Fan Wheel and Method for Making a Fan Wheel
20220389934 · 2022-12-08
Inventors
Cpc classification
F05D2300/50211
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/281
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E60/16
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F05D2300/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/668
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/662
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The disclosure concerns a fan wheel, including a base body with a rotational axis, and a swing part. The base body is made of a first material and the swing part is made of a second material. The density of the second material and the density of the first material are different. The swing part has a surface. The swing part is at least partially surrounded by the base body, so that the base body covers at least 80%, in particular at least 90%, preferably at least 95% of the surface of the swing part. The first material has a first thermal expansion coefficient, and the second material has a second thermal expansion coefficient. The second thermal expansion coefficient amounts to 70% to 110%, in particular 80% to 100%, preferably 85% to 95% of the first thermal expansion coefficient, and/or the swing part is substantially annular and runs fully closed around the rotational axis.
Claims
1.-16. (canceled)
17. A fan wheel, comprising: a base body defining a rotational axis; a swing part; said base body being made of a first material having a first density; said swing part being made of a second material having a second density; said second density and said first density being different; said swing part having a surface; said swing part being at least partially surrounded by said base body so that said base body covers at least 80% of said surface of said swing part; said first material having a first thermal expansion coefficient; said second material having a second thermal expansion coefficient; and, said second thermal expansion coefficient amounting to 70% to 110% of said first thermal expansion coefficient; and, said swing part being substantially annular and running fully closed around the rotational axis.
18. The fan wheel of claim 17, wherein said swing part is cast into said first material of said base body.
19. The fan wheel of claim 17, wherein as a result of said swing part, the fan wheel has an imbalance with respect to the rotational axis.
20. The fan wheel of claim 17, wherein said swing part has an imbalance with respect to the rotational axis.
21. The fan wheel of claim 17, wherein said swing part is symmetrical with respect to a plane of symmetry running perpendicularly to the rotational axis.
22. The fan wheel of claim 17, wherein said second density is greater than said first density.
23. The fan wheel of claim 22, wherein said second density is more than twice said first densityl.
24. The fan wheel of claim 17, wherein said base body has a first outer surface and a second outer surface; and, said first outer surface and said second outer surface are directed in opposite directions with respect to the rotational axis.
25. The fan wheel of claim 24 further comprising: a plurality of first fan wheel vanes arranged on said first outer surface; and, a plurality of second fan wheel vanes arranged on said second outer surface.
26. The fan wheel of claim 25, wherein adjacent ones of said plurality of first fan wheel vanes delimit a first air guiding surface on said first outer surface; and, adjacent ones of said plurality of second fan wheel vanes delimit a second air guiding surface on said second outer surface.
27. The fan wheel of claim 24, wherein said swing part has a center of gravity; and, said center of gravity lies centrally between said first outer surface and said second outer surface with respect to a direction of the rotational axis.
28. The fan wheel of claim 24, wherein said swing part has a first lateral surface facing said first outer surface; said swing part has a second lateral surface facing said second outer surface; a contour of said first lateral surface follows a contour of said first outer surface; and, a contour of said second lateral surface follows a contour of said second outer surface.
29. The fan wheel of claim 24, wherein said first outer surface and said second outer surface mutually define an outer distance measured between each other in a direction of the rotational axis; and, said outer distance diminishes as a radial distance from the rotational axis increases.
30. The fan wheel of claim 17, wherein said first thermal expansion coefficient of said first material is between 21.10.sup.−6 K.sup.−1 and 23.10.sup.−6 K.sup.−1; and, said second thermal expansion coefficient of said second material is between 17.10.sup.−6 K.sup.−1 and 21.10.sup.−6 K.sup.−1.
31. The fan wheel of claim 17, wherein said first material is an aluminum alloy; and, said second material is a brass alloy.
32. The fan wheel of claim 17, wherein said base body covers at least 90% of the surface of said swing part.
33. The fan wheel of claim 17, wherein said base body covers at least 95% of the surface of said swing part.
34. The fan wheel of claim 17, wherein said second thermal expansion coefficient amounts to 80% to 100% of said first thermal expansion coefficient.
35. The fan wheel of claim 17, wherein said second thermal expansion coefficient amounts to 85% to 95% of said first thermal expansion coefficient.
36. A method for making a fan wheel having a base body with a rotational axis, and a swing part, wherein the base body is made of a first material and the swing part is made of a second material, wherein a second density of the second material and a first density of the first material are different, wherein the swing part is at least partially surrounded by the base body and the fan wheel has an alignment element for alignment relative to a crankshaft of a combustion engine, wherein, as a result of the swing part, the fan wheel has an imbalance with respect to the rotational axis, the method comprising: casting the swing part into the first material of the base body in a casting process step; and, establishing a position of the alignment element in said casting process step in which the swing part is cast into the base body so that a precise positioning of the imbalance of the fan wheel relative to the alignment element is achieved.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0034] The invention will now be described with reference to the drawings wherein:
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
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[0043]
[0044]
[0045]
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[0048]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0049]
[0050] The manually guided work apparatus 11 has a combustion engine 18 (shown in dotted lines in
[0051]
[0052] Alternatively, the fan wheel may have vanes on only one side. In other words, alternatively, it may be provided that fan wheel vanes are arranged on only one of the two outer surfaces 5 and 6 of the base body 2.
[0053] The second fan wheel vanes 8 on the second outer surface 6 of the base body 2 are used to convey cooling air for cooling the combustion engine 18. In this embodiment, the first fan wheel vanes 7 on the first outer surface 5 of the base body 2 are used to set in rotation the aspirated air in a channel (not shown). Thus heavier and larger particles carried by the air are flung away radially towards the outside. In this way, the aspirated air can be pre-cleaned and only then supplied to air filters and the intake duct of the combustion engine 18. Thus the air filters for the combustion air supplied to the intake duct of the combustion engine 18 have a longer service life, and the service life of the combustion engine 18 is extended.
[0054] As shown in
[0055] The magnet holder 13 advantageously forms a rotor of a generator of the manually guided work apparatus 11. Advantageously, a stator of the generator is fixed on the crankcase (not shown) of the manually guided work apparatus 11. This stator includes at least one coil which cooperates with the rotor of the generator. On rotation of the fan wheel 1 about the rotational axis 50, the magnet 14 of the rotor formed by the magnet holder 13 induces a voltage in the coil of the stator. The voltage signal thus generated may be used as a signal for ignition of a spark plug of the combustion engine 18.
[0056] To determine the ignition timing precisely, the relative position of the magnet 14 with respect to the crankcase is decisive. As shown in
[0057]
[0058] The crankshaft of the combustion engine 18 has a positioning device (not shown) corresponding to the alignment element 15. The positioning device of the crankshaft in this embodiment is configured as a notch.
[0059] As
[0060]
[0061] The fan wheel 1 has a swing part 3, illustrated in
[0062] A further function of the swing part 3 in this embodiment is to increase the inertia moment of the fan wheel 1. In this embodiment, the fan wheel 1 serves as a flywheel for the combustion engine 18. In order to achieve an even running of the combustion engine 18, a high swung mass is desirable for the fan wheel 1 serving as a flywheel. At the same time, the total weight of the combustion engine 18 and hence also the fan wheel 1 should be as low as possible, in particular for use in the manually guided work apparatus 11 which is carried by the user during operation, in order to allow ergonomic working. The density of the second material of the swing part 3 is greater than the density of the first material of the base body 2. Accordingly, with a compact construction of the fan wheel 1, a high inertia moment of the fan wheel 1 can be achieved.
[0063] The base body 2 has the rotational axis 50 shown in
[0064] As shown in
[0065] It may also be provided that the base body 2 covers the surface of the swing part 3 to 100%. In this case, the holding openings 25 are subsequently filled with the first material of the base body or with another material. It may be provided that the base body 2 is formed from two different materials.
[0066] In the state of the fan wheel 1 installed in the work apparatus 11, the rotational axis 50 runs through the receptacle 17 for the crankshaft of the combustion engine 18.
[0067] As shown in
[0068] The swing part 3 includes in particular a first depression 27. The swing part 3 has a first lateral surface 9. The first depression 27 is preferably made in the first lateral surface 9 of the swing part 3. The swing part 3 has a second lateral surface 10. As shown in
[0069] The first lateral surface 9 and the second lateral surface 10 advantageously point in opposite directions relative to the rotational axis 50. The first depression 27 in the first lateral surface 9 of the swing part 3, the radial positioning opening 26, and the second depression 37 in the second lateral surface 10 of the swing part 3, lie one behind the other in the direction of the rotational axis 50. In this embodiment, the radial positioning opening 26 connects the first depression 27 to the second depression 37. The radial positioning opening 26 advantageously creates a continuous opening through the swing part 3 in the direction of the rotational axis 50. In this embodiment, the first depression 27, the radial positioning opening 26, and the second depression 37 together form the holding opening 25. It may also be provided that the holding opening is formed solely by a depression in the swing part 3. In this embodiment, four first depressions 27 are provided in the first lateral surface 9 of the swing part 3. Four second depressions 37 are provided in the second lateral surface 10 of the swing part 3. Accordingly, in total, four radial positioning openings 26 are arranged in the swing part 3. In total, the swing part includes four holding openings 25. A maximum diameter of the first depression 27, measured in a plane perpendicular to the rotational axis 50, is greater than a maximum diameter of the associated radial positioning opening 26 measured in the same plane. The first depression 27 has a first base 28 (
[0070] For positioning the swing part 3 in the casting mold for the base body 2 of the fan wheel 1, advantageously at least two holding elements (not shown) are provided. At least one of the holding elements, advantageously the first holding element, has an end face which preferably includes a protrusion. The end face of the first holding element lies on the first base 28 of the first depression 27 of the swing part 3. The protrusion of the first holding element at least partially penetrates into the radial positioning opening 26 of the swing part 3. The protrusion lies against the circumferential side of the radial positioning opening 26.
[0071] The end face of the first holding element lies against the first base 28 of the first depression 27 in the first lateral surface 9 of the swing part 3. The end face of the second holding element lies against the second base 38 of the second depression 37 in the second lateral surface 10 of the swing part 3. The first base 27 lies opposite the second base 37 with respect to the direction of the rotational axis 50 and with respect to the radial positioning opening 26. The first holding element is assigned to the first lateral surface 9 of the swing part 3. The second holding element is assigned to the second lateral surface 10 of the swing part 3. The swing part 3 is clamped between the first holding element and the second holding element. In this way, a positioning of the swing part 3 with respect to the axial direction of the rotational axis 50 is achieved.
[0072] For radial positioning of the swing part 3 with respect to the rotational axis 50, a further first holding element is provided, the protrusion of which engages in a further radial positioning opening 26 of the swing part 3. The protrusion of this further first holding element also lies against an inner circumference of the further radial positioning opening 26. The contact of the first holding element on the inner periphery of the radial positioning 26, and of the further first holding element on the further radial positioning opening 26, achieves a radial positioning of the swing part 3 with respect to the rotational axis 50.
[0073] In this embodiment, four first holding elements and four second holding elements are provided.
[0074] As shown in
[0075] The imbalance of the swing part 3 relative to the rotational axis 50 is advantageously formed by a recess 4.
[0076] The recess 4 advantageously reduces a radial width rb of the swing part 3, measured in the radial direction relative to the rotational axis 50, over an angular region ϵ shown in
[0077] It may also be provided that the imbalance of the swing part 3 relative to the rotational axis 50 is formed by a protuberance instead of by a recess. Otherwise, an imbalance formed by a protuberance may have the same properties as the imbalance formed by the recess.
[0078] As shown in
[0079] In a section plane perpendicular to the rotational axis 50, the swing part 3 has a circular outer periphery except in the region of the recess 4. With the exception of the angular region ϵ, the outer contour of the swing part 3 is circular in a plane perpendicular to the rotational axis 50.
[0080] As
[0081] In the lower part of
[0082] As also shown in
[0083] As shown in
[0084] A combined view of
[0085] As shown in
[0086]
[0087] The swing part 3 is cast into the first material of the base body 2. The base body 2 directly contacts the swing part 3. The swing part 3 is at least partially surrounded by the base body 2 (
[0088] The first material of the base body 2 has a first thermal expansion coefficient. The second material of the swing part 3 has a second thermal expansion coefficient. The second thermal expansion coefficient amounts to 70% to 110%, in particular 80% to 100%, preferably 85% to 95% of the first thermal expansion coefficient. The thermal expansion coefficient of the first material is approximately the same as the thermal expansion coefficient of the second material. The thermal expansion coefficient of the first material is between 21.10.sup.−6 K.sup.−1 and 23.10.sup.−6 K.sup.−1. The thermal expansion coefficient of the second material is between 17.10.sup.−6 K.sup.−1 and 21.10.sup.−6 K.sup.−1. The first material is a light metal alloy. The second material is a heavy metal alloy. In this embodiment, the first material is an aluminum alloy. It may also be provided that the first material is a magnesium alloy. In this embodiment, the second material is brass.
[0089] Because the swing part 3 is received in the base body 2, the air guidance of the fan wheel 1 is not disrupted by the swing part 3. The swing part 3 does not, or only to a slight extent, obstruct the air guidance of the air conveyed by the fan wheel 1. In particular, the air guiding surfaces 20 and 21 (shown in
[0090] The fan wheel 1 is produced in a casting process. Here, in a casting process step, the swing part 3 is cast into the first material of the base body 2. The position of the alignment element 15, for aligning the fan wheel 1 relative to the crankshaft of the combustion engine 18, is established in the same casting process step in which the swing part 3 was cast into the base body 2. Thus the precise position of the imbalance of the fan wheel 1 relative to the alignment element 15 is achieved. The imbalance angle a shown in
[0091] In the casting process, firstly the swing part 3 is positioned in a casting mold for the base body 2 of the fan wheel 1 by means of at least two first holding elements, such that the relative position of the imbalance of the swing part 3 and the part of the casting mold which forms the alignment element 15 in the casting process, is set as desired. Then the first material of the base body 2 is cast into the casting mold. During this process, the swing part 3 is advantageously cast into the base body 2. The position of the imbalance and the alignment element 15 are established in the same casting process step. In this way, a precise relative positioning of the imbalance and the alignment element 15 is possible.
[0092] It is understood that the foregoing description is that of the preferred embodiments of the invention and that various changes and modifications may be made thereto without departing from the spirit and scope of the invention as defined in the appended claims.