This application is a continuation-in-part of U.S. patent application Ser. No. 08/006,814, filed Jan. 21, 1993.Iadd., now U.S. Pat. No. 5,340,129.Iaddend..
BACKGROUND OF THE INVENTION1. Field of the Invention
The present invention relates generally to saws and, more particularly, to a saw blade retention system for a reciprocating surgical saw.
2. Description of the Related Art
Generally, a reciprocating saw known as a "sternal saw" is used in splitting a sternum of a patient during thoracic surgery by cutting from either the suprasternal notch or the xiphoid process. Typically, the sternal saw is driven through a flexible drive shaft by an electric motor which may be operated by a foot control. The sternal saw includes a reciprocating shaft and saw blade. The saw blade is removably secured to the reciprocating shaft by a fastener such as a screw.
One disadvantage of the above sternal saw is that the saw blade may rotate about the screw relative to the reciprocating shaft. Another disadvantage is that it is not convenient to change the saw blade after sterilization of the sternal saw. Yet another disadvantage is that a tool such as a screwdriver is required to change the saw blade. Still another disadvantage is that the saw blade and screw are packaged together which is undesired. A further disadvantage is that the screw increases the cost for changing or replacing the saw blade.
One sternal saw that has been in wide use has been sold by Minnesota Mining and Manufacturing Company, St. Paul, Minn., under the trade designation "SARNS" Sternal Saw, Catalog No. 6090.
SUMMARY OF THE INVENTIONThis invention provides a saw blade and a saw blade retention system that are adapted to facilitate aligning a saw blade relative to a reciprocating or orbital saw, and that are adapted to securely retain the saw blade on the saw. In the case of the reciprocating saw, the saw blade and saw blade retention system are designed to bring the longitudinal axis of an elongate saw blade into alignment with the intended path of travel of the saw blade.
Generally, a saw blade of the invention comprises a generally elongate blade portion having a plurality of teeth, and a shank portion extending from the blade portion for connection to a reciprocating saw. The saw blade has a longitudinal axis extending through the blade and shank portions. The shank portion is generally planar having opposite major surfaces, opposite lateral edges, and a generally linear or planar end edge extending generally perpendicular to the longitudinal axis of the saw blade. Each of the opposite lateral edges of the shank portion includes at least one inclined edge between the end edge and the blade portion, with the inclined edge generally facing away from the end edge and extending at an inclined angle relative to the longitudinal axis of the saw blade. The inclined orientation of the inclined edges relative to the end edge tends to facilitate alignment of the saw blade relative to a saw.
Preferably, a pair of recesses are provided in the shank portion, with the recesses extending generally laterally inwardly toward one another from the opposite lateral edges of the shank portion. The inclined edges are formed along one edge of each recess.
Preferably, the inclined edges extend at an angle of about 110 degrees relative to the longitudinal axis of the saw blade. Also, preferably, the inclined edges are disposed at an angle of about twenty degrees relative to the end edge, and an angle of about 140 degrees relative to one another.
In a second aspect of the invention, a saw blade retention system is provided for a reciprocating saw. The saw blade retention system comprises a surgical saw blade as described above, and a reciprocating saw. The saw comprises a shaft mounted in the saw for reciprocation. The shaft has a first blade-receiving slot at one end of the shaft for receiving the shank portion of the saw blade, with the first blade-receiving slot having a bottom end and an open end. A chuck is disposed about the shaft. The chuck has an annular ledge extending radially inwardly at one end to define a blade-receiving opening, with a second blade-receiving slot extending through the ledge generally radially outwardly from the opening. The chuck is mounted on the saw for rotation relative to the shaft between an unlocked position and a locked position. In the unlocked position, the second blade-receiving slot in the chuck is aligned with the first blade-receiving slot in the shaft to allow the saw blade to be inserted into the first and second blade-receiving slots. In the locked position, the first and second blade-receiving slots are not aligned such that the ledge of the chuck holds the saw blade in the first blade-receiving slot. The ledge of the chuck has a generally frustoconical surface generally complementary to the inclined edges of the saw blade for engagement with the inclined edges of the saw blade when the chuck is moved to its locked position such that the end edge of the saw blade is held against the bottom of the first blade-receiving slot and the saw blade tends to be centered by the forces applied by the frustoconical surface and the bottom of the first blade-receiving slot.
Preferably, the blade-receiving opening of the chuck has a diameter at least as large as the distance between the opposing recesses of the saw blade but less than the distance between the lateral edges of the shank portion of the saw blade.
Also, preferably, cam slots are provided in one of the chuck and shaft, and a pin is mounted on the other of the chuck and shaft, with the pin extending into the cam slots. The cam slots are disposed at a helical angle relative to the axis of rotation of the chuck such that the frustoconical surface of the ledge moves closer to the bottom of the first blade-receiving slot as the chuck is rotated from its unlocked position toward its locked position.
Most preferably, the inclined edges of the saw blade are disposed at an angle of approximately 20 degrees relative to the end edge of the saw blade; the frustoconical surface of the chuck is disposed at an angle of approximately 20 degrees relative to the bottom of the first blade-receiving slot; and the helical angle of the cam slots is approximately eight degrees.
Also, preferably, a biasing means is provided for biasing the chuck toward its locked position. For example, the biasing means may comprise a torsion spring operatively linked with the chuck and shaft to bias the chuck toward its locked position relative to the shaft.
According to one preferred aspect of the invention, a detent means is provided for releasably securing the chuck in its unlocked position to facilitate inserting the saw blade.
One advantage of the present invention is that a saw blade retention system is provided for removably retaining a saw blade to a reciprocating or sternal saw. Another advantage of the present invention is that the saw blade retention system incorporates a self-centering blade feature which provides axial and radial locking action by a three point pinch, trapping the saw blade to prevent movement thereof. Yet another advantage of the present invention is that the saw blade retention system eliminates the use of screws and screwdrivers. A further advantage of the present invention is that the saw blade retention system allows for added convenience and decreases the cost of changing or replacing the saw blade.
Other objects, features and advantages of the present invention will be readily appreciated as the same becomes better understood after reading the following description taken in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGSThe invention will be further described with reference to the drawing wherein corresponding reference numerals indicate corresponding parts throughout the several views of the drawing, and wherein:
FIG. 1 is a perspective view of a saw blade retention system, according to the present invention, illustrated in operational relationship to a sternal saw system;
FIG. 2 is a fragmentary elevational view of the saw blade retention system and a sternal saw of the sternal saw system of FIG. 1;
FIG. 3 is an exploded perspective view of the saw blade retention system of FIGS. 1 and 2;
FIG. 4 is an elevational view of the saw blade retention system of FIGS. 1 through 3;
FIG. 5A is a sectional view taken alongline 5--5 of FIG. 4 illustrating the saw blade retention system in an unlocked position;
FIG. 5B is a sectional view taken alongline 5--5 of FIG. 4 illustrating the saw blade retention system in a locked position;
FIG. 6 is a fragmentary view of the saw blade retention system of FIG. 4 illustrating the saw blade retention system in a locked position;
FIG. 7 is an elevational view, similar to FIG. 4, of another embodiment of the saw blade retention system, showing a blade-retaining chuck held in its blade-releasing position;
FIG. 8 is an elevational view similar to FIG. 7 showing the blade-receiving chuck in its blade-securing position;
FIG. 9 is a view of a portion of the blade-receiving chuck illustrating yet another embodiment of the saw blade retention system of the invention;
FIG. 10 is a cross sectional view of another preferred embodiment of the saw blade retention system of the invention, showing the saw blade retained in place; and
FIG. 11 is a cross sectional view of the saw blade retention system of FIG. 10 with the saw blade removed from the chuck.
DESCRIPTION OF THE PREFERRED EMBODIMENT(S)Referring to the drawings and in particular to FIG. 1 thereof, a sawblade retention system 10, according to the present invention, is illustrated in operational relationship to a reciprocating or sternal saw system, generally indicated at 12. Thesternal saw system 12 includes asternal saw 14 driven through aflexible drive shaft 16 by anelectric motor 18. Theelectric motor 18 has aplug 20 for connection to a foot control (not shown) which, in turn, is connected to a source of electrical power (not shown).
Referring to FIG. 2, the sternal saw 14 is a reciprocating saw designed for use in splitting a sternum of a patient during thoracic surgery. The sternal saw 14 has a conventionalrotatable shaft 22 which is operatively rotated by thedrive shaft 16. The sternal saw 14 also has a conventionaleccentric member 24 having a first shaft mounted in abearing 26 in the housing of the sternal saw 14 for rotation along a common axis of rotation with therotatable shaft 22, and an eccentric shaft connected to therotatable shaft 22 and offset from the axis of rotation of therotatable shaft 22. The sternal saw 14 further has a reciprocatingshaft 28 mounted on the eccentric shaft of theeccentric member 24 by abearing 30. The arrangement is such that rotation ofshaft 22 rotates theeccentric member 24, in turn, reciprocating theshaft 28 along its axis of reciprocation. A sternal saw having rotatable, eccentric and reciprocating shafts for reciprocating a blade has been available from Minnesota Mining and Manufacturing Company, St. Paul, Minn., under the trade designation "SARNS" Sternal Saw, Catalog No. 6090.
Referring to FIGS. 2 and 3, the novel sawblade retention system 10, according to the present invention, includes a retention shaft, generally indicated at 32. Theretention shaft 32 is connected to the reciprocatingshaft 28 by suitable means such as afastener 34. Alternatively, theretention shaft 32 and the reciprocatingshaft 28 could be one, integral piece. Theretention shaft 32 is generally cylindrical in shape and extends longitudinally through an aperture 36 in abushing 38 at one end of thesternal saw 14. It should be appreciated that theretention shaft 32 reciprocates due to the movement of thereciprocating shafts 28 of thesternal saw 14.
Theretention shaft 32 has amain portion 40 and a first steppedportion 42 at one end of themain portion 40. The first steppedportion 42 has a diameter less than a diameter of themain portion 40. Theretention shaft 32 also includes a second steppedportion 44 at the end of the first steppedportion 42 and having a diameter less than a diameter of the first steppedportion 42. Theretention shaft 32 further includes a blade-receiving aperture or slot 46 extending axially through the second steppedportion 44 and into the first steppedportion 42 to ablade seat 47 for a function to be described.
The sawblade retention system 10 also includes a generally flat, elongate saw blade, generally indicated at 48. Thesaw blade 48 has a generallyelongate blade portion 50 extending axially-longitudinally with a plurality ofteeth 52. Thesaw blade 48 also has a shank portion 54 extending axially-longitudinally from theblade portion 50. In use, the shank portion 54 is disposed in the blade-receiving slot 46 of theretention shaft 32. The shank portion 54 is generally pentagonal in shape and has anend edge 56 which is linear or planar and side orlateral edges 58 which are linear or planar and generally perpendicular to theend edge 56.
Theblade portion 50 has a free end defining the forward end of thesaw blade 48, and theend edge 56 defines therear end 56 of thesaw blade 48.
The shank portion 54 also hasrecesses 60 axially/longitudinally aligned and extending toward each other from opposite edges of the shank portion 54 to form a reducedportion 62 having a width less than a width of the shank portion 54. The shank portion 54 also has inclinededges 64 extending from the side edges 58 to the reducedportion 62 and toward theblade portion 50. The inclined edges 64 define arear edge 64 of eachrecess 60, and extend at an inclined angle a relative to theplanar end edge 56 such that the shank portion 54 can be clamped between theinclined edges 64 of eachrecess 60 and theplanar end edge 56 to align and retain thesaw blade 48 with respect to thepowered reciprocating saw 14. The inclined edges 64 preferably extend at an angle ("a" in FIG. 6) of approximately 20 degrees relative to the lateral direction (i.e., the direction along the major surfaces of theblade 48 perpendicular to the longitudinal direction of the blade 48). As illustrated in FIGS. 1 and 2, theblade portion 50 may be supported at its free end by aconventional foot piece 65 connected to thesternal saw 14.
At least onenon-inclined edge 63 defines the forward edge of eachrecess 60, and extends generally at a right angle relative to thelateral edge 58. Abottom edge 61 extends between thenon-inclined edge 63 and theinclined edge 64 and defines the "bottom" of therecess 60. Most preferably, thebottom edges 61 extends generally parallel with respect to the lateral edges 58, and a radius is provided between thenon-inclined edge 63 and thebottom edge 61.
Referring to FIGS. 2 through 4 and 6, the sawblade retention system 10 further includes a chuck, generally indicated at 66, for removably retaining or securing thesaw blade 48 to theretention shaft 32. Thechuck 66 is generally tubular and has abody portion 68 and astem portion 70 at one axial end and aseating portion 72 at the other axial end. Thebody portion 68 is generally cylindrical in shape and has afirst pocket 74 of a diameter to receive the shank portion 54 of thesaw blade 48. Thebody portion 68 also has an outer surface formed with a plurality ofrecesses 76 extending axially and spaced laterally to form a gripping surface for a hand of an operator. It should be appreciated that the outer surface of thebody portion 68 may be formed as a gripping surface by any suitable means such as knurling.
Thestem portion 70 extends axially from thebody portion 68 and is generally cylindrical in shape. Thestem portion 70 has an outer surface of a diameter less than a diameter of the outer surface of thebody portion 68. Thestem portion 70 also has asecond pocket 78 of a diameter to receive themain portion 40 of theretention shaft 32. Thesecond pocket 78 has a diameter greater than a diameter of thefirst pocket 74. Thestem portion 70 further has at least one, preferably a pair of, cam grooves orslots 80 opposing each other and extending circumferentially and axially (e.g., helically) a predetermined amount. For example, thecam slots 80 extend circumferentially about sixty-nine degrees (69°), axially forty-five thousandths (0.045) of an inch (1.14 mm), and have a helix angle of approximately 8 degrees relative to the axis of rotation of thechuck 66. It should be appreciated that thecam slots 80 may have any suitable circumferential or axial length for a function to be described.
The seatingportion 72 is generally frustoconical in shape and extends axially from thebody portion 68. The seatingportion 72 has anannular ledge 82 at the end thereof which extends radially inwardly to form anaperture 84 having a diameter less than the diameter of thefirst pocket 74. Theledge 82 has a blade aperture orslot 86 extending axially through theledge 82 of a width sufficient to allow the shank portion 54 to be received or disposed within thefirst pocket 74. It should be appreciated that theaperture 84 is of a sufficient diameter to allow the second steppedportion 44 of theretention shaft 32 to be received or disposed therein.
The seatingportion 72 also has aninterior surface 88 onledge 82 which is conical or inclined toward theaperture 84 at a predetermined angle, such as twenty degrees (20°), for example, approximately equal to and complementary with the angle of theinclined edges 64 of theblade 48. Theinterior surface 88 mates or cooperates with theinclined surfaces 64 of the shank portion 54 to center thesaw blade 48 relative to an axial axis A of theretention shaft 32. It should be appreciated that theinclined surface 88 of thechuck 66 moves the shank portion 54 radially due to the contact between theinclined surface 88 andinclined edges 64 to center thesaw blade 48. It should also be appreciated that theinterior surface 88 cooperates with the shank portion 54 to provide a positive radial locking force to prevent radial movement of thesaw blade 48 relative to theretention shaft 32.
The sawblade retention system 10 also includes apin 90 to cooperate with thecam slots 80. Thepin 90 is generally cylindrical in shape and is disposed in apin aperture 92 extending diametrically through themain portion 40 of theretention shaft 32. Preferably, thepin 90 is made of a softer metal material than theretention shaft 32 orchuck 66 and is press-fit into thepin aperture 92. Thepin 90 is of a sufficient length to extend into thecam slots 80. Thepin 90 cooperates with thecam slots 80 to limit the rotation of thechuck 66 and allow axial movement of thechuck 66 relative to theretention shaft 32.
The sawblade retention system 10 further includes aspring 94 for urging thechuck 66 in a locked position when thepin 90 is at an upper end of thecam slots 80. Thespring 94 is a torsional spring having first andsecond tangs 96 and 98. Thespring 94 is disposed in anannular recess 99 extending radially inwardly between themain portion 40 and the first steppedportion 42. Thefirst tang 96 is disposed in atang pocket 100 extending axially into thebody portion 68 of thechuck 66. Thesecond tang 98 is disposed in atang recess 102 extending axially into themain portion 40 of theretention shaft 32. Thespring 94 is wound counterclockwise (e.g., left-hand thread) and, when relaxed, urges thechuck 66 to a locked position as illustrated in FIG. 5B.
In operation, thechuck 66 is rotated relative to theretention shaft 32 by an operator to overcome the force or torque of thespring 94. As thechuck 66 rotates, thecam slots 80 move relative to thepin 90, in turn, moving thechuck 66 axially away from theretention shaft 32. The sawblade retention system 10 has an unlocked position when theslot 86 in thechuck 66 is aligned with the slot 46 in theretention shaft 32 as illustrated in FIG. 5A. In the unlocked position, thepin 90 is at a lower end of thecam slots 80 andinterior surface 88 is at a maximum distance from theblade seat 47. Thesaw blade 48 is inserted through theslot 86 and into the slot 46 until theend edge 56 contacts theblade seat 47.
Next, thechuck 66 is released. Thespring 94 relaxes and rotates thechuck 66 relative to theretention shaft 32. As thechuck 66 rotates, thecam slots 80 move relative to thepin 90, in turn, moving thechuck 66 axially toward theretention shaft 32 and reducing the distance between theinterior surface 88 and theblade seat 47. Since thechuck 66 andretention shaft 32 are coaxial, theinterior surface 88 contacts theinclined edges 64 of the shank portion 54 to provide a force to center thesaw blade 48 relative the axial axis A of theretention shaft 32. The sawblade retention system 10 has a locked position when theslot 86 in thechuck 66 are not aligned with the blade-receiving slot 46 in theretention shaft 32 as illustrated in FIG. 5B. In the locked position, thepin 90 is at an upper end of thecam slots 80 and theinterior surface 88 andblade seat 47 contact theinclined edges 64 andend edge 56, respectively, of thesaw blade 48 to provide a three point pinch or line contact, trapping thesaw blade 48 and preventing rotational and axial movement thereof. The operation is reversed to unlock and remove thesaw blade 48.
As used herein, the "locked" position refers to the position in which thechuck 66 "locks" or secures thesaw blade 48 on the sternal saw 14, and the "unlocked" or "open" position refers to the position in which thechuck 66 does not hold the saw blade in thesternal saw 14. In the "locked" position, theslot 86 of thechuck 66 is not aligned with the blade-receiving slot 46 of theretention shaft 32. In the "unlocked" position, theslot 86 of thechuck 66 is aligned with the blade-receiving-slot 46 of theretention shaft 32. As such, thechuck 66 can be "locked" or held in its "unlocked" or "open" position for example by a detent, as discussed below with respect to FIGS. 7-9.
Accordingly, the sawblade retention system 10 incorporates a self-centering blade feature due to theinterior surface 88 of thechuck 66 and theinclined edges 64 of thesaw blade 48. The sawblade retention system 10 also incorporates a positive axial and radial locking action due to theinterior surface 88 andblade seat 47 to trap thesaw blade 48. The sawblade retention system 10 also eliminates the use of screws and screwdrivers by providing aledge 82 andslot 86 for alignment and misalignment with thesaw blade 48 andretention shaft 32 to allow insertion and retention of thesaw blade 48 to theretention shaft 32.
FIGS. 7 and 8 illustrate an alternative embodiment of the saw blade retention system of the invention, here designated 110. The sawblade retention system 110 includes a blade-retainingchuck 166, similar to chuck 66, but having generally L-shaped cam slots 180. Oneleg 180A of each of the L-shaped cam slots 180 is similar tocam slots 66, and theother leg 180B of the cam slots 180 provides a detent or locking feature to lock thechuck 166 in its blade-unlocked or open position (FIG. 7) relative to pin 190.Leg 180A will be referred to as the "cam"leg 180A, andleg 180B will be referred to as the "detent"leg 180B.
In its open position (FIG. 7), thechuck 166 will allowsaw blades 148 to be inserted into or removed from thechuck 166. Thechuck 166 can be moved to its closed or blade-locking position (FIG. 8) by pressing thesaw blade 148 or chuck 166 toward the main body of the sternal saw 14 as indicated at F, thereby moving thechuck 166 relative to thepin 190 until thepin 190 is in thecam leg 180A of thechuck 166, and rotating thechuck 166 or allowing thechuck 166 to rotate according to the bias of its torsion spring (not shown but similar in some respects to torsion spring 94) to its closed position. In its closed position, the blade aperture or slot (not shown but similar to slot 86) is not aligned with the blade-receiving slot of the retention shaft (not shown but similar to slot 46 in retention shaft 32) so that theblade 148 cannot be removed from thechuck 166. The longitudinal position that the locked "open"chuck 166 would be in is indicated in phantom in FIG. 8 relative to the "closed"chuck 166.
The torsion spring of theblade retention system 110 is similar in some respects to thetorsion spring 94 but in use may be more thoroughly characterized as a compression/torsion spring. The compression/torsion spring provides two different biasing forces having different consequences depending upon whether thepin 190 is in thecam leg 180A or thedetent leg 180B.
When thepin 190 is in thecam leg 180A, the compression/torsion spring functions identically to thetorsion spring 94 is bias thechuck 166 toward its closed, blade-retaining position, in which the torsional bias of the spring tends to increase the space between thepin 190 and thedetent leg 180B of thechuck 166. When thepin 190 is in thedetent leg 180B the compressive/expansive bias of the spring urges thechuck 166 away from the retention shaft to releasably lock thepin 190 in the closed end of thedetent leg 180B. It will be appreciated that the compression/torsion spring may provide both of these biases, compression and torsion, when thechuck 166 is in its closed and open positions and when moved between those positions but that the practical result of the biases should be to urge thechuck 166 as specified. Alternately, two separate springs (not shown) may be provided, one being a torsion spring similar totorsion spring 94 and the other being a coil compression spring, for example, which merely biases the chuck away from the retention shaft.
In this alternate embodiment, theblade portion 150 of thesaw blade 148 is preferably wider than the distance covered between the ends of the blade-receiving slots (not shown but similar to slots 86) so that the longitudinal force F to release thepin 190 from thedetent leg 180B may be applied by pushing thesaw blade 148 toward the sternal saw. The self-centering feature provided by theinclined edges 64 of thesaw blade 48 and theinclined surfaces 88 of thechuck 66 of the embodiment of FIGS. 1-6 may also be provided in the embodiment of FIGS. 7-8.
FIG. 9 illustrates another alternative embodiment of the saw blade retention system, here designated 210, of the invention. Sawblade retention system 210 is similar in many respects to sawblade retention system 110 but additionally includes adetent notch 281 for releasably holding the chuck 266 relative to thepin 290 in the open position, and thecam slot 280 additionally includes an open end 280C allowing the chuck 266 to be placed on the sternal saw while thepin 290 is in the retention shaft.
The sawblade retention system 210 may be assembled after thepin 290 has been inserted into the retention shaft (not shown but similar to retention shaft 32) by aligning the open ends 280C of thecam slots 280 relative to the free ends of thepin 290 and pushing the chuck 266 onto the retention shaft. When thepin 290 has reached the inner end of the open portion 280C of thecam slot 280, the chuck 266 is rotated to bring thepin 290 into thecam leg 280A of thecam slot 280. Thecam leg 280A includes thedetent notch 281 for releasably locking the chuck 266 in its locked, blade-retaining position on thepin 290.
The open portion 280C of thecam slot 280 and theother portions 280A and 280B of thecam slot 280 define acantilever arm 267 that, while stiff, has some springiness or flexibility so as to deflect slightly when thepin 290 is moved in or out of thedetent notch 281. Thecantilever arm 267, however, is preferably sufficiently stiff that thepin 290 cannot pass over a raisedstop 267A at its free end when a blade (not shown but similar toblade 48 or 148) is inserted in the chuck 266. The chuck 266, however, can be released from thepin 290 for cleaning or maintenance when a blade (not shown) is not inserted into the chuck 266 by simply turning the chuck 266 relative to thepin 290 until thepin 290 is received in the open portion 280C of thecam slot 280.
FIGS. 10 and 11 illustrates another preferred embodiment of the saw blade retention system, here designated 300, of the invention. Thesaw blade 302 of sawblade retention system 300 includes a generallyelongate blade portion 304 having a plurality of saw teeth and afree end 305, and ashank portion 306. Theshank portion 306 is generally planar having opposite major surfaces, oppositelateral edges 308, and a generally linear orplanar end edge 310.
Theend edge 310 of theshank portion 306 is generally perpendicular to the longitudinal axis of thesaw blade 302, and thelateral edges 308 are generally parallel to the longitudinal axis of thesaw blade 302. Thefree end 305 of theblade portion 304 defines theforward end 305 of thesaw blade 302, and theend edge 310 of theshank portion 306 defines therear end 310 of thesaw blade 302.
Opposite projectingportions 312 extend laterally outwardly from the oppositelateral edges 308 of the shank portion 36. An inclinedforward edge 314 is provided on each projectingportion 312, with the inclined forward edges 314 extending at an inclined angle relative to theplanar end edge 310. Most preferably, each inclinedforward edge 314 extends at an angle of about twenty degrees relative to theplanar end edge 310, with the inclined forward edges 314 extending at an angle of about 140 degrees relative to one another and at an angle of about 110 degrees relative to the longitudinal axis of thesaw blade 302. Also, as illustrated in FIGS. 10 and 11, achuck 316 andshaft 318 are provided as part of a reciprocating saw. Theshaft 318 is mounted in the saw for reciprocation, and has a first blade-receiving slot (similar to the first blade-receiving slot 46 of FIG. 3) at one end of theshaft 318 for receiving theshank portion 306 of thesaw blade 302. The first blade-receiving slot has a bottom end (similar to end 47 in FIG. 3) and an open end.
Thechuck 316 is disposed about theshaft 318, and has anannular ledge 320 extending radially inwardly at one end to define a blade-receiving opening 322. Theledge 320 has a second blade-receiving slot (similar to slot 86 in FIG. 3) extending therethrough and generally radially outwardly from the opening 322.
Thechuck 316 is mounted on the saw for rotation relative to theshaft 318 between an unlocked position and a locked position. In the unlocked position (similar to FIG. 5A), the second blade-receiving slot of thechuck 316 is aligned with the first blade-receiving slot of theshaft 318 to allow thesaw blade 302 to be inserted into the first and second blade-receiving slots. In the locked position (similar to FIG. 5B), the first and second blade-receiving slots of theshaft 318 and chuck 316, respectively, are not aligned such that theledge 320 of thechuck 316 engages theinclined edges 314 of the projectingportions 312 of thesaw blade 302 to hold thesaw blade 302 in the first blade-receiving slot.
Preferably, theledge 320 of thechuck 316 has a generally frustoconical surface generally complementary to theinclined edges 314 of the projectingportions 312 of thesaw blade 302. When thechuck 316 is moved to its locked position, the frustoconical surface of theledge 320 engages theinclined edges 314 of thesaw blade 302 to push and hold theend edge 310 of thesaw blade 302 against the bottom of the first blade-receiving slot of theshaft 318, and thesaw blade 302 tends to be centered by the forces applied by the frustoconical surface of theledge 320 and the bottom of the first blade-receiving slot of theshaft 318. Most preferably, the frustoconical surface of thechuck 316 is disposed at an angle of approximately 20 degrees relative to the bottom of the first blade-receiving slot.
The blade-receiving opening 322 of thechuck 316 has a diameter at least as large as the distance between the oppositelateral edges 308 of theshank portion 306 of thesaw blade 302 but less than the distance between the free ends 324 of the projectingportions 312 of thesaw blade 302. Most preferably, the diameter of the blade-receiving opening 322 is only slightly greater than the distance between the oppositelateral edges 308 of theshank portion 306 of thesaw blade 302.
Also, preferably, cam slots are provided in one of thechuck 316 andshaft 318, and apin 326 is mounted on the other of thechuck 316 andshaft 318 with thepin 326 extending into the cam slots. FIG. 11 shows thepin 326 mounted in theshaft 318. The cam slots are disposed at a helical angle relative to the axis of rotation of thechuck 316 such that the frustoconical surface of theledge 320 moves closer to the bottom of the first blade-receiving slot of theshaft 318 as thechuck 316 is rotated from its unlocked position toward its locked position. For example, the helical angle of the cam slots may be approximately eight degrees.
Suitable biasing means is also provided for biasing thechuck 316 toward its locked position. For example, the biasing means may comprise a torsion spring, similar tospring 94 of FIG. 3, operatively linked with thechuck 316 andshaft 318 to bias thechuck 316 toward its locked position relative to theshaft 318.
Detent means may optionally be provided for releasably securing thechuck 316 in its unlocked position to facilitate inserting thesaw blade 302. Such detent means are illustrated at 180B and 280B in FIGS. 7-9.
As various changes could be made in the above constructions without departing from the scope of the invention as defined in the claims, it is intended that all matter contained in the above description or shown in the drawing be interpreted as illustrative and not in a limiting sense.