ROTATIONAL POWER TRANSMISSION MECHANISM AND HEAT TREATMENT FURNACE
20180138796 ยท 2018-05-17
Assignee
Inventors
Cpc classification
F16D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K2201/03
ELECTRICITY
H02K49/104
ELECTRICITY
F16D3/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A rotational power transmission mechanism includes: an input shaft and an output shaft that are apart from each other; a first rotary member fixed to a tip end of the input shaft on an output shaft side of the input shaft; and a second rotary member fixed to a tip end of the output shaft on an input shaft side of the output shaft so as to face the first rotary member. Into recessed portions, projected portions are inserted, permanent magnets are respectively provided on a pair of contact surfaces of each recessed portion and on a pair of contact surfaces of each projected portion in such a manner that the recessed portion and the projected portion repel each other at the respective pairs of contact surfaces where the recessed portion and the projected portion come into contact with each other.
Claims
1. A rotational power transmission mechanism comprising: an input shaft and an output shaft that are apart from each other; a first rotary member fixed to a tip end of the input shaft on an output shaft side of the input shaft; and a second rotary member fixed to a tip end of the output shaft on an input shaft side of the output shaft so as to face the first rotary member, wherein into a recessed portion formed around a rotational axis of one of the first rotary member and the second rotary member, a projected portion formed around a rotational axis of the other of the first rotary member and the second rotary member is inserted such that the first rotary member and the second rotary member are coupled to each other in a relatively rotatable manner, and permanent magnets are respectively provided on a pair of contact surfaces of the recessed portion and on a pair of contact surfaces of the projected portion in such a manner that the recessed portion and the projected portion repel each other at the respective pairs of contact surfaces where the recessed portion and the projected portion come into contact with each other through relative rotation between the first rotary member and the second rotary member.
2. The rotational power transmission mechanism according to claim 1, wherein in the projected portion, the permanent magnets in the pair of contact surfaces have different polarities from each other.
3. The rotational power transmission mechanism according to claim 1, wherein a plurality of recessed portions are formed with intervals along a circumferential direction of the first rotary member, and a plurality of projected portions are formed with intervals along a circumferential direction of the second rotary member.
4. A heat treatment furnace comprising: the rotational power transmission mechanism according to claim 1; a motor coupled to the input shaft of the rotational power transmission mechanism; a fan fixed to a tip end of the output shaft of the rotational power transmission mechanism; and a furnace body, wherein the fan is disposed inside the furnace body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Features, advantages, and technical and industrial significance of exemplary embodiments of the disclosure will be described below with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
[0013]
[0014]
[0015]
[0016]
DETAILED DESCRIPTION OF EMBODIMENTS
[0017] Hereinafter, specific embodiments to which the present disclosure is applied will be described with reference to drawings. However, the present disclosure is not limited to the following embodiments. In addition, for the sake of clarifying the description, the following description and drawings are appropriately simplified.
First Embodiment
[0018] First, with reference to
[0019] As shown in
[0020] On a face of the input-side rotary member 12, the face facing the output-side rotary member 22, multiple recessed portions 14 formed around a rotational axis are arranged along a circumferential direction with equal intervals. In an example of
[0021] The number of the recessed portions 14 formed on the input-side rotary member 12 and the number of the projected portions 24 formed on the output-side rotary member 22 may be one, respectively. However, as described later, in order to maintain the non-contact state by repellent force of permanent magnets, pluralities of recessed portions 14 and projected portion 24 may be provided. As described above, the multiple recessed portions 14 and the multiple projected portions 24 may be arranged with equal intervals, respectively.
[0022] As indicated by two-dot chain lines in
[0023] 3 are sectional views, each showing a positional relation between the input-side rotary member 12 and the output-side rotary member 22.
[0024] As shown in
[0025] As shown in
[0026] As shown in
[0027] With the above configuration, when the rotational torque is relatively small, as shown in
[0028] In this manner, in the rotational power transmission mechanism 1 according to the present embodiment, when the rotational torque is relatively small, the rotational power can be transmitted from the input-side rotary member 12 to the output-side rotary member 22 in a non-contact state; and when the rotational torque is relatively large, the input-side rotary member 12 and the output-side rotary member 22 come into contact with each other, to thereby suppress slippage therebetween.
[0029]
[0030] Here, if the drive shaft of the fan 40 is configured as a single shaft without being divided into the input shaft 11 and the output shaft 21, heat inside the furnace body 50 is released through this drive shaft. To the contrary, in the heat treatment furnace to which the rotational power transmission mechanism according to the first embodiment is applied, the drive shaft of the fan 40 is divided into the input shaft 11 and the output shaft 21. It is possible to transmit the rotational power from the input-side rotary member 12 fixed to the tip end of the input shaft 11 to the output-side rotary member 22 fixed to the tip end of the output shaft 21 in a non-contact state. Hence, heat transfer from the furnace body 50 via the output shaft 21 can be blocked between the output-side rotary member 22 and the input-side rotary member 12. In this manner, by using the rotational power transmission mechanism according to the first embodiment, it is possible to provide a heat treatment furnace excellent in thermal insulation.
[0031] Furthermore, in the heat treatment furnace to which the rotational power transmission mechanism according to the first embodiment is applied, as aforementioned, when the rotational torque is relatively small, the rotational power can be transmitted from the input-side rotary member 12 to the output-side rotary member 22 in a non-contact state; and when the rotational power is relatively large, the input-side rotary member 12 and the output-side rotary member 22 can come into contact with each other, to thereby suppress slippage therebetween.
[0032] The present disclosure is not limited to the above embodiments, and may appropriately be changed without departing from the scope of the disclosure. For example, the input-side rotary member 12 and the output-side rotary member 22 may have respective shapes that oppose each other.