Regenerative-type fluid machinery having a guide vane on a channel wall
09551354 ยท 2017-01-24
Assignee
Inventors
Cpc classification
F04D29/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A regenerative fluid machine having guide vanes on a flow channel wall is disclosed. The regenerative fluid machine includes a circular plate-shaped impeller having a plurality of vanes radially formed on an outer circumference thereof at regular intervals, casings in which the impeller is housed, and flow channels, each of which has a suction hole and a discharge hole in opposite ends thereof, and which are circumferentially disposed within the casings so as to face the vanes. The plurality of guide vanes having an inclined angle () with respect to a radial direction protrude from the flow channel wall in a rotational direction of the impeller so that a relative inflow angle () of the fluid introduced into the impeller grooves is increased and thus an absolute inflow angle () is decreased.
Claims
1. A regenerative fluid machine having guide vanes on a flow channel wall comprising: a circular plate-shaped impeller (10) that has a plurality of vanes (12) radially formed on an outer circumference thereof at regular intervals; casings (20) in which the impeller (10) is housed; and flow channels (30), each of which has a suction hole (32) and a discharge hole (34) in opposite ends thereof, and which are circumferentially formed in the casings so as to face the vanes (10), wherein the plurality of guide vanes (40) throughout an entire wall (30a, 30b, 30c) of each flow channel (30), wherein the plurality of guide vanes (40) are inclined in a direction opposite a rotational direction of the impeller (10) with an inclined angle (), wherein an inner peripheral portion of each of the plurality of guide vanes is curved outwardly toward the rotational direction of the impeller, and wherein the plurality of guide vanes (40) are configured to increase a relative inflow angle () of a fluid introduced into impeller grooves (14), and decrease an absolute inflow angle () of the fluid, and wherein the guide vanes (40) are formed at a height of 5 to 30% of a depth of the flow channel (30) and formed on at least of an area of the flow channel (30) excluding the suction hole (32) and the discharge hole (34).
2. The regenerative fluid machine of claim 1, wherein the inclined angle () of the guide vanes (40) ranges from 30 to 80.
3. The regenerative fluid machine of claim 1, wherein the interval between the guide vanes (40) is the same as that between the vanes (12).
Description
DESCRIPTION OF DRAWINGS
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BEST MODE
(9) Hereinafter, preferred embodiments of the present invention will be described in further detail with reference to the accompanying drawings. The same components will be denoted by the same reference numerals although they are shown in different drawings.
(10) First, a configuration of a regenerative fluid machine according to the present invention having guide vanes formed on a flow channel wall will be described.
(11) Before a description is made, it should be noted in advance that the present invention can be applied to various regenerative fluid machines such as an air blower and a regenerative pump including a ring blower. In addition, since a configuration and operational effects of the impeller 10 according to the present invention are the same as those in the description of the Background Art, a repeated description will be omitted, and a related description will be made with reference to
(12) An impeller 10 has a circular plate shape, and includes a plurality of vanes 12 that are radially formed on an outer circumference or circumferences of one or both faces thereof at regular intervals. In addition, impeller grooves 14 are formed between the vanes 12. As shown in
(13) The impeller 10 is provided in casings 20 in which flow channels 30 are formed so as to correspond to the impeller grooves 14. The regenerative fluid machine having such a structure is called a side channel type. The impeller 10 of the side channel type may have only the vanes 12 without the impeller grooves 14. On the other hand, although not shown in the drawings, there is an open channel type in which the impeller 10 has an open radial end and is provided with the flow channels 30 along an outer circumference thereof. It should be noted in advance that the regenerative fluid machine according to the present invention can be applied to the open channel type in addition to the side channel type.
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(15) It is preferable that the flow channels 30 have a cross section corresponding to the impeller grooves 14. According to the embodiment, as shown in
(16) A plurality of guide vanes 40 function to change an inflow angle of the fluid introduced into the impeller grooves 14. As in
(17) The guide vanes 40 may be designed to have various cross sections such as a trapezoid, a triangle, a semicircle, or an ellipse in consideration of flow resistance of the fluid
(18) In addition, it is preferable that the guide vanes 40 are formed at a height of about 5 to 30% of a depth of each flow channel 30 according to the flow characteristic of the fluid. This is intended to maintain a function of guiding the fluid to the impeller grooves 14 (which will be described below) without interfering with the flow of the fluid in the flow channel 30.
(19) On the other hand, as shown in
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(21) In addition, as shown in
(22) Hereinafter, an operational effect of the regenerative fluid machine having the guide vanes on the flow channel wall according to the present invention with the above-mentioned configuration will be described.
(23) First, a circulation flow of the fluid in the impeller grooves 14 will be described with reference to
(24) Next, the fluid introduced from the outside of the impeller grooves 14 into the flow channels 30 flows inside the impeller grooves 14 along left sides of the guide vanes 40 illustrated in
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(26) In the conventional regenerative fluid machine, an absolute velocity Va and a relative velocity Vc of the fluid introduced into the impeller grooves 14 have an absolute inflow angle and a relative inflow angle with respect to a velocity Vb of the impeller 10.
(27) In the regenerative fluid machine according to the present invention, the wall of the flow channel 30 is provided with the plurality of guide vanes 40, and thereby the absolute inflow angle of the fluid is decreased to an angle . As a result, the absolute velocity Va increases to an absolute velocity Va. In this case, since the velocity Vb of the impeller is constant, and the absolute velocity Va increases to the absolute velocity Va, the relative velocity Vc of the fluid introduced into the impeller grooves 14 decreases to a relative velocity Vc, and the relative inflow angle increases to a relative inflow angle .
(28) As a result, the relative inflow angle increases to allow the fluid to be introduced into the impeller grooves 14 so as to be approximately parallel to the vanes 12. Thereby, the energy loss caused by eddies generated within the impeller grooves 14 can be minimized.
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(30) However, the regenerative fluid machine according to the present invention is provided with the plurality of guide vanes 40. A streamline B indicated by a broken line is provided. In other words, the flow is outwardly curved at the radial inner side of the flow channel 30, thereby having the streamline B along the shape of the guide vanes 40. The guide vanes 40 guide the flow of the fluid in the flow channel 30, and thereby the streamline B is formed, and the absolute inflow angle of the fluid introduced into the impeller grooves 14 is decreased.
(31) While the present invention has been described with reference to the embodiments and accompanying drawings, it should be interpreted that terms or words used in the description and claims should not be interpreted as being limited merely to common and dictionary meanings but should be interpreted as having meanings and concepts which are defined within the technical scope of the present invention. Although the preferred embodiments of the present invention have been disclosed for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention as disclosed in the accompanying claims.