The invention concerns an extractor for a self-loading firearm, a firearm and its components having such an extractor, and a method of fitting the extractor to the firearm.
Self-loading or “automatic” pistols use an extractor to remove a spent casing (during operation) or live round from the chamber of the pistol. The extractor is mounted on the breech block, which may be part of the slide for pistols such as the Model 1911 which have a slide. The extractor has a hook that engages a groove in the base of the cartridge. Engagement between the hook and cartridge extracts the cartridge (or spent casing) when the breech block separates from the breech, either during operation or when the slide is “racked”, or moved from battery to open position.
The “bar” dimension, the distance between the extractor hook and an opposite wall of the breech block, is important to ensure reliable operation of a self-loading pistol. If the bar dimension is too small, then stripping and chambering of a round during operation is inhibited. If the bar dimension is too large, then extraction of the spent casing is erratic. As is typical of machined parts comprising a mechanism, the dimensions of the parts will vary within an acceptable tolerance band. Dimensional tolerances on the extractor and the slide/breech block will combine (add or subtract) and affect the bar dimension. For some pistols, such as the Model 1911, the tolerance on the bar dimension is relatively small. To meet this tolerance, it is found advantageous to fit the extractor to the slide/breech block.
Fitting the extractor is a time consuming process whereby the armorer must assemble the extractor onto the slide/breech block, measure the bar dimension, and then adjust the size of the extractor by removing material from the extractor if the bar dimension is too large. This is done by a “cut and try” method, and requires considerable skill to effect efficiently, as several attempts may be required. Removal of material must be done with care, lest the extractor dimension become too small, thereby rendering it useless. There is clearly a need for an extractor, and a method of fitting an extractor to a slide/breech block, which improves the efficiency of the process.
In one example embodiment, the invention comprises an extractor mountable on a breech block of a self-loading firearm by means of a pivot pin. In this example the extractor comprises a body attachable to the breech block. The body has a hook positioned at one end thereof. An opening in the body is for receiving the pivot pin. A surface is positioned on the body between the opening and the hook. The surface comprises at least first and second surface portions. The first surface portion is offset relatively to the second surface portion. The first surface portion comprises at least first and second step surfaces. The first step surface is offset relatively to the second step surface. In one example embodiment, the first surface portion is positioned proximate to the hook. By way of example, the first step surface may also be positioned proximate to the hook.
In an example, the first step surface is offset from the second step surface from about 0.009 inches to about 0.003 inches. In a particular example embodiment, the first step surface is offset from the second step surface about 0.006 inches.
The invention also encompasses an extractor mountable on a breech block of a self-loading firearm. In this example embodiment, the extractor comprises a body attachable to the breech block. The body has a hook positioned at one end thereof. A pivot pin is mounted on the body for pivotally attaching the body to the breech block. A surface is positioned on the body between the pivot pin and the hook. The surface comprises at least first and second surface portions, the first surface portion being offset relatively to the second surface portion. In this example the first surface portion comprises a plurality of step surfaces including at least a first step surface, a second step surface, and a third step surface. The first step surface is offset relatively to the second step surface. The second step surface is offset relatively to the third step surface. In an example embodiment, the first step surface is offset from the second step surface by a first distance, and the second step surface is offset from the third step surface by a second distance, the first and second distances being equal to one another. By way of example, the first and second distances may range from about 0.009 inches to about 0.003 inches. In a particular example, the first and second distances are about 0.006 inches. In an example embodiment, the second step surface may be positioned between the first and the third step surfaces. The first surface portion may be positioned proximate to the hook, and the first step surface may also be positioned proximate to the hook.
The invention also encompasses an extractor mountable on a breech block of a self-loading firearm. In an example embodiment, the extractor comprises a body attachable to the breech block, the body having a hook positioned at one end thereof. A pivot pin is mounted on the body for pivotally attaching the body to the breech block. A surface is positioned on the body between the pivot pin and the hook. The surface comprises at least first and second surface portions. The first surface portion is offset relatively to the second surface portion in this example embodiment. The first surface portion comprises at least first and second step surfaces. The first step surface is offset relatively to the second step surface. In an example embodiment, the first surface portion is positioned proximate to the hook. The first step surface may also be positioned proximate to the hook.
In an example embodiment, the first step surface may be offset from the second step surface from about 0.009 inches to about 0.003 inches. In a particular embodiment, the first step surface is offset from the second step surface about 0.006 inches.
The invention encompasses another example embodiment of an extractor mountable on a breech block of a self-loading firearm by means of a pivot pin. In this example, the extractor comprises a body attachable to the breech block and having a hook positioned at one end thereof. An opening is positioned in said body for receiving the pivot pin. A surface is positioned on the body between the opening and the hook. The surface comprises at least first and second surface portions in this example. The first surface portion is offset relatively to the second surface portion. The first surface portion comprises a plurality of step surfaces including at least a first step surface, a second step surface, and a third step surface. The first step surface is offset relatively to the second step surface and the second step surface is offset relatively to the third step surface.
By way of example, the first step surface may be offset from the second step surface by a first distance, and the second step surface may be offset from the third step surface by a second distance, the first and second distances being equal to one another. In a further example, the first and second distances may range from about 0.009 inches to about 0.003 inches. In a particular example, the first and second distances are about 0.006 inches. The second step surface may be positioned between the first and the third step surfaces. The first surface portion may be positioned proximate to the hook, and the first step surface may also be positioned proximate to the hook in example embodiments of the invention.
The invention also encompasses a slide for a self-loading pistol. In an example embodiment, the slide comprises a breech block having a breech face. An extractor is mounted on the slide adjacent to the breech face. The extractor comprises a body having a longitudinal axis oriented transversely to the breech face. The body comprises a hook projecting beyond the breech face. A pivot pin is mounted on the slide. The pivot pin is oriented perpendicular to the longitudinal axis of the body. The body is pivotably mounted on the pivot pin. A surface is positioned on the body between the pivot pin and the hook. The surface comprises at least first and second surface portions. The first surface portion is offset toward the breech block relatively to the second surface portion. The first surface portion comprises at least first and second step surfaces. The first step surface is offset toward the breech block relatively to the second step surface. In some example embodiments, the first surface portion is positioned proximate to the hook, and the first step surface may also be positioned proximate to the hook. The first step surface may be offset from the second step surface from about 0.009 inches to about 0.003 inches. In a particular example embodiment, the first step surface is offset from the second step surface about 0.006 inches.
The inventions also encompasses a slide for a self-loading pistol. In an example embodiment, the slide comprises a breech block having a breech face. An extractor is mounted on the slide adjacent to the breech face. The extractor comprises a body having a longitudinal axis oriented transversely to the breech face. The body comprises a hook projecting beyond the breech face. A pivot pin is mounted on the slide. The pivot pin is oriented perpendicular to the longitudinal axis of the body, the body being pivotably mounted on the pivot pin. A surface is positioned on the body between the pivot pin and the hook. The surface comprises at least first and second surface portions. The first surface portion comprises a plurality of step surfaces including at least a first step surface, a second step surface, and a third step surface. The first step surface is offset toward the breech block relatively to the second step surface. The second step surface is offset toward the breech block relatively to the third step surface.
In an example embodiment, the first step surface is offset from the second step surface by a first distance, and the second step surface is offset from the third step surface by a second distance, the first and second distances being equal to one another. By way of example, the first and second distances range from about 0.009 inches to about 0.003 inches. In a particular embodiment, the first and second distances are about 0.006 inches. The second step surface may be positioned between the first and the third step surfaces. In a particular example embodiment, the first surface portion is positioned proximate to the hook and the first step surface is also positioned proximate to the hook.
The invention further comprises a self-loading pistol. In one example embodiment, the pistol comprises a slide having a breech block with a breech face. An extractor is mounted on the slide adjacent to the breech face. The extractor comprises a body having a longitudinal axis oriented transversely to the breech face. The body comprises a hook projecting beyond the breech face. A pivot pin is mounted on the slide. The pivot pin is oriented perpendicular to the longitudinal axis of the body. The body is pivotably mounted on the pivot pin. A surface is positioned on the body between the pivot pin and the hook. The surface comprises at least first and second surface portions. The first surface portion is offset toward the breech block relatively to the second surface portion. The first surface portion comprises at least first and second step surfaces. The first step surface is offset toward the breech block relatively to the second step surface.
The first surface portion may be positioned proximate to the hook in one example. The first step surface may also be positioned proximate to the hook. By way of further example, the first step surface may be offset from the second step surface from about 0.009 inches to about 0.003 inches. In a particular example, the first step surface is offset from the second step surface about 0.006 inches.
In another example embodiment, the self-loading pistol comprises a slide having a breech block with a breech face. An extractor is mounted on the slide adjacent to the breech face. The extractor comprises a body having a longitudinal axis oriented transversely to the breech face. The body comprises a hook projecting beyond the breech face. A pivot pin is mounted on the slide. The pivot pin is oriented perpendicular to the longitudinal axis of the body, the body being pivotably mounted on the pivot pin. A surface is positioned on the body between the pivot pin and the hook. The surface comprises at least first and second surface portions. The first surface portion is offset toward the breech block relatively to the second surface portion. The first surface portion comprises a plurality of step surfaces including at least a first step surface, a second step surface, and a third step surface. The first step surface is offset toward the breech block relatively to the second step surface, the second step surface is offset toward the breech block relatively to the third step surface.
By way of example, the first step surface is offset from the second step surface by a first distance, and the second step surface is offset from the third step surface by a second distance, the first and second distances being equal to one another. The first and second distances may range from about 0.009 inches to about 0.003 inches. In a particular example, the first and second distances are about 0.006 inches.
In an example embodiment, the second step surface is positioned between the first and the third step surfaces. The first surface portion may be positioned proximate to the hook, and the first step surface may also be positioned proximate to the hook.
The invention also encompasses a method for fitting an extractor to a slide of a self-loading pistol. In an example embodiment, the slide comprises a breech block having a breech face, and the extractor comprises a body having a longitudinal axis and a hook. A surface is positioned on the body, the surface comprising a plurality of step surfaces, each of the step surfaces being offset relatively to one another in this embodiment. One example method comprises:
Removing the step surfaces may be effected by grinding in a particular example. Other removal methods include sanding, milling and filing. Further by way of example, removing the one step surface comprises reducing a thickness of the body by about 0.009 inches to about 0.003 inches. In a particular example, removing the one step surface comprises reducing a thickness of the body by about 0.006 inches. An equal thickness of the body may be removed upon each of the removing steps.
In another example embodiment of a method for fitting an extractor to a slide of a self-loading pistol, the slide comprises a breech block having a breech face and the extractor comprises a body having a longitudinal axis and a hook. A surface is positioned on the body, the surface comprising a plurality of step surfaces including at least a first step surface, a second step surface, and a third step surface. The first step surface is offset relatively to the second step surface, the second step surface is offset relatively to the third step surface. In this example embodiment, the method comprises:
Removing the step surfaces may be effected by grinding by way of example. Other removal methods include sanding, milling and filing. Removing the first step surface may comprise, for example, reducing a thickness of the body by about 0.009 inches to about 0.003 inches. In a particular example, removing the first step surface comprises reducing a thickness of the body by about 0.006 inches. Removing the second step surface may comprise, for example, reducing a thickness of the body by about 0.009 inches to about 0.003 inches. In a particular example, removing the second step surface comprises reducing a thickness of the body by about 0.006 inches. In a further example, an equal thickness of the body is removed upon removing each of the first and second step surfaces.
As shown in
As shown in
Pistol 10 operates on the locked breech recoil principle, wherein recoil energy from the discharging round is harnessed to extract and eject the spent casing from the barrel chamber, cock the hammer, and strip a round from the magazine and chamber it in the barrel. Immediately upon discharge of a round, the breech block and barrel, being initially locked together, recoil together relatively to the frame over a short distance in a direction opposite to the direction of discharge. Motion of the barrel is then hafted, and the breech block separates from the barrel. The hook of the extractor is engaged with a groove in the base of the casing, and as the breech block separates from the barrel the hook extracts the spent casing from the chamber. The casing is ejected to one side by the asymmetrical pull of the extractor. The breech block continues its motion away from the barrel, cocking the hammer. The kinetic energy of the breech block is captured by a recoil spring, which then moves the breech block in the opposite direction toward the barrel. During this motion the breech block passes over the magazine, from which it strips the next round to be chambered. As the breech block moves toward the barrel it forces the next round into the chamber of the barrel. The breech block and barrel lock together and move together over a short distance into the “battery” position from which the pistol was initially discharged. As the round is chambered the hook of the extractor engages the groove in the casing, pivoting as required to ensure proper engagement.
With reference again to
The process of fitting and extractor to a slide 16/breech block 18 is improved through the use of the extractor 22 according to the invention. By using a plurality of step surfaces 42, 44, 46 on the surface portion 38 as shown in
The invention also encompasses a method for fitting an extractor as described above to a slide/breech block of a self-loading pistol. In one example embodiment, the method comprises:
In a practical example, the extractor 22 may have three step surfaces 42, 44 and 46 as shown in
Removal of the step surfaces is effectively accomplished by grinding. Sanding, milling and filing may also be used to remove the step surface. For practical extractors, the offset 48, 50 of the step surfaces may range between about 0.009 inches to about 0.003 inches. Thus, as each step surface is removed, the body 24 is reduced in thickness by about 0.009 inches to about 0.003 inches depending on the size of the offset. For a Model 1911 pistol having a bar distance tolerance of about +/−0.003 inches, a step surface offset of about 0.006 inches is advantageous. While the offset distances are all equal to one another in this example, they could also have different values.