1. Field of the Invention
This invention relates to a ball racket, more particularly to a ball racket having a telescopic shaft unit.
2. Description of the Related Art
A conventional tennis racket generally includes a head frame and a shaft extending from the head frame and having a grip portion. Since the distance between the head frame and the grip portion is fixed, e.g., 19″, 23″, 25″ and 27″, the shafts of tennis rackets have to be formed in various lengths to suit different users. Hence, a fast-growing teenager tennis player needs to buy new rackets with longer shafts from time to time.
The object of the present invention is to provide a ball racket having a telescopic shaft unit whose length is adjustable to suit different users.
According to this invention, the ball racket includes a head frame adapted for racket stringing, a shaft unit, an actuator unit, an expandable shell, and a force transmitting mechanism. The shaft unit includes first and second tubes. The first tube has a first front end securely connected to the head frame, and a first tubular segment extending from the first front end along an axis to terminate at a first rear end. The second tube has a second front end and a second tubular segment which extends from the second front end along the axis to terminate at a second rear end. An inner tubular surface of the second tubular segment is configured to be frictionally engaged with and to be movable relative to an outer surrounding surface of the first tubular segment along the axis. The actuator unit has an actuating end which is disposed within the first tube and which is radially spaced apart from the inner surrounding surface by a surrounding gap, and a shank body which extends from the actuating end along the axis to terminate at an operated end that extends outwardly of the first rear end and that is operable manually to rotate the actuating end about the axis. The expandable shell is inserted into the surrounding gap, and has outer and inner shell surfaces respectively confronting the inner surrounding surface and the actuating end. The force transmitting mechanism is disposed between the inner shell surface and the actuating end such that, as a result of counterclockwise rotation of the actuating end about the axis, the expandable shell is forced to expand radially to an expanded position, where the outer surrounding surface is urged against the inner tubular surface by an urging force to result in an increased frictional force therebetween, thereby guarding against movement of the second tube relative to the first tube along the axis, and such that, as a result of clockwise rotation of the actuating end about the axis, the expandable shell is displaced to a contracted position, where the inner tubular surface is relieved of the urging force so as to be movable relative to the outer surrounding surface along the axis.
Other features and advantages of the present invention will become apparent in the following detailed description of the preferred embodiment of the invention, with reference to the accompanying drawings, in which:
Referring to
The head frame 10 is adapted for racket stringing. The shaft unit 20 includes a first tube 30 and a second tube 40. The first tube 30 has a first front end 39 securely connected to the head frame 10, and a first tubular segment 31 extending from the first front end along an axis (X) to terminate at a first rear end 32. The first tubular segment 31 has inner and outer surrounding surfaces 33,35 radially opposite to each other. The inner surrounding surface 33 includes a first larger-diameter region 331 and a first smaller-diameter region 332 disposed adjacent to the first front end 39 and the first rear end 32, respectively. The first tubular segment 31 is punched radially and inwardly to form a pair of guard rail regions 34 on the inner surrounding surface 33, and a pair of corresponding keyway regions 36 in the outer surrounding surface 35. The second tube 40 has a second front end 49 and a second tubular segment 41 which extends from the second front end 49 along the axis (X) to terminate at a second rear end 42. The second tubular segment 41 has an inner tubular surface 43 which has a pair of keys 44 extending radially and inwardly therefrom and engaging slidably and respectively the keyway regions 36 so as to guide movement of the first tubular segment 31 relative to the second tubular segment 41 along the axis (X). The inner tubular surface 43 includes a second larger-diameter region 431 and a second smaller-diameter region 432 which are disposed adjacent to the second front end 49 and the second rear end 42, respectively. The second larger-diameter region 431 has a cross-section configured to mate with the outer surrounding surface 35 for facilitating movement of the second tube 40 relative to the first tube 30. The second tubular segment 41 further has an outer tubular surface 45 which is radially opposite to the inner tubular surface 43 and which is configured to be gripped by a player.
The actuator unit 50 has an actuating end 51 which is disposed within the first tube 30 and which is radially spaced apart from the first larger-diameter region 331 by a surrounding gap (A), and a shank body 54 which extends from the actuating end 51 along the axis (X) to terminate at an operated end 53 that extends outwardly of the first rear end 32 and through the second smaller-diameter region 432, and which is movable along the axis (X) through the first smaller-diameter region 332. A twistable knob 70 is disposed rearwardly of the second rear end 42, is coupled with the operated end 53 by means of a pin 80 that extends radially through an outer surrounding wall 72 and an inner tubular wall 73 of the twistable knob 70 and the operated end 53, and is operable manually to rotate the actuating end 51 about the axis (X). In addition, the actuator unit 50 further has a small-diameter portion 55 extending forwardly from the actuating end 51, and front and rear stoppers 56,57 which are respectively disposed forwardly of the small-diameter portion 55 and rearwardly of the actuating end 51.
The expandable shell 60 is inserted into the surrounding gap (A), and includes two shell halves 61 which respectively have inner surface regions 611 cooperatively serving as an inner shell surface that confronts the actuated end 51, and outer surface regions 612 cooperatively serving as an outer shell surface that confronts the inner surrounding surface 33 and that has a cross-section configured to mate with the first larger-diameter region 331, and a spring O-ring 62 which is fitted in engaging grooves 613 formed respectively in the outer surface regions 612 to be hooped on the outer surface regions 612 so as to bias the inner surface regions 611 toward the actuating end 51. Each of the shell halves 61 has groove segments 614 disposed in the outer surface region 612 thereof. The groove segments 614 of the shell halves 61 extend in an axial direction parallel to the axis (X) to cooperatively define a pair of guiding grooves 615. The guard rail regions 34 of the first tube 30 are configured to be fitted into the guiding grooves 615 in spline engagement.
The force transmitting mechanism includes internally and externally threaded portions 64,52 which are disposed respectively on the inner surface regions 611 and the actuating end 51, and which are threadedly engaged with each other. The externally threaded portion 52 has an outer diameter which is gradually increased toward the shank body 54.
As shown in
As shown in
While the present invention has been described in connection with what is considered the most practical and preferred embodiment, it is understood that this invention is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretations and equivalent arrangements.
Number | Date | Country | Kind |
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098206790 | Apr 2009 | TW | national |