Radial blower
11333158 · 2022-05-17
Assignee
Inventors
- Andreas LEHR (Edlibach, CH)
- Michael BÜTIKOFER (Affoltem am Albis, CH)
- David MURI (Kriens, CH)
- Markus Maier (Baar, CH)
Cpc classification
F04D29/056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/4206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/0513
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A radial blower, in particular for a cooling machine, comprising a housing in which a shaft is rotationally mounted, which receives at least one impeller wheel of a compressor at one end, which is secured to the housing, comprising at least one radial bearing and at least one axial bearing via which the shaft is rotationally mounted in the housing, and comprising a motor driven by a rotor and a stator and provided between the first and the second radial bearing, wherein at least one channel having a pressure connection for a pressure medium to be supplied is provided in the housing, which channel feeds into a rotor space formed between the shaft and the housing and extending from the impeller wheel to the radial bearing or axial bearing, which is provided next to the impeller wheel.
Claims
1. A radial blower for a cooling machine, comprising: a housing, in which a shaft is rotatably mounted, which, on one end, receives at least one impeller of a compressor which is fixed on the housing, at least two radial bearings including first and second radial bearings, and having at least one axial gas bearing by means of which the shaft is rotatably mounted in the housing, and an engine driven by a rotor and stator, which is provided between the first and the second radial bearing, and wherein in the housing, at least one channel is provided with a pressure port for a pressure medium to be supplied, which opens out into a rotor chamber, which is formed between the shaft and the housing, and the rotor chamber extends from the impeller to the axial gas bearing, which is provided adjacently to the impeller, and wherein the channel provided between the impeller and the axial gas bearing in the housing leads into the rotor chamber in the housing and a gas chamber of the compressor, wherein the rotor chamber is connected to a working gap between an axial stator and a plate of the axial gas bearing, and the axial bearing sealingly borders the rotor chamber.
2. The radial blower according to claim 1, wherein the axial gas bearing is positioned between a radial bearing allocated to the engine and the impeller.
3. The radial blower according to claim 1, wherein the at least one radial bearing is formed as a radial gas bearing, and the at least one radial gas bearing is connected to the adjacent axial gas bearing by means of the common rotor chamber.
4. The radial blower according to claim 1, wherein a heating device is provided abutting on the axial gas bearing or adjacently to the axial gas bearing.
5. The radial blower according to claim 1, wherein in an operating state, the housing with the compressor arranged thereon is aligned vertically, wherein the compressor is aligned downwardly and the housing upwardly.
6. A radial blower for a cooling machine, comprising: a housing, in which a shaft is rotatably mounted, which, on one end, receives at least one impeller of a compressor which is fixed on the housing, at least two radial bearings including first and second radial bearings, and having at least one axial gas bearing by means of which the shaft is rotatably mounted in the housing, and an engine driven by a rotor and stator, which is provided between the first and the second radial bearing, wherein in the housing, at least one channel is provided with a pressure port for a pressure medium to be supplied, which opens out into a rotor chamber, which is formed between the shaft and the housing, and the rotor chamber extends from the impeller to the axial gas bearing, which is provided adjacently to the impeller, and wherein a heating device is provided abutting on the axial gas bearing or adjacently to the axial gas bearing.
7. A radial blower for a cooling machine, comprising: a housing, in which a shaft is rotatably mounted, which, on one end, receives at least one impeller of a compressor which is fixed on the housing, at least two radial bearings including first and second radial bearings, and having at least one axial gas bearing by means of which the shaft is rotatably mounted in the housing, and an engine driven by a rotor and stator, which is provided between the first and the second radial bearing, wherein in the housing, at least one channel is provided with a pressure port for a pressure medium to be supplied, which opens out into a rotor chamber, which is formed between the shaft and the housing, and the rotor chamber extends from the impeller to the axial gas bearing, which is provided adjacently to the impeller, and wherein in an operating state, the housing with the compressor arranged thereon is aligned vertically, wherein the compressor is aligned downwardly and the housing upwardly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention and further advantageous embodiments and developments thereof are described and explained in more detail below by means of the examples depicted in the drawings. The features that can be seen in the description and the drawings can be applied according to the invention individually or together in any combination. Here are shown:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5) A cooling machine is depicted in
(6) The radial blower 11 is depicted in a longitudinal section in
(7) An axial gas bearing 31 is provided between the impeller 16 of the compressor 27 and the lower radial gas bearing 22. This axial gas bearing 31 comprises a rotating plate 32 and, adjacently to the plate 32 or on its upper side and lower side, axial stators 34, which each have stationary bearing surfaces 35. The plate 32 comprises rotating bearing surfaces 36, which lie opposite the stationary bearing surface 35. A channel 41, which is connected to the compression side 8 of the cooling machine 1, leads below the impeller 16 between the axial gas bearing 31 and impeller 16. The pressurised cooling medium is guided below the impeller 16 through this channel 41 in a gaseous state, in order to protect the axial gas bearing 31 from the ingress of particles.
(8) The rotating bearing surfaces 25 of the radial gas bearing 22 and/or the rotating bearing surfaces 36 of the axial gas bearing 31 preferably have surfaces which comprise grooves. Fishbone patterns are preferably provided. Such grooves or surface indentations are preferably introduced with an ultra-short pulsed laser, in particular picosecond laser. This enables a processing with very short processing times. Moreover, this processing step does not require reworking and meets the high demands of the precise design. The very short laser impulses in the microsecond range lead to a direct sublimation of the material. Thus, a production of these grooves can be provided which does not require reworking, in particular is free from burrs. In particular, an ion beam method is used. Alternatively, a micro-machining can also be provided.
(9) In an installation situation, the radial blower 11 is aligned vertically in the cooling machine. Here, the compressor 27 is aligned downwards, and the engine housing 21 is aligned vertically upwards. The radial blower 11 can advantageously be arranged directly above a flooded evaporator 4, such that, where necessary, condensate emerging when the cooling machine 1 is at a standstill flows downwards back into the evaporator 4.
(10) In
(11) A pressure port 54 for the pressurised cooling medium is provided on the engine housing 21, which is supplied to the channel 41. In a region in which the rotor chamber 46 and the gas chamber 49 are adjacent to each other, the cooling medium flows mainly in the direction of the gas chamber 49; the gas flow is held off through the axial bearing 31 in the counter-direction, which seals the rotor chamber 46.
(12) A seal between a pressure side of the compressor 27 and the engine housing 21 is carried out as a result of this arrangement. The compressor 27 is preferably formed as a multi-step compressor or turbo compressor. A first step forms the impeller 26, and the second step forms the impeller 16. In particular, the seal between the pressure side of the second step or the impeller 16 of the compressor 27 and the engine housing 21 of the radial blower 11 can be carried out. In this way, a lower pressure can be set in the engine housing than on the pressure side of the compressor 27, whereby a condensation of the cooling medium in the radial bearings 22, 23 is prevented.
(13) Furthermore, the pressure port 54 can preferably have a filter element. This ensures that no particles reach the compressor 27 and/or the axial gas bearing 31.
(14) This radial blower 11 can furthermore have a heating device 56 in the region of the axial gas bearing 31 or adjacent to an axial stator 34 or between the two axial stators 34. Such a heating device 56 serves to heat the axial gas bearing 31 to a temperature which is above the dew point of the cooling medium at an acting pressure. Thus, a condensation of the cooling medium can be prevented. Such a heating device 56 can be formed as an electrically driven heater, such as by a resistance heating element or a PTC element, for example.