SHAFT, RADIAL COMPRESSOR AND METHOD FOR PRODUCING A RADIAL COMPRESSOR
20200158124 ยท 2020-05-21
Inventors
Cpc classification
F04D29/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/584
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/61
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/0606
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2300/0212
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/61
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/0563
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/054
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/5806
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/053
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a shaft for supplying air to a fuel cell, comprising a tubular body (12), at least sections of which are hollow, and which has a first component (14) and a second component (16) that are connected to one another at respective neighbouring axial end sections (14a, 16a), and wherein air can flow through a hollow space (12a) of the tubular body (12) for cooling components arranged next to the shaft (10). The invention also relates to a radial compressor (1). The invention further relates to a method for producing a radial compressor (1).
Claims
1. A shaft (10) for a radial compressor (1) for the air supply of a fuel cell, the shaft (10) having a tubular body (12) which is of hollow configuration at least in sections and has a first component (14) and a second component (16) which are connected to one another on respective first axial end sections (14a, 16a) arranged adjacently with respect to one another, the shaft (10) being configured to allow air to flow through a cavity (12a) of the tubular body (12) in order to cool components which are arranged adjacently with respect to the shaft (10).
2. The shaft as claimed in claim 1, characterized in that the first component (14) and the second component (16) are connected to one another by way of friction welding.
3. The shaft as claimed in claim 1, characterized in that, on the first axial end section (14a) of the first component which is arranged adjacently with respect to a connecting point (19) of the first component (14) to the second component (16), the first component (14) has a bore (20a) of a first diameter which extends in an axial direction (A) of the first component (14) and is adjoined by a section (20b) of variable diameter which is adjoined by a bore (20c) of a second diameter which extends in the axial direction (A) of the first component (14).
4. The shaft as claimed in claim 1, characterized in that, on the first axial end section (16a) of the second component which is arranged adjacently with respect to a connecting point (19) of the second component (16) to the first component (14), the second component (16) has a bore (22a) of a first diameter which extends in an axial direction (A) of the second component (16) and is adjoined by a section (22b) of variable diameter which is adjoined by a bore (22c) of a second diameter which extends in the axial direction (A) of the second component (16).
5. The shaft as claimed in claim 3, characterized in that the bore (20a, 22a) of a first diameter of the first component (14) and of the second component (16) has a smaller diameter than the bore (20c, 22c) of a second diameter of the first component (14) and of the second component (16), the section (20b, 22b) of variable diameter which is made in the first component (14) and the second component (16) being configured in such a way that the diameter increases in a substantially linear manner from the first bore (20a, 22a) to the second bore (20c, 22c).
6. The shaft as claimed in claim 3, characterized in that, on a second axial end section (14b) which is arranged adjacently with respect to a compressor impeller (24), the first component (14) has a central bore (26) which is arranged in a region of a center longitudinal axis (M) of the first component (14), extends in the axial direction (A) of the first component (14), and communicates fluidically with the bore (20c) of a second diameter which is made in the first component (14).
7. The shaft as claimed in claim 6, characterized in that the tubular body (12) has a transverse bore (28) which is arranged in the region of the bore (22c) of a second diameter of the second component (16), and which communicates fluidically with the bore (22c) of a second diameter of the second component (16).
8. The shaft as claimed in claim 7, wherein the shaft (10) is configured such that air which flows into the cavity (12a) of the tubular body (12) through the central opening (26) can be conducted through the cavity (12a) of the tubular body (12), and such that the air can flow out of the cavity (12a) of the tubular body (12) through the transverse bore (28) which is arranged in the region of the bore (22c) of a second diameter of the second component (16).
9. The shaft as claimed in claim 7, characterized in that the cavity (12a) of the tubular body (12) has an air guiding element (30) which is configured to deflect an air flow (L) from an axial flow into a radial flow and to feed it to the transverse bore (28).
10. A radial compressor (1) for the air supply of a fuel cell, with a running gear having a shaft (10) as claimed in claim 1, to which at least one compressor impeller (24) is flange-connected; and with an electric motor (32) which is configured to drive the shaft (10).
11. A method for producing a radial compressor (1) for the air supply of a fuel cell, the method comprising the steps: providing (S1) a tubular body (12) which has a first component (14) and a second component (16); making (S2) a bore which is stepped at least in sections in the first component (14) and in the second component (16); connecting the first component (14) and the second component (16) on respective axial end sections of the first component (14) and of the second component (16), which axial end sections are arranged adjacently with respect to one another, such that air can flow through a cavity (12a) of the tubular body (12) which is of hollow configuration at least in sections in order to cool components which are arranged adjacently with respect to the shaft (10).
12. The shaft as claimed in claim 6, characterized in that the tubular body (12) has a transverse bore (28) which is arranged so as to run around the tubular body (12), which is arranged in the region of the bore (22c) of a second diameter of the second component (16), and which communicates fluidically with the bore (22c) of a second diameter of the second component (16).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The appended drawings are intended to impart further understanding of the embodiments of the invention. They illustrate embodiments and, in conjunction with the description, serve to describe principles and concepts of the invention.
[0022] Other embodiments and many of the mentioned advantages result with regard to the drawings. The illustrated elements of the drawings are not necessarily shown to scale with respect to one another.
[0023] In the drawings:
[0024]
[0025]
DETAILED DESCRIPTION
[0026] In the figures of the drawings, identical designations denote identical or functionally identical elements, structural parts or components unless indicated otherwise.
[0027]
[0028] The shaft 10 for the radial compressor 1 for the air supply of a fuel cell has a tubular body 12 which is of hollow configuration at least in sections. The tubular body 12 has a first component 14 and a second component 16 which are connected to one another on respective axial end sections 14a, 16a which are arranged adjacently with respect to one another. Air can flow through a cavity 12a of the tubular body 12 in order to cool components which are arranged adjacently with respect to the shaft 10. The components are configured, for example, by way of an electric motor 32 and/or a bearing of the shaft.
[0029] The first component 14 and the second component 16 are preferably connected to one another by way of friction welding. As an alternative, the first component 14 and the second component 16 can be connected to one another by way of a conventional welded connection or another joint. A friction welded seam 17 is configured substantially in the radial direction R of the shaft 10 and in a substantially central region 18 in the axial direction A of the shaft 10.
[0030] On a first axial end section 14a which is arranged adjacently with respect to a connecting point 19 of the first component 14 to the second component 16, the first component 14 has a bore 20a of a first diameter which extends in the axial direction A of the first component 14. The bore 20a of a first diameter is adjoined by a section 20b of variable diameter. In turn, the section 20b of variable diameter is adjoined by a bore 20c of a second diameter which extends in the axial direction A of the first component 14.
[0031] The bore 20a of a first diameter of the first component 14 has a smaller diameter than the bore 20c of the second diameter of the first component 14. The section 20b of variable diameter which is made in the first component 14 is configured in such a way that the diameter increases in a substantially linear manner from the first bore 20a to the second bore 20c.
[0032] On a first axial end section 16a which is arranged adjacently with respect to a connecting point 19 of the second component 16 to the first component 14, the second component 16 has a bore 22a of a first diameter which extends in the axial direction A of the second component 16. The bore 22a of a first diameter is adjoined by a section 22b of variable diameter. In turn, the section 22b of variable diameter is adjoined by a bore 22c of the second diameter which extends in the axial direction A of the second component 16.
[0033] The bore 22a of a first diameter of the second component 16 has a smaller diameter than the bore 22c of the second diameter of the second component 16. The section 22b of variable diameter which is made in the second component 16 is configured in such a way that the diameter increases in a substantially linear manner from the first bore 22a to the second bore 22c. On a second axial end section 14b which is arranged adjacently with respect to a compressor impeller 24, the first component 14 has a central bore 26 which is arranged in the region of a center longitudinal axis M of the first component 14. The central bore 26 extends in the axial direction A of the first component 14 and communicates fluidically with the bore 20c of the second diameter which is made in the first component 14.
[0034] The tubular body 12 has a transverse bore 28 which is preferably arranged so as to run around the tubular body 12. The transverse bore 28 is arranged in the region of the bore 22c of the second diameter of the second component 16, and communicates fluidically with the bore 22c of the second diameter of the second component 16.
[0035] Air which flows into the cavity 12a of the tubular body 12 through the central opening 26 can be conducted through the cavity 12a of the tubular body 12. Here, the air can flow out of the cavity 12a of the tubular body 12 through the transverse bore 28 which is arranged in the region of the bore 22c of a second diameter of the second component 16.
[0036] The cavity 12a of the tubular body 12 has an air guiding element 30. The air guiding element 30 is configured to deflect an air flow L from an axial flow into a radial flow and to therefore feed it to the transverse bore.
[0037] A compressor impeller 24 is arranged on the shaft 10 in the region of the central opening 26 or the second axial end section 14b of the first component 14. Furthermore, an axial bearing 25 is arranged between the compressor impeller 24 and the tubular body 12. Moreover, a turbine impeller 34 is flange-connected to a second axial end section 16b of the second component 16. The turbine impeller 34 is optional. Moreover, a permanent magnet 36 of the electric motor 32 for driving the shaft 10 is arranged in the central region 18. The permanent magnet 36 is fixed positionally by a tie bar 38 made from steel or carbon, for example.
[0038]
[0039] Furthermore, the method comprises making S2 of a bore which is stepped at least in sections in the first component and in the second component.
[0040] Furthermore, the method comprises connecting S3 of the first component and the second component on respective axial end sections of the first component and the second component, which axial end sections are arranged adjacently with respect to one another, it being possible for air to flow through a cavity of the tubular body which is of hollow configuration at least in sections in order to cool components which are arranged adjacently with respect to the shaft.
[0041] Although the present invention has been described in the preceding text on the basis of preferred exemplary embodiments, it is not restricted thereto, but rather can be modified in a wide variety of ways. In particular, the invention can be amended or modified in various ways, without departing from the core concept of the invention.
[0042] For example, a shape, dimension and/or composition of the components of the shaft can be modified in accordance with respective design and/or structural requirements.