high heat dissipation performance is achieved.
Claims
1. A linear motor heat dissipation structure comprising: multiple teeth arranged linearly at predetermined intervals each with a coil wound around a rectangular tube-shaped bobbin; and a heat dissipation member provided between adjacent coils that dissipates heat generated in the coils by transmitting the heat to an external section, wherein the heat dissipation member is sandwiched by bowed sections of the coils that are curved outwards within edges of the rectangular tube-shaped bobbin due to elastic force of the coils, and wherein portions of the rectangular tube-shape bobbins between the edges of the rectangular tube-shape bobbins that sandwich the heat dissipation member are removed to create exposed sections, and the heat dissipation member is sandwiched such that the bowed sections of the coils are pushed inside the exposed sections of the rectangular tube-shape bobbins by the heat dissipation member.
2. The linear motor heat dissipation structure according to claim 1, wherein the bow amount of the coil wound around the rectangular tube-shaped bobbin is adjusted by adjusting the radius of curvature of the rounded edge section of the rectangular tube-shaped bobbin.
3. The linear motor heat dissipation structure according to claim 1, wherein the external section includes fins or a heat sink.
4. The linear motor heat dissipation structure according to claim 1, wherein the heat dissipation member is formed from a heat pipe.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
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DESCRIPTION OF EMBODIMENTS
(7) A first, second, and third embodiment as three modes for carrying out the disclosure are described below.
First Embodiment
(8) The first embodiment is described with reference to
(9) Heat dissipation member 17 that dissipates heat generated in coils 15 by transmitting the heat to an external section is provided between adjacent coils 15. Heat dissipation member 17 is formed from a highly heat conductive member such as a heat pipe, and on a section of heat dissipation member 17 that protrudes to an outer side of moving member 17, heat dissipation fins 18 or a heat sink or the like are provided.
(10) Coil 15 wound around rectangular tube-shaped bobbin 14, in a state before heat dissipation member 17 is sandwiched, as shown in
(11) Further, with the first embodiment, as shown in
(12) With the linear motor heat dissipation structure of the first embodiment described above, because heat dissipation member 17 provided between adjacent coils 15 is sandwiched by bowed sections of coils 15 that are curved outwards within the edges of rectangular tube-shaped bobbin 14 due to elastic force of coils 15, even when there are component tolerances and assembly tolerances, those tolerances are absorbed by the elastic deformation of the bowed section of coils 15 such that the variance in the contact state (resistance to heat dissipation) between coils 15 and heat dissipation member 17 is made smaller so that stable and high heat dissipation performance is achieved.
Second Embodiment
(13) In a second embodiment, shown in
(14) With the second embodiment, the elastic deformation amount (push-in amount) of coils 15 that sandwich heat dissipation member 17 is increased by the recess amount of recessed sections 25 of bobbins 24, thus the leeway for absorbing component tolerances and assembly tolerances by elastic deformation of coils 15 is made larger, the pushing force of coils 15 to heat dissipation member 17 becomes larger due to the elastic deformation amount of coils 15 sandwiching heat dissipation member 17 becoming larger, resulting in smaller resistance to heat transfer between the two, thereby considerably improving heat dissipation performance. Further, the increase in the internal between coils 15 due to sandwiching heat dissipation member 17 between coils 15 is reduced by the recess amount of recessed sections 25 of bobbins 24, thus the linear motor is more compact than that of the first embodiment.
Third Embodiment
(15) In a third embodiment, shown in
(16) With the third embodiment, the amount by which coils 15 sandwiching heat dissipation member 17 are elastically deformable (push-in) is larger than in the first embodiment by the recessed amount of exposed section 35 of bobbin 34 (the thickness of bobbin 34), thus similar effects to the second embodiment are achieved.
REFERENCE SIGNS LIST
(17) 11: moving element; 12: tooth; 14: bobbin; 15: coil; 17: heat dissipation member; 18: heat dissipation fin; 24: bobbin; 25: recessed section; 34: bobbin; 35: opening