The disclosure relates to an actuated tool for driving a fastener into a wall surface, more particularly to a powder actuated tool for driving a fastener into a wall surface.
A conventional powder actuated tool is normally loaded with a cartridge strip having ten cartridges, and is used for driving a fastener into a hard surface, such as ceilings of concrete etc., so as to secure for example a light steel frame structure on the hard surface. The conventional powder actuated tool includes a magazine channel extending in a direction transverse to a lengthwise direction of the powder actuated tool, and thus rendering the tool structure wide and bulky. For example, when remodeling the old buildings, like making fastenings on a ceiling with a plurality of existing pipes, wires, or decorations, access of the conventional powder actuated tool to predetermined positions on the ceiling may be blocked by the said existing pipes, wires, or decorations. In addition, the operation of the conventional powder actuated tool is noisy.
Therefore, an object of the disclosure is to provide a novel powder actuated tool for loading therein a cartridge strip, which has a reduced width compared to the above conventional powder actuated tool, and which may be equipped with a sound suppressor for reducing amount of noise when operating while maintaining the reduced width of the tool without further adding size of the tool.
According to a first aspect of the disclosure, a compression triggered powder actuated tool is used for driving a fastener along a striking path line in a longitudinal direction into a wall surface. The powder actuated tool is adapted for loading therein a cartridge strip which includes a plurality of cartridges displaced from one another along a strip line, and a connection strip that is configured to hold the cartridges, and that extends along the strip line to terminate at a leading end and a trailing end. The powder actuated tool includes a tubular housing, a side frame, a piston unit, a firing pin, and an actuating unit. The tubular housing is hollow inside, and extends along the striking path line to terminate at an upper open end and a lower open end. The tubular housing has an inlet port and an outlet port which is opposite to the inlet port in a first direction transverse to the longitudinal direction to permit passage of the cartridge strip therethrough. The side frame is mounted to the tubular housing, and defines therein a feeding channel for loading therein the cartridge strip. The feeding channel includes a feed-in port proximate to the upper open end, a longitudinal zone disposed downstream of the feed-in port and extending in the longitudinal direction, a transverse zone disposed downstream of the longitudinal zone and upstream of the inlet port and extending in the first direction, a transition zone interconnecting the longitudinal zone and the transverse zone, such that the powder actuated tool has a maximum width in a direction normal to the longitudinal direction which is smaller than a length from a leading edge of a first loading one of the cartridges to the trailing end. The piston unit is slidably mounted within the tubular housing, and is configured to strike the fastener along the striking path line. The firing pin is configured to be slidably disposed within the tubular housing, and is disposed beneath the piston unit. The firing pin is coupled for igniting one of the loaded cartridges inside the tubular housing so as to generate propellant gases to thereby force the piston unit to strike the fastener. The actuating unit is disposed in or in proximity to the lower open end, and is configured to permit one of the loaded cartridges inside the tubular housing to be ignited in response to axial movement of the actuating unit in the longitudinal direction.
According to a second aspect of the disclosure, a compression triggered powder actuated tool is used for driving a fastener along a striking path line in a longitudinal direction into a wall surface, and is adapted for loading therein a cartridge strip which includes a plurality of cartridges displaced from one another in a strip line, and a connection strip that is non-stretchable along the strip line, and that is configured to hold the cartridges. The connection strip has a plurality of releasable retained members which alternate with the cartridges. The powder actuated tool includes a tubular housing, a barrel, a first biasing member, a nosepiece, a piston, a piston rod, a side frame, a firing pin, a third biasing member, and an actuating rod. The tubular housing extends along the striking path line, and includes an upper tubular segment, a lower tubular segment, and an intermediate tubular segment. The upper tubular segment defines therein an upper space, and has an upper open end. The lower tubular segment defines therein a lower space, and having a lower open end opposite to the upper open end. The intermediate tubular segment is disposed between the upper and lower tubular segments, and defines therein a firing chamber which interconnects the upper and lower spaces, and which includes an inlet port and an outlet port that are opposite to each other in a first direction transverse to the longitudinal direction to permit passage of the cartridge strip therethrough thereby introducing one of the loaded cartridges in the firing chamber. The barrel is fitted slidably in the upper space, and has an upper coupling end and a lower breech end. The barrel defines therein a barrel bore which extends along the striking path line and which has a lower bore region proximate to the lower breech end. The barrel is movable in the longitudinal direction between a loading position, where the lower breech end is disposed above the firing chamber, and a ready-to-fire position, where the lower breech end is disposed in the firing chamber to receive the one of the loaded cartridges at a priming position. The first biasing member is disposed to bias the barrel to the loading position. The nosepiece is coupled to the upper coupling end of the barrel to permit the barrel to move therewith, and is capable of making a retraction movement when pressed against the wall surface to thereby force the barrel to move to the ready-to-fire position against a biasing force of the first biasing member. The nosepiece has a muzzle bore which is configured to hold the fastener in the striking path line. The piston is slidably mounted within the barrel bore, and is configured to be fitted in the lower bore region to seal the firing chamber when the barrel is in the ready-to-fire position. The piston rod extends upwardly from the piston along the striking path line into the muzzle bore to terminate at a rod end which is configured to strike the fastener along the striking path line. The side frame is mounted to the upper tubular segment, and defines therein a feeding channel for loading therein the cartridge strip. The feeding channel includes a feed-in port, a longitudinal zone, a transverse zone, and a transition zone. The feed-in port is proximate to the upper open end. The longitudinal zone is disposed downstream of the feed-in port, and extends in the longitudinal direction. The transverse zone is disposed downstream of the longitudinal zone and upstream of the inlet port, and extends in the first direction. The transition zone interconnects the longitudinal zone and the transverse zone. The firing pin is configured to be slidably disposed within the lower space, and extends in the longitudinal direction to terminate at a firing pin tip and a butt end. The firing pin is movable in the longitudinal direction between a downward position, where the firing pin tip is spaced apart from the firing chamber, and a firing position, where the firing pin tip moves into the firing chamber so as to ignite the one of the loaded cartridges at the priming position to generate propellant gases to thereby force the piston rod to strike the fastener. The third biasing member is disposed to bias the firing pin to the downward position. The actuating rod is coupled to the butt end through the lower open end, and is configured to force the firing pin to move in the longitudinal direction toward the firing position against a biasing force of the third biasing member.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiment(s) with reference to the accompanying drawings, in which:
As shown in
Referring to
The tubular housing 30 extends along the striking path line (P), and includes an upper tubular segment 301, a lower tubular segment 304, and an intermediate tubular segment 307.
The upper tubular segment 301 defines therein an upper space 302, and has an upper open end 303. In this embodiment, the upper tubular segment 301 is formed with a first through hole 315.
The lower tubular segment 304 defines therein a lower space 305, and has a lower open end 306 opposite to the upper open end 303.
The intermediate tubular segment 307 is disposed between the upper and lower tubular segments 301, 304, and defines therein a firing chamber 314. The firing chamber 314 interconnects the upper and lower spaces 302, 305, and includes an inlet port 308 and an outlet port 309 which are opposite to each other in a first direction (X) transverse to the longitudinal direction (Z) to permit passage of the cartridge strip 1 therethrough thereby introducing one of the loaded cartridges 12 in the firing chamber 314. In this embodiment, as shown in
The barrel 32 is fitted slidably in the upper space 302, and has an upper coupling end 322 and a lower breech end 323 (see
The first biasing member 33 is disposed in the upper space 302 to bias the barrel 32 to the loading position.
The nosepiece 326 is coupled to the upper coupling end 322 of the barrel 32 to permit the barrel 32 to move therewith, and is capable of making a retraction movement when pressed against the wall surface (WS) to thereby force the barrel 30 to move to the ready-to-fire position against a biasing force of the first biasing member 33 (see
In this embodiment, as shown in
As shown in
The piston rod 42 extends upwardly from the piston 41 along the striking path line (P) into the muzzle bore 327 to terminate at a rod end 421 which is configured to strike the fastener 10 along the striking path line (P).
The side frame 35 is mounted to the upper tubular segment 301, and defines therein a feeding channel 37 for loading therein the cartridge strip 1.
As best shown in
As shown in
In this embodiment, as shown in
As shown in
Referring back to
The press member 71 has a pivot end segment 714 and a pressed end segment 715. The pivot end segment 714 is pivotally mounted relative to the lower tubular segment 304 about a pivot axis (PA) in the second direction (Y). A pivot pin 72 extends along the pivot axis (PA) and has two ends which are mounted respectively to lower ends of two sidewalls 342 mounted on the lower tubular segment 304. The pivot end segment 714 is pivotally mounted to the pivot pin 72 about the pivot axis (PA).
The pressed end segment 715 is opposite to the pivot end segment 714, and is disposed in proximity to the feeding channel 37 (see
In this embodiment, the press member 71 is in an elongated shape, and as shown in
The second biasing member 73 is disposed to bias the pressed end segment 715 to the distal position. In this embodiment, the second biasing member 73 is a helical spring which is sleeved on a pillar 711 formed on an inner surface of the press member 71 (see
As shown in
In this embodiment, as shown in
The leaf spring 75 is disposed to bias the claw end 742 such that the claw end 742 is kept in frictional engagement with the connection strip 11 in the feeding channel 37.
In this embodiment, as shown in
Referring back to
The actuating unit 5 is disposed in or in proximity to the lower open end 306, and is configured to permit one of the loaded cartridges 12 inside the tubular housing 30 and at the priming position to be ignited in response to axial movement of the actuating unit 5 in the longitudinal direction (Z).
The third biasing member 52 is disposed in the lower space 305 to bias the firing pin 51 to the downward position.
The actuating rod 53 is coupled to the butt end 512 through the lower open end 306, and is configured to force the firing pin 51 to move in the longitudinal direction (Z) toward the firing position against a biasing force of the third biasing member 52.
In this embodiment, as shown in
Each of the two mount seats 311 has a cross-section of a circular segment, and is fitted in compliance with a corresponding one of the inner surface regions 310 such that the mounting seats 311 are spaced apart from each other in the second direction (Y) to permit passing of the cartridge strip 1 through the inlet and outlet ports 308, 309. At least one of the mount seats 311 is formed with a recess 316 extending toward a corresponding one of the inner surface regions 310 in the second direction (Y).
The spring-loaded member 38 is disposed in the recess 316 to releasably retain a proximal one of the releasable retained members 115 in the firing chamber 314.
In this embodiment, two of the mounting seats 311 are formed with the recesses 316 which are in line with each other in the second direction (Y), and two of the spring-loaded members 38 are provided in the recesses 316, respectively. Each of the spring-loaded members 38 has a spring 382 received in the corresponding recess 316, and a ball 381 which is biased by the spring 382 to retain the proximal one of the releasable retained members 115 in the firing chamber 314, and which is retracted by a proximal one of the in-between regions 114 into the corresponding recess 316 so as to permit advance of the cartridge strip 1 along the arrow D3. By virtue of the spring-loaded members 38, each of the cartridges 12 can be precisely loaded to the priming position.
In this embodiment, the powder actuated tool 200 further includes a sound suppressor 6 which is disposed between the side frame 35 and the upper tubular segment 301, and which is configured to permit gradual expansion of the propellant gases thereby minimizing the noise. As shown in
In this embodiment, as shown in
After the first one of the loaded cartridges 12 is ignited, a manual force is exerted to press the pressed end segment 715 from the distal position (
While the manual force is exerted to press the pressed end segment 715 from the distal position (
Once the manual force is released, the pressed end segment 715, together with the claw member 74, returns to the distal position (
Because the feeding channel 37 is of a curved shape, and because the cartridge advancing unit 7 is disposed below the feeding channel 37, the width (W) of the powder actuated tool 200 can be designed to be smaller than the length (L). As such, the powder actuated tool 200 can overcome the problems of the conventional powder actuated tool to access through existing pipes, wires, or decorations for the overhead applications. In addition, the powder actuated tool 200 with the sound suppressor 6 can be operated with reduced noise while maintaining the reduced width of the tool without further adding size of the tool.
In the description above, for the purposes of explanation, numerous specific details have been set forth in order to provide a thorough understanding of the embodiment(s). It will be apparent, however, to one skilled in the art, that one or more other embodiments may be practiced without some of these specific details. It should also be appreciated that reference throughout this specification to “one embodiment,” “an embodiment,” an embodiment with an indication of an ordinal number and so forth means that a particular feature, structure, or characteristic may be included in the practice of the disclosure. It should be further appreciated that in the description, various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of various inventive aspects.
While the disclosure has been described in connection with what is (are) considered the exemplary embodiment(s), it is understood that this disclosure is not limited to the disclosed embodiment(s) but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.