1. Field of the Invention
The present invention relates to a wrench.
2. Description of the Prior Art
A conventional wrench functions by engagement of two toothed portions formed on a movable jaw and on a handle respectively. However, due to the torque exerted to the wrench, the toothed portions are possible to be damaged or abraded.
To solve the problem, U.S. Pat. No. 1,434,754 provides an innovative wrench. The wrench has a spring disposed in a receiving groove, and a fixing pin is inserted through a body and the receiving groove. The wrench has a protrusion below the receiving groove and a toggle element in a restricting recess below the receiving groove. Most of the force exerting to the movable jaw by the toggle element is borne by the protrusion. The toggle element extends outward obliquely from a top of the handle, but the protrusion extends obliquely toward the restricting recess. Thus, the toggle element and the protrusion have opposite extending directions so that the toggle element can abut against the protrusion just by point contact. Also, the toggle element abuts against the protrusion obliquely, so only part of force is used for pushing the protrusion horizontally. In other words, though the wrench has no engagement between toothed portions, the wrench is still difficult to be operated as a result of that only part of force is transmitted to the movable jaw and the fixed jaw.
Besides, the movable jaw and the fixed jaw are positioned by two plates, so two receiving grooves and two fixing pins are needed. The wrench is assembled by inserting the two fixing pins through the movable jaw, the fixed jaw, and the receiving grooves, so the structure is too complicated.
The main object of the present invention is to provide a wrench which is easy to operate and has a simple structure.
To achieve the above and other objects, a wrench of the present invention includes a main body, a jaw portion, a handle, and an elastic element.
The main body is formed in one piece and forms a fixed jaw at an end. The main body further forms a sliding slot along a first direction which is substantially perpendicular to an extending direction of the fixed jaw.
The jaw portion integrally forms a movable jaw at an end and a sliding portion at a bottom of the movable jaw. The sliding portion forms at least a restricting recess and is slidably disposed in the sliding slot. A jaw opening is defined between the movable jaw and the fixed jaw. An interface is defined by a contact surface between a bottom of the sliding portion and a bottom surface of the sliding slot away from the fixed jaw. An extension of the interface traverses the restricting recess.
The handle is rotatably disposed on the main body. The handle has at least one toggle element at an end, and the toggle element extends into the restricting recess. The handle is able to pivot between a driving position and a release position. When the handle is at the driving position, the toggle element abuts against the sliding portion to retain the jaw opening in a minimum size. When the handle is at the release position, the movable jaw is able to move away from the fixed jaw to enlarge the jaw opening.
The elastic element is disposed between the main body and the jaw portion and provides an elastic force so that the movable jaw tends to move toward the fixed jaw.
Thereby, the wrench of the present invention is able to fully transmit the force exerted by a user to the movable jaw and the fixed jaw. Thus, the wrench of the present invention is easy to be operated and has a simple structure to reduce manufacturing cost.
The present invention will become more obvious from the following description when taken in connection with the accompanying drawings, which show, for purpose of illustrations only, the preferred embodiment(s) in accordance with the present invention.
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The main body is formed in one piece and forms a fixed jaw 11 at an end. The main body 1 further forms a sliding slot 12 along a first direction which is substantially perpendicular to an extending direction of the fixed jaw 11. Besides, the main body 1 also forms a through hole 13 and a trough 14. The sliding slot 12, the through hole 13, and the trough 14 communicate with each other wherein the through hole 13 is located between the sliding slot 12 and the trough 14. In addition, an axial direction of the through hole 13 is perpendicular to the first direction. In view of the sliding slot 12, the sliding slot 12 includes a first slot 121 and a second slot 122 penetrating the main body 1. A sliding axis A is defined by an extending direction of the sliding slot 12 and is perpendicular to the first direction. More preferably, the first slot 121 has a width smaller than a width of the second slot 122.
The jaw portion 2 integrally forms a movable jaw 21 at an end of the jaw portion 2 and a sliding portion at a bottom of the movable jaw 21. The sliding portion is slidably disposed in the sliding slot 12 and forms at least one restricting recess B. A jaw opening is defined between the movable jaw 21 and the fixed jaw 11. A size of the jaw opening is changed when the sliding portion moves. The jaw opening is adapted for clamp a nut 6, a screw, or other analogous objects, as shown in
In view of the sliding portion, the sliding portion includes a first sliding element 221, a second sliding element 222, and a third sliding element 223. The first sliding element 221 has a first end 221a and a second end 221b. The second sliding element 222 is located on a bottom of the first sliding element 221 near the first end 221a of the first sliding element 221. The second sliding element has a third end 222a and a fourth end 222b. An angle between the sliding axis A and the fourth end 222b of the second sliding element 222 is equal to or larger than 90 degrees. In the major embodiment, a bottom face of the first sliding element 221 extends parallelly to the first direction, and a terminal surface of the fourth end 222b of the second sliding element 222 is perpendicular to the first direction. In other words, an angle between the terminal surface of the fourth end 222b of the second sliding element 222 and the sliding axis A is 90 degrees. The third sliding element 223 is located on the bottom of the first sliding element 221 near the second end 221b of the first sliding element 221, wherein an angle between a terminal surface of an end of the third sliding element 223 near the second sliding element 222 and the sliding axis A is equal to or larger than 90 degrees. More preferably, the terminal surface of an end of the third sliding element 223 near the second sliding element 222 is perpendicular to the first sliding element 221. That is, an angle between the terminal surface of an end of the third sliding element 223 near the second sliding element 222 and the sliding axis A is 90 degrees.
The restricting recess B is defined by part of the bottom of the first sliding element 221, the fourth end 222b of the second sliding element 222, and the end of the third sliding element 223 near the second sliding element 222. More preferably, a contour of the first sliding element 221 corresponds to the first slot 121, and contours of the second sliding element 222 and the third sliding element 223 correspond to the second slot 122 respectively. Thus, the first sliding element 221 has a width smaller than widths of the second sliding element 222 and the third sliding element 223, and the width of the second sliding element 222 is equal to the width of the third sliding element 223. When the sliding portion is slidably disposed in the sliding slot 12, the first sliding element 221 is located in the first slot 121, and the second and the third sliding elements 222,223 are located in the second slot 122 respectively. In addition, the jaw portion forms a receiving groove 222c located outside a range which a width of an opening of the restricting recess B extends along a second direction. The second direction is substantially perpendicular to the first direction. More preferably, the receiving groove 222c is formed on the sliding portion, more specifically on the second sliding element 222.
The elastic element 4 is disposed in the receiving groove 222c. A fifth end of the elastic element 4 is connected with the main body 1 via the abutting element 3, and a sixth end of the elastic element 4 abuts against a side wall of the receiving groove 222c. More specifically, a protrusion 224 is formed from the side wall of the receiving groove 222c along the first direction, and the sixth end of the elastic element 4 is sleeved onto the protrusion 224. The abutting element 3 is inserted through the main body 1 and the receiving groove 222c. The fifth end of the elastic element 4 abuts against an end of the abutting element 3 near the third end 222a of the second sliding element 222, and the sixth end of the elastic element 4 abuts against a side wall of the receiving groove 222c near the third end 222a of the second sliding element 222. More preferably, the abutting element 3 is rod-shaped, and the sliding axis A traverses an axis of the abutting element 3. Moreover, the receiving groove 222c extends along the first direction and defines a central axis traversing a center between two ends of an extending direction of the receiving groove 222c. Also, the central axis traverses the axis of the abutting element. In other words, the central axis overlaps the sliding axis A.
The handle 5 is rotatably disposed on the main body 1. A first side face 51 and a second side face 52 are formed at two sides of the handle 5 in a width direction. The width direction of the handle 5 is parallel to the first direction. A toggle element 53 is disposed at an end of the handle 5 and extends into the restricting recess B, and an extension of the interface traverses the toggle element 53, as shown in
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In conclusion, as a result of that the extension of the interface traverses the toggle element 53 when the toggle element 53 abuts against the second sliding element 222, force exerted by a user is transmitted completely to the second sliding element 222 horizontally and further to the abutting element 3 without any component of force. Thereby, force exerted by a user can be fully transmitted to the movable jaw 21 and the fixed jaw 11. More specifically, when the sliding axis A overlaps the central axis of the receiving groove 222c and traverses the axis of the abutting element 3, force can be completely transmitted.
Similarly, when the toggle element 53 abuts against the third sliding element 223, the extension of the interface traverses the toggle element 53 so that force can be fully transmitted to the third sliding element 223 horizontally. Thereby, the jaw portion 2 can be easily pushed by the toggle element 52 away from the fixed jaw 11. More specifically, the sliding axis A also traverses the toggle element so that force is able to be completely transmitted.
Furthermore, the terminal face of the fourth end 222b of the second sliding element 222 is perpendicular to the first sliding element 221, and the terminal face of the end of the third sliding element 223 near the second sliding element 222 is perpendicular to the first sliding element 221 too. Hence, the first propping face 531 abuts against the terminal face of the fourth end 222b of the second sliding element 222 by face contacting, and the second propping face 532 also abuts against the terminal face of the end of the third sliding element 223 by face contacting. Thereby, force can be transmitted to the second sliding element 222 or the third sliding element 223 to improve the durability of the toggle element.
Besides, the present invention has a simple structure. The wrench of the present invention can be adapted for clamping a nut or other similar objects by pulling the handle to drive the toggle element 53 to abut against the fourth end 222b of the second sliding element 222. Thus, manufacturing is simplified, and cost is reduced. More importantly, problems due to engagement of teeth can be avoided.