The invention relates generally to a torque converter, and more specifically to a blade assembly with improved braze joint strength for the torque converter.
Torque converters include shells and blades to direct fluid flow. Commonly assigned United States patent application publication number 2008/0308373 describes a blade surface with tabs arranged to conform to an inner surface of the shell to provide a fluid seal. United States patent application publication number 2009/0000289 describes a blade with an edge shaped so that at least a portion of the edge can be inserted into a depression in the internal surface of the shell with which it is to be connected. U.S. Pat. No. 5,794,436 assigned to Aisin AW Co., Ltd., describes a pump impeller and a turbine runner with inclined blades having edge portions bent to form right angle connections to shells and cores of the pump impeller and the turbine runner.
The following description is made with reference to 2-4.
A joint area of prior art blade 116 to shell 112 includes gaps 132 and 133 filled by braze material 130 and 131, respectively. Gap 133 is considerably larger than gap 132. Blade thickness 134 is measured between fluid guiding surface 140 and parallel surface 141. As can be appreciated from
Example aspects of the present invention broadly comprise a blade assembly for a torque converter including a shell with an inner surface and a plurality of blades attached to the shell by brazing. Each blade has a first surface for guiding a fluid in the torque converter and a second surface substantially parallel to the inner surface. The blades may include sheet steel and may be made by stamping. In an example embodiment of the invention, each blade includes at least one tab, the shell includes a plurality of slots or indents, and the at least one tab is disposed in a respective slot or indent. The shell may be an outer shell or a core ring for a pump or turbine for the torque converter.
In an example embodiment of the invention, the second surface is substantially orthogonal to the first surface. In some example embodiments of the invention, each blade includes an end portion including a portion of the first surface, the second surface, and a third surface, and the second surface forms a chamfer between the first and third surfaces. In an example embodiment of the invention, each blade includes at least one tab extending from the end portion, the shell includes a plurality of slots or indents, and the at least one tab is disposed in a respective slot or indent.
Other example aspects of the invention broadly comprise a blade assembly for a torque converter including a shell with an inner surface and a plurality of blades attached to the shell by brazing. Each blade in the plurality of blades has a first surface for guiding fluid in the torque converter and a second surface parallel to the first surface. The first and second surfaces define a thickness for the blade. Each blade also includes an end portion with respective portions of the first and second surfaces, a coined surface extending from the first surface and substantially parallel to the inner surface, and a third surface connecting the coined surface to the second surface.
In an example embodiment of the invention, a juncture of the third and coined surfaces is about midway through the thickness of said each blade. In an example embodiment of the invention, an angle measured between the first surface and the coined surface is substantially equal to an angle measured between the first surface and the shell.
Other example aspects of the invention broadly comprise a blade assembly for a torque converter including a shell with an inner surface and a plurality of blades attached to the shell by brazing. Each of the blades in the plurality of blades has a first surface for guiding fluid in the torque converter, a second surface offset from and parallel to the first surface, and a third surface parallel to the inner surface. The third surface connects an edge of the first surface with an edge of the second surface. In an example embodiment of the invention, each blade is bent proximate the shell.
The nature and mode of operation of the present invention will now be more fully described in the following detailed description of the invention taken with the accompanying drawing figures, in which:
At the outset, it should be appreciated that like drawing numbers appearing in different drawing views identify identical, or functionally similar, structural elements. Furthermore, it is understood that this invention is not limited only to the particular embodiments, methodology, materials and modifications described herein, and as such may, of course, vary. It is also understood that the terminology used herein is for the purpose of describing particular aspects only, and is not intended to limit the scope of the present invention, which is limited only by the appended claims.
Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood to one of ordinary skill in the art to which this invention belongs. Although any methods, devices or materials similar or equivalent to those described herein can be used in the practice or testing of the invention, the following example methods, devices, and materials are now described.
The adverbs “axially,” “radially,” and “circumferentially” are with respect to an orientation parallel to axis 81, radius 82, or circumference 83, respectively. The adverbs “axially,” “radially,” and “circumferentially” also are regarding orientation parallel to respective planes.
The following description is made with reference to
Shell 12 includes indents 22 for receiving outside tabs 24 of blades 16. Core ring 14 includes slots 26 for receiving inside tabs 28 of blades 16. Although a particular number of indents 22 and outside tabs 24, and slots 26 and inside tabs 28, are shown, any number of indents, slots, and tabs may be present so long as blade 16 is properly positioned and retained in shells 12 and 14. Furthermore, in some example embodiments of the invention (not shown), shell 12 may be a shell for a turbine assembly (not shown) for the torque converter comprising slots (not shown) in place of indents 22. In an example embodiment of the invention, blades 16 are made from sheet steel in a stamping process.
The following description is made with reference to
In some example embodiments of the invention, blade 16A includes surface 40A for guiding the fluid in the torque converter. Blade 16A also comprises surface 38A and coined, or chamfered, surface 42A forming end portion 44A. Surface 40A and end portion 44A share common edge 46A. Coined surface 42A is arranged to be substantially parallel to shell 12. That is, angle 36 measured between surface 40A and shell 12 is substantially equal to an angle measured between surface 40A and coined surface 42A.
In an example embodiment of the invention shown in
The following description is made with reference to
In some example embodiments of the invention, blade 16B includes surface 40B for guiding the fluid in the torque converter. Blade 16B also comprises coined, or chamfered, surface 42B forming end portion 44B. Surface 40B and end portion 44B share common edge 46B. Coined surface 42B is arranged to be substantially parallel to shell 12. That is, angle 36 measured between surface 40B and shell 12 is substantially equal to an angle measured between surface 40B and coined surface 42B. Coined surface 42B is not orthogonal to surface 30B, so surface 42C is longer the surface 138 in
In an example embodiment of the invention shown in
The following description is made with reference to
In some example embodiments of the invention, blade 16C includes surface 40C for guiding the fluid in the torque converter. Blade 16C also comprises surface 38C forming end portion 44C. Surface 40C and end portion 44C share common edge 46C. Surface 38C is arranged to be substantially parallel to shell 12. That is, angle 36 measured between surface 40C and shell 12 is substantially equal to an angle measured between surface 40C and surface 38C.
In an example embodiment of the invention shown in
The following description is made with reference to
In some example embodiments of the invention, blade 16E includes surface 40D for guiding the fluid in the torque converter. Blade 16D also comprises surface 38D forming end portion 44D. Surface 40D and end portion 44D share common edge 46D. Surface 38D is arranged to be substantially perpendicular to shell 12.
In an example embodiment of the invention shown in
Although the foregoing descriptions referred to gaps and angles with respect to shell 12, it can be appreciated that the same gaps and angles are present in and the methods described for reducing the gaps would be equally applicable to the joint between blade 16 and shell 14. As stated supra, shell 12 may be an impeller shell or turbine shell for the torque converter, while shell 14 may be a core ring for the torque converter. Blade tabs 24 joining blade 16 to the impeller shell are typically disposed in indents 22, while blade tabs (not shown) joining blade 16 to the turbine shell and tabs 28 joining blade 16 to the core ring are typically disposed in slots and formed to hold blade 16.
Of course, changes and modifications to the above examples of the invention should be readily apparent to those having ordinary skill in the art, without departing from the spirit or scope of the invention as claimed. Although the invention is described by reference to specific preferred and/or example embodiments, it is clear that variations can be made without departing from the scope or spirit of the invention as claimed.
This application claims the benefit under 35 U.S.C. §119(e) of U.S. Provisional Application No. 61/288,522 filed Dec. 21, 2009.
Number | Date | Country | |
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61288522 | Dec 2009 | US |