Casing liner for sewage pump and sewage pump with the same
09835168 · 2017-12-05
Assignee
Inventors
- Hiroshi Uchida (Tokyo, JP)
- Masahito KAWAI (Tokyo, JP)
- Hiromi Sakacho (Tokyo, JP)
- Masashi Obuchi (Tokyo, JP)
- Miho ISONO (Tokyo, JP)
Cpc classification
F04D29/2288
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D7/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E03F2201/00
FIXED CONSTRUCTIONS
F04D29/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/4286
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E03F5/22
FIXED CONSTRUCTIONS
International classification
E03F5/22
FIXED CONSTRUCTIONS
F04D7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A casing liner used for a sewage pump includes a surface to face an edge of a blade of an impeller when the casing liner is assembled with the impeller into the sewage pump. At least one groove with given width is formed in at least a part of the surface. The groove includes a first section with given depth, which is located on the side close to a rotational center of the impeller, a second section smaller in depth than the first section, which is located on the side far from the rotational center of the impeller, and a third section that is an inclined face connecting the first and second sections, the first to third sections being arranged in a width direction of the groove.
Claims
1. A casing liner used for a sewage pump, the casing liner comprising: a surface to face an edge of a blade of an impeller when the casing liner is assembled with the impeller into the sewage pump, wherein at least one groove with given width is formed in at least a part of the surface, and the groove includes a first section with given depth, which is located on the side close to a rotational center of the impeller, a second section smaller in depth than the first section, which is located on the side far from the rotational center of the impeller, and a third section that is an inclined face connecting the first and second sections, the first to third sections being arranged in a width direction of the groove, wherein an inclination of the bottom surface of the groove changes across a boundary of the first and third sections and across a boundary of the second and third sections.
2. The casing liner according to claim 1, wherein the first and second sections are substantially parallel to an inner wall surface of the casing liner.
3. The casing liner according to claim 1, wherein both ends of the groove are formed into walls substantially perpendicular to the surface of the casing liner.
4. The casing liner according to claim 1, wherein the groove is formed into a spiral extending from a portion corresponding to a suction end of the impeller toward a portion corresponding to an outlet end of the impeller.
5. The casing liner according to claim 1, wherein the groove is formed into a spiral extending in the same direction as a rotational direction of the impeller to approach an outer circumference of the casing liner.
6. The casing liner according to claim 1, wherein the groove is formed within an area where the edge of the blade faces the casing liner when the casing liner is assembled with the impeller into the sewage pump.
7. A sewage pump comprising the casing liner of claim 1, the impeller facing the casing liner, a rotary shaft on which the impeller is mounted, and a motor configured to rotate the rotary shaft.
8. The sewage pump according to claim 7, wherein a suction end of a blade of the impeller extends from the rotational center side radially outward in an opposite direction to the rotational direction of the impeller.
9. The sewage pump according to claim 7, wherein the impeller is of a semi-open type.
10. A casing liner used for a sewage pump, the casing liner comprising: a surface to face an edge of a blade of an impeller when the casing liner is assembled with the impeller into the sewage pump, wherein at least one groove with given width is formed in at least a part of the surface, and the groove includes a first section with given depth, which is located on the side close to a rotational center of the impeller, a second section smaller in depth than the first section, which is located on the side far from the rotational center of the impeller, and a third section that is an inclined face connecting the first and second sections, the first to third sections being arranged in a width direction of the groove, wherein the first and second sections are substantially parallel to an inner wall surface of the casing liner.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF EMBODIMENTS
(7) A first embodiment provides a casing liner used for a sewage pump. The casing liner includes a surface to face an edge of a blade of an impeller when the casing liner is assembled with the impeller into the sewage pump. At least one groove with given width is formed in at least a part of the surface. The groove includes a first section with given depth, which is located on the side close to a rotational center of the impeller, a second section smaller in depth than the first section, which is located on the side far from the rotational center of the impeller, and a third section that is an inclined face connecting the first and second sections, the first to third sections being arranged in a width direction of the groove.
(8) When the sewage pump thus configured is used to pump sewage, the sewage occasionally contains long fibrous refuse and volumes of large refuse. In such a case, the fibrous refuse sometimes gets tangled in a suction end of the impeller. The refuse which is about to get tangled in the suction end of the impeller is forced to move in a radially outward direction of the impeller by centrifugal force. When the refuse reaches the outermost circumference of the suction end of the impeller, sewage flow forces the refuse into a gap between the impeller and the casing liner. The refuse thus forced into the gap is shredded by the groove formed in the casing liner and the edge of the blade facing the casing liner. If the fibrous refuse or volumes of large refuse, which has been shredded, enters the groove, the refuse is detached from the groove due to water flow velocity and refuse transfer speed (acceleration rate) which are changed by the third section that is the inclined face connecting the first and second sections of the groove, and (due to the changed refuse transfer speed) the refuse can be smoothly removed from the groove.
(9) According to a second embodiment, in addition to the first embodiment, the first and second sections are substantially parallel to an inner wall surface of the casing liner.
(10) According to a third embodiment, in addition to the first or second embodiment, both ends of the groove are formed into walls substantially perpendicular to the surface of the casing liner.
(11) According to a fourth embodiment, in addition to any one of the first to third embodiments, the groove is formed into a spiral extending from a portion which coincides with a suction end of the impeller toward a portion which coincides with an outlet end of the impeller.
(12) According to a fifth embodiment, in addition to any one of the first to fourth embodiments, the groove is formed into a spiral extending in the same direction as a rotational direction of the impeller to approach an outer circumference of the casing liner.
(13) According to a sixth embodiment, in addition to any one of the first to fifth embodiments, the groove is formed within an area where the edge of the blade faces the casing liner when the casing liner is assembled with the impeller into the sewage pump.
(14) A seventh embodiment provides a sewage pump. The sewage pump includes the casing liner of any one of the first to sixth embodiments, an impeller facing the casing liner, a rotary shaft on which the impeller is mounted, and a motor configured to rotate the rotary shaft.
(15) According to an eighth embodiment, in addition to the seventh embodiment, a suction end of a blade of the impeller extends from a rotational center side radially outward in an opposite direction to the rotational direction of the impeller.
(16) According to a ninth embodiment, in addition to the seventh or eighth embodiment, the impeller is of a semi-open type. The above-described embodiments will be described below in further details based on specific examples thereof.
(17) <General Outline>
(18) One embodiment of the invention will be described below with reference to the attached drawings.
(19) A discharge port 7 is formed in the pump casing 2. The pump casing 2 is further provided with a pump casing foots 8 that are necessary for installation of the sewage pump. In the pump casing cover 11, a shaft seal mechanism 13 for sealing leakage water rising through a gap between the pump casing cover 11 and the rotary shaft 14 is located close to the motor 15. Disposed around the shaft seal mechanism 13 is a lubricant oil chamber 10 for containing lubricating oil for lubricating the shaft seal mechanism 13. A spacer 12 is disposed between the pump casing cover 11 and the motor 15, and supports the shaft seal mechanism 13 from above. The shaft seal mechanism 13 is further supported from below by the pump casing cover 11. In this manner, the shaft seal mechanism 13 is configured to be fastened by both the spacer 12 and the pump casing cover 11. A power cable 17 and a suspension device 16 are mounted on the top of the motor 15.
(20) The impeller 1 includes one or more blades and is provided with a rib 9 for eliminating foreign objects mixed in high-pressure water that has flowed around the back of a main shroud. The rib 9 works when the impeller 1 is rotated. The blade of the impeller 1 includes an edge facing a surface of the casing liner 6. A suction port 3 opens in a lower part of the casing liner 6. The impeller 1 of the present embodiment includes two blades.
(21) <Groove>
(22) A spiral-shaped groove will be described below with reference to
(23) As illustrated in
(24) A cross-sectional shape of the groove 18 will be described below with reference to
(25) Definitions will be given below for the wordings, “the side where foreign objects enter” and “the side where foreign objects leave”. With reference to
(26) <Operation>
(27) Operation of the casing liner 6 and the groove 18 formed therein according to the present embodiment will be described with reference to
(28) After passing the outermost circumference of the suction end 4, the fibrous refuse enters between the edge of the blade and the casing liner 6 due to the sewage flow. If the fibrous refuse exists at intersection of the edge of the blade and the groove 18, the vertical faces 19 and 20 of the groove 18 and the edge of the blade operate to shred fibrous refuse G as illustrated in
(29) In addition to the operation described above, the present embodiment provides another special operation, which is achieved by a distinctive cross-sectional shape of the groove 18. As illustrated in
(30) There is a great angular difference between the third section 23 and the second section 22, namely, an inclined plane and a horizontal plane, respectively. The refuse is therefore detached from the surface of the second section 22 because of the velocity component given to the refuse, which is oriented toward the inner wall surface of the casing liner 6. The refuse is then easily eliminated from the groove 18 and flows downward with the sewage. To put it another way, the groove 18 of the present embodiment is formed of a combination of the first and second sections 21 and 22 with the third section 23 interposed therebetween, the first and second sections 21 and 22 being substantially parallel to each other, and the third section 23 being inclined relative to the first and second sections 21 and 22. This combination inhibits the refuse from accumulating in the groove 18. Moreover, since the groove 18 is formed into a spiral which extends from the suction port 3 of the casing liner 6 to the outlet end, the refuse is pushed along the spiral-shaped groove 18 and discharged to the outlet end of the blade.
(31) As described above, the fibrous refuse and volumes of large refuse, which have been shredded by the groove 18 of the casing liner and the edge of the blade, are discharged toward the outlet end of the impeller 1 without being accumulated, due to the operation of the groove 18.
(32) <Second Embodiment>
(33)
(34) <Third Embodiment>
(35) A third embodiment illustrated in
INDUSTRIAL APPLICABILITY
(36) The present invention is applicable to a casing liner for a centrifugal sewage pump.
(37) The present application claims the priority of the Japanese Patent Application No. 2014-112800 filed on May 30, 2014 in Japan. This disclosure is incorporated herein by reference in its entirety.