Methods of Producing Saw Blades
20190160566 · 2019-05-30
Assignee
Inventors
Cpc classification
B23D63/18
PERFORMING OPERATIONS; TRANSPORTING
B23D61/021
PERFORMING OPERATIONS; TRANSPORTING
B23D65/00
PERFORMING OPERATIONS; TRANSPORTING
B23D63/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23D63/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present disclosure provides a method of producing a saw blade (10), comprising providing a saw blade blank, comprising a circular blade base body (100) with radially extending teeth (101), said teeth being in an initial position, in a first bending step, bending at least some of the teeth (101), such that the teeth are plastically deformed, towards an axial direction (A) of the saw blade blank, to an intermediate axial position (N), and in a second, subsequent, bending step, bending said at least some of the teeth (101), such that the teeth are plastically deformed, towards an opposite axial direction (A) of the saw blade blank, such that the teeth arrive at a final axial setting position (N). In the method, the intermediate axial position (N) is axially beyond the final axial setting position (N).
Claims
1. A method of producing a saw blade, comprising: providing a saw blade blank, comprising a circular blade base body with radially extending teeth, said teeth being in an initial position, in a first bending step, bending at least some of the teeth, such that the teeth are plastically deformed, towards a first axial direction of the saw blade blank, to an intermediate axial position, and in a second, subsequent, bending step, bending said at least some of the teeth, such that the teeth are plastically deformed, towards a second, opposite, axial direction of the saw blade blank, such that the teeth arrive at a final axial setting position, wherein the intermediate axial position is axially beyond the final axial setting position.
2. The method as claimed in claim 1, wherein, in the initial position, the teeth are coplanar.
3. The method as claimed in claim 1, wherein the final axial setting position is on the same axial side of the saw blade blank as the intermediate position.
4. The method as claimed in claim 1, wherein the first bending step provides a position of an outermost edge of the saw blade of 1-2.5 mm, preferably 1.3-1.9 mm or 1.5-1.7 mm axially from the initial position.
5. The method as claimed in claim 1, wherein the second bending step provides a position of an outermost edge of the saw blade of 0.3-1.5 mm, preferably 0.7-1.3 mm or 0.8-1.2 mm axially from the initial position.
6. The method as claimed in claim 1, wherein each tooth is bent such that a plane of the blade base body and a plane of the tooth meet at a bending angle.
7. The method as claimed in claim 1, wherein a first subset of the teeth of the saw blade blank are set towards a first axial direction according to the method as claimed in any one of the preceding claims, and wherein a second subset of the teeth of the saw blade blank are set towards a second, opposite, axial direction according to the method as claimed in any one of the preceding claims, wherein, as seen along a direction of rotation, the teeth belong to alternating ones of the first and second subsets.
8. A method of producing a saw blade, comprising: providing a saw blade blank, comprising a circular blade base body with radially extending teeth, said teeth being in an initial position, in a bending step, bending at least some of the teeth, such that the teeth are plastically deformed, towards an axial direction of the saw blade blank, to final axial position, whereby each tooth is bent such that a plane of the blade base body and a plane of the tooth meet at a bending angle, processing the blade base body locally at an area of the bending angle by heating or mechanical impact.
9. The method as claimed in claim 8, wherein the processing is provided on an axial side of the saw blade blank, which faces opposite the axial direction towards which the tooth has been bent.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032] In the present disclosure, the invention is described with reference to a brush cutter, and to the production of a saw blade that is suitable for use in such a brush cutter. It is understood, however, that production of saw blades for other uses is not excluded, such as, but not limited to, in stationary or portable circular saws, and in particular for applications including the cutting of wood.
[0033]
[0034] The drive unit 13 may comprise an internal combustion engine (ICE), typically petrol powered, or an electric motor, which may be powered by battery or via a cord connected to a power grid or to a power generator.
[0035]
[0036]
[0037] Typically, saw blades for ICE powered brush cutters may have teeth that are axially set by 0.7-1.4 mm, preferably 0.9-1.3 mm and saw blades for electrically powered brush cutters may be axial set by 0.6-1.2 mm, preferably 0.8-0.9 mm.
[0038] The blade base body may present a hardness of 35-45 HRC, preferably 42-44 HRC.
[0039] A total diameter of the saw blade may be 150-300 mm, preferably 200-250 mm or 200-225 mm.
[0040] The teeth may extend 5-15 mm, preferably 8-12 mm, radially.
[0041] The saw blade blank may be formed by a thin, flat sheet of metal, which may be annealed or otherwise hardened, entirely or locally, to provide a desired compromise between rigidity, flexibility and hardness. Stainless steel or spring steel, which may be stainless, may be used.
[0042]
[0043] The setting tool 2 may be caused to engage a tooth 101 of a sawblade, preferably with a snug fit, through the matching of the groove width to the saw blade thickness. While holding the saw blade steadily, the tool is turned in direction Ds about the bending edge 24, 25. The bending edge may be associated with a template edge (not illustrated), which can limit the bending, such that each tooth 101 is bent only to a desired setting.
[0044] This process is repeated for each tooth 101.
[0045] For a saw blade with tooth sets that are set towards opposite axial directions, the process is typically performed for every second tooth towards one of the tool faces, and then for every second tooth towards the other tool face.
[0046] Referring to
[0047] In
[0048] In
[0049] At the face of the bending zone towards which the tooth has been set, the residual stresses act to cause the tooth to return to the planar position it would have had prior to the initial setting operation. That is, residual compressive stresses are created at this face.
[0050] Similarly, at the opposite face of the bending zone, the residual stresses act in the opposite direction, as illustrated, but towards the same consequence, i.e. returning the tooth to the planar position. That is, residual tensile stresses are created at this face.
[0051] Referring to
[0052] Referring to
[0053] At this point, the material may be allowed to relax, such that no external axial forces act on the tooth 101.
[0054] The first intermediate positon N is positioned axially beyond the intended final position N. That is, N>N.
[0055] For example, this over setting may provide an axial position N of 1-2.5 mm, preferably 1.3-1.9 mm or 1.5-1.7 mm.
[0056] Referring to
[0057] That is, the over setting (N/N) may be approximately 65-850%, preferably 100-400% or 130-300%.
[0058] The second bending step provides a different situation with regard to residual stresses. Instead of the residual stresses operating to return the tooth to the initial, typically planar, position, the residual stresses will instead operate towards the direction of the setting.
[0059] The bending may be performed tooth by tooth, manually or through an automated process. Alternatively, a die assembly may be used, which enables all teeth of a saw blade to be bent in a single pressing operation. Hence, in the method disclosed above, it is possible to use a first die assembly for the first bending operation and another die assembly for the second bending operation. Alternatively, it is possible to use a single die assembly, which can be reconfigured between bending operations.
[0060]
[0061] In
[0062] Similarly, in