SHAFT COUPLING AND PUMP APPARATUS
20180313358 ยท 2018-11-01
Assignee
Inventors
- So KUROIWA (Tokyo, JP)
- Dai SAKIHAMA (Tokyo, JP)
- Renato GROPPO (Cles (Trento), IT)
- Marco GROPPO (Cles (Trento), IT)
- Mauro MAULE (Cles (Trento), IT)
- Nicola RIGON (Cles (Trento), IT)
Cpc classification
F04D13/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/605
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/628
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/106
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention relates to a shaft coupling (also referred to as a spacer coupling) that couples a motor shaft and a pump shaft while both shafts are spaced from each other. The present invention is further relates to a pump apparatus having such a shaft coupling. The shaft coupling (10) includes: a first inner circumferential surface (23) capable of contacting an outer circumferential surface of a motor shaft (6); a second inner circumferential surface (24) capable of contacting an outer circumferential surface of a pump shaft (1); a step portion (26) protruding radially inwardly from the first inner circumferential surface (23) and capable of contacting an end portion of the motor shaft (6); and a spacer portion (28) located between the step portion (26) and the second inner circumferential surface (24).
Claims
1. A shaft coupling comprising: a first inner circumferential surface capable of contacting an outer circumferential surface of a motor shaft; a second inner circumferential surface capable of contacting an outer circumferential surface of a pump shaft; a step portion protruding radially inwardly from the first inner circumferential surface and capable of contacting an end portion of the motor shaft; and a spacer portion located between the step portion and the second inner circumferential surface.
2. The shaft coupling according to claim 1, further comprising: a first member and a second member which are divided along an axial direction of the shaft coupling, the first member and the second member including the first inner circumferential surface, the second inner circumferential surface, the step portion, and the spacer portion; and a fastening device that fastens the first member and the second member to each other.
3. A pump apparatus comprising: an impeller; a pump shaft to which the impeller is secured; a pump casing in which the impeller is housed; a shaft-sealing device that seals a gap between the pump casing and the pump shaft; a motor having a motor shaft; and a shaft coupling that couples the motor shaft and the pump shaft to each other, the shaft coupling including a first inner circumferential surface contacting an outer circumferential surface of the motor shaft, a second inner circumferential surface contacting an outer circumferential surface of the pump shaft, a step portion protruding radially inwardly from the first inner circumferential surface, the step portion being in contact with an end portion of the motor shaft, and a spacer portion located between the step portion and the second inner circumferential surface.
4. The pump apparatus according to claim 3, wherein a distance between the end portion of the motor shaft and the end portion of the pump shaft is larger than an axial length of the shaft-sealing device.
5. The pump apparatus according to claim 3, wherein: the shaft coupling further includes a first member and a second member which are divided along an axial direction of the shaft coupling, and a fastening device that fastens the first member and the second member to each other, and the first member and the second member include the first inner circumferential surface, the second inner circumferential surface, the step portion, and the spacer portion.
6. The pump apparatus according to claim 3, further comprising: a positioning element configured to fix a relative position of the second inner circumferential surface and the pump shaft.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
DESCRIPTION OF EMBODIMENTS
[0024] Embodiments of the present invention will now be described with reference to the drawings.
[0025]
[0026] In this embodiment, the pump shaft 1 and the motor shaft 6 are arranged in a vertical position. The plurality of impellers 3 are arranged so as to face in the same direction. The pump casing 5 has a plurality of inner casings 5A in which the plurality of impellers 3 are housed, respectively, an outer casing 5B in which the inner casings 5A are housed, and a connection casing 5C that connects the inner casing 5A and the outer casing 5B. Further, the pump casing 5 has a suction port 12 and a discharge port 13.
[0027] When the motor 7 is set in motion, the rotation of the motor 7 is transmitted from the motor shaft 6 to the pump shaft 1 via the shaft coupling 10, so that the pump shaft 1 and the impellers 3 rotate. When the impellers 3 rotate, a liquid flows into the pump casing 5 through the suction port 12, and is pressurized by the rotation of each stage of the impellers 3. The pressurized liquid flows out from the inner casings 5A through a plurality of through-holes 18 formed in the connection casing 5C. The liquid further flows through a flow path 19 which is formed between the inner casings 5A and the outer casing 5B, and is then discharged through the discharge port 13.
[0028] The pump apparatus includes a mechanical seal 14 which is a shaft-sealing device that seals a gap between the pump casing 5 and the pump shaft 1. This mechanical seal 14 is disposed in the connection casing 5C of the pump casing 5. The mechanical seal 14 is configured to prevent the leakage of the pressurized liquid from the pump casing 5.
[0029] The above-described pump apparatus is a multistage pump apparatus having the plurality of impellers 3, while the present invention can also be applied to a single-stage pump apparatus having only one impeller.
[0030]
[0031] The shaft coupling 10 has a first inner circumferential surface 23 that contacts an outer circumferential surface of the motor shaft 6, a second inner circumferential surface 24 that contacts an outer circumferential surface of the pump shaft 1, a step portion 26 protruding radially inwardly from the first inner circumferential surface 23 and contacting the end portion of the motor shaft 6, and a spacer portion 28 located between the step portion 26 and the second inner circumferential surface 24. The step portion 26 is located between the first inner circumferential surface 23 and the spacer portion 28. From a viewpoint of productivity and rotational balance, it is preferable that the step portion 26 be formed over the entire circumference of the first inner circumferential surface 23 facing the motor shaft 6 as viewed from the axial direction of the motor shaft 6. However, the step portion 26 may be partially formed. The first member 20A and the second member 20B have the first inner circumferential surface 23, the second inner circumferential surface 24, the step portion 26, and the spacer portion 28. Therefore, each of the first inner circumferential surface 23, the second inner circumferential surface 24, the step portion 26, and the spacer portion 28 is also divided into two along the axial direction.
[0032] Positioning pins 31, protruding outwardly, are secured to the pump shaft 1. Positioning holes 32, into which the positioning pins 31 are inserted respectively, are formed in the second inner circumferential surface 24 of the shaft coupling 10. The positioning pins 31 and the positioning holes 32 constitute a positioning element for fixing the relative position of the shaft coupling 10 and the pump shaft 1. It is noted that the positioning element is not limited to the positioning pins 31 and the positioning holes 32 illustrated in this embodiment. For example, the positioning element may include a screw hole formed in the second inner circumferential surface 24 of the shaft coupling 10, a positioning screw screwed into the screw hole, and a positioning hole formed in the pump shaft 1 with which the distal end of the positioning screw engages.
[0033] When the screws 22 are tightened while the end portion (the lower end in this embodiment) of the motor shaft 6 is in contact with the step portion 26, the first inner circumferential surface 23 of the shaft coupling 10 is pressed strongly against the outer circumferential surface of the motor shaft 6, so that the relative position of the first inner circumferential surface 23 and the motor shaft 6, i.e., the relative position of the shaft coupling 10 and the motor shaft 6, is fixed. The relative position of the second inner circumferential surface 24 of the shaft coupling 10 and the pump shaft 1 is fixed by the positioning pins 31 and the positioning holes 32.
[0034] The end portions of the motor shaft 6 and the pump shaft 1, coupled by the shaft coupling 10 according to the present embodiment, are spaced from each other. The end portion of the motor shaft 6 is in contact with the step portion 26, and the spacer portion 28 is present between the step portion 26 and the second inner circumferential surface 24. Therefore, the step portion 26 and the spacer portion 28 exist between the end portion of the motor shaft 6 and the end portion of the pump shaft 1. The distance between the end portion of the motor shaft 6 and the end portion of the pump shaft 1 is larger than the axial length of the mechanical seal 14. The shaft coupling 10 coupling the motor shaft 6 and the pump shaft 1 in a state in which the end portion of the motor shaft 6 and the end portion of the pump shaft 1 are spaced is called a spacer coupling.
[0035] The mechanical seal 14 is a device which is to be replaced regularly. In this embodiment, the replacement of the mechanical seal 14 is performed as follows. First, the screws 22 are removed, so that the shaft coupling 10 is removed from the motor shaft 6 and the pump shaft 1. Next, the mechanical seal 14 is raised along the pump shaft 1, and the mechanical seal 14 is removed from the gap between the end portion of the motor shaft 6 and the end portion of the pump shaft 1. Then, a new mechanical seal is moved downward from the gap along the pump shaft 1. Next, with the end portion of the motor shaft 6 contacting the step portion 26 and with the positioning pins 31 being inserted in the positioning holes 32, the screws 22 are tightened, whereby the shaft coupling 10 is secured to the motor shaft 6 and the pump shaft 1. The mechanical seal 14 is then further moved downward along the pump shaft 1 and secured to the pump casing 5.
[0036] According to the shaft coupling 10 of this embodiment, when the end portion of the motor shaft 6 is brought into contact with the step portion 26 of the shaft coupling 10, the positioning of the shaft coupling 10 with respect to the motor shaft 6 is achieved. As a result, the axial positioning of the pump shaft 1 coupled to the shaft coupling 10 is achieved. Since it is not necessary to perform special machining on the motor shaft 6, the pump apparatus can be made using a general-purpose motor. Therefore, the manufacturing cost of the pump apparatus can be reduced. Further, according to the shaft coupling 10 of this embodiment, positioning of the shaft coupling 10 with respect to the motor shaft 6 is achieved by simply bringing the end portion of the motor shaft 6 into contact with the step portion 26. Therefore, any special positioning tool is not necessary.
[0037] The previous description of embodiments is provided to enable a person skilled in the art to make and use the present invention. Moreover, various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles and specific examples defined herein may be applied to other embodiments. Therefore, the present invention is not intended to be limited to the embodiments described herein but is to be accorded the widest scope as defined by limitation of the claims.
INDUSTRIAL APPLICABILITY
[0038] The present invention is applicable to a shaft coupling (also referred to as a spacer coupling) that couples a motor shaft and a pump shaft while both shafts are spaced from each other. The present invention is further applicable to a pump apparatus having such a shaft coupling.
REFERENCE SIGNS LIST
[0039] 1 pump shaft [0040] 3 impeller [0041] 5 pump casing [0042] 6 motor shaft [0043] 7 motor [0044] 10 shaft coupling [0045] 12 suction port [0046] 13 discharge port [0047] 14 mechanical seal [0048] 18 hole [0049] 19 flow path [0050] 20A first member [0051] 20B second member [0052] 21 gap [0053] 22 screw [0054] 23 first inner circumferential surface [0055] 24 second inner circumferential surface [0056] 26 step portion [0057] 28 spacer portion [0058] 31 positioning pin [0059] 32 positioning hole