This application claims priority of Chinese Application No. 200720002699.0, filed on Jan. 26, 2007.
1. Field of the Invention
This invention relates to an infant rocking chair, and more particularly to a driving device for driving a seat body of an infant rocking chair to move back and forth as well as up and down.
2. Description of the Related Art
Conventional infant rocking chairs can only produce either only a back-and-forth motion or an up-and-down motion. However, a curved swinging motion in which a back-and-forth motion is combined with an up-and-down motion so as to simulate the motion usually made by a person taking care of and holding an infant in his or her arms, is able to impart greater comfort to the infant. Furthermore, conventional driving devices for driving infant rocking chairs include interconnected gears, which generate a large amount of noise during operation.
An object of this invention is to provide a driving device for driving a seat body of an infant rocking chair to reciprocate back and forth as well as up and down in such a manner that only little noise is generated, thereby resulting in infant comfort.
Another object of this invention is to provide a rocking chair that includes a seat body, which can be operated selectively in a back-and-forth motion or a curved swinging motion.
According to an aspect of this invention, a driving device for an infant rocking chair is provided. The infant rocking chair includes a seat body and a bottom seat. The driving device is adapted to drive the seat body to reciprocate relative to the bottom seat back and forth as well as up and down, and comprises:
a base adapted to be disposed between the seat body and the bottom seat;
a supporting element extending through the base and having a top end adapted to be connected to the seat body;
a first motion mechanism including a horizontal first guide path unit disposed at the bottom seat, and a first movable member disposed on the base and movable along the first guide path unit;
a second motion mechanism including a vertically varying second guide path unit disposed at the bottom seat, and a second movable member disposed fixedly on a bottom end of the supporting element and movable along the second guide path unit; and
a power mechanism for driving the first movable member and, thus, the base to reciprocate back and forth along the first guide path unit and for driving the second movable member along the second guide path unit so as to allow the supporting element to reciprocate up and down relative to the base.
According to another aspect of this invention, an infant rocking chair comprises:
a seat body;
a bottom seat;
a base adapted to be disposed between the seat body and the bottom seat;
a supporting element mounted movably on the base and having a top end adapted to be connected to the seat body;
a first motion mechanism including a first guide path unit disposed at the bottom seat, and a first movable member disposed on the base and movable along the first guide path unit; and
a second motion mechanism including a second guide path unit disposed at the bottom seat, and a second movable member disposed fixedly on a bottom end of the supporting element and movable along the second guide path unit;
wherein, when the base is moved back and forth relative to the bottom seat along the first guide path unit, an assembly of the seat body and the supporting element is moved up and down relative to the base.
According to still another aspect of this invention, an infant rocking chair comprising:
a seat body;
a bottom seat;
a supporting element having a top end adapted to be connected to the seat body;
a base adapted to be disposed between the seat body and the bottom seat and including a mounting member permitting the supporting element to be mounted movably thereon, and a locking unit for locking the supporting element relative to the mounting member;
a first motion mechanism including a first guide path unit disposed at the bottom seat, and a first movable member disposed on the base and movable along the first guide path unit so that the seat body is movable relative to the bottom seat in a first direction;
a second motion mechanism including a second guide path unit disposed at the bottom seat, and a second movable member disposed fixedly on a bottom end of the supporting element and movable along the second guide path unit so that the seat body is movable relative to the base in a second direction different from the first direction; and
a power mechanism for driving the base to reciprocate relative to the bottom seat along the first guide path unit in the first direction;
the supporting element and the locking unit being operable so as to convert the supporting element between a released state where the second movable member is in contact with the second guide path unit so as to allow the seat body to move relative to the base in the second direction when the base is moved relative to the bottom seat in the first direction, and a locked state where the second movable member is removed from the second guide path unit so as to allow the seat body to move relative to the bottom seat in only the first direction.
These and other features and advantages of this invention will become apparent in the following detailed description of the preferred embodiments of this invention, with reference to the accompanying drawings, in which:
Before the present invention is described in greater detail in connection with the preferred embodiments, it should be noted that similar elements and structures are designated by like reference numerals throughout the entire disclosure.
The base 2 is disposed between the seat body 11 and the bottom seat 12, and includes a substantially rectangular plate 21, a frustoconical connecting member 22 disposed fixedly on and above a central portion of the plate 21, a tubular rod-mounting member 23 inserted into and connected fixedly to the connecting member 22, and a locking unit 24. The rod-mounting member 23 is formed with a central bore 25 therethrough. The sleeve tube 31 is inserted into and connected fixedly to the rod-mounting member 23. The supporting rod 3 is movable axially within the sleeve tube 31. The supporting rod 3 and the sleeve tube 31 are formed respectively with two aligned holes 32, 33.
With further reference to
Each of the spring-accommodating portion 241 and the rotary knob 244 is formed with two inclined guiding surfaces 247 at two opposite side portions thereof. The inclined guiding surfaces 247 of the spring-accommodating portion 241 abut respectively against the inclined guiding surfaces 247 of the rotary knob 244 such that, when a force is applied to the rotary knob 244 for rotating the same in a direction, the rotary knob 244 moves away from the spring-accommodating portion 241 to thereby remove the movable pin 243 from the holes 32, 33. Hence, the supporting rod 3 is movable within the sleeve tube 31. In other words, the supporting rod 3 is converted into a released state. When the force is released, the left end portion of the movable pin 243 is biased by the spring 242 to contact an annular wall surface of the supporting rod 3.
The first motion mechanism 4 includes a horizontal first guide path unit 41 and a first movable member 42 movable along the first guide path unit 41. The first guide path unit 41 includes a pair of spaced-apart straight guiding rods 411 disposed on and above the bottom seat 12. The first movable member 42 includes two parallel rows of first rollers 421 disposed respectively on two opposite sides of the base 2 and movable respectively along the straight guiding rods 411. In this embodiment, each of the first rollers 421 is sleeved rotatably on an axle 422. The axles 422 are connected respectively to four supporting legs 26 extending respectively and integrally from four corners of the plate 21.
The second motion mechanism 5 includes a vertically varying second guide path unit 51 and a second movable member 52 movable along the second guide path unit 51 when the supporting rod 3 is in the released state. The second guide path unit 51 includes a pair of vertically curved guiding rods 511 parallel to and spaced apart from each other along a horizontal direction. Each of the curved guiding rods 511 has a sunken rod segment 512 at a middle portion thereof. The second movable member 52 includes a supporting frame 521 attached fixedly to a bottom end of the supporting rod 3, and a pair of second rollers 522. The second rollers 522 are sleeved rotatably on an axle 523 connected fixedly to the supporting frame 521. When the supporting rod 3 is converted from the locked state into the released state, it moves downwardly within the sleeve tube 31 by gravity until the second rollers 522 come into contact with the curved guiding rods 511, respectively, as shown in
The power mechanism 6 is configured as a variable speed motor including a vertical motor shaft 60. The driving device 1 further includes a crank 61 connected fixedly to the motor shaft 60 at one end thereof, and a link 62 having two ends connected respectively and pivotally to the base 2 and the other end of the crank 61. As such, rotation of the motor shaft 60 results in reciprocal movement of the first and second movable members 42, 52. Due to the presence of the crank 61 and the link 62 interconnected between the power mechanism 6 and an assembly of the first and second movable members 42, 52, the power mechanism 6 is capable of driving the first movable member 42 and, thus, the base 2 to reciprocate back and forth along the first guide path unit 41, and of driving the second movable member 52 along the second guide path unit 51 so as to allow an assembly of the supporting rod 3 and the seat body 11 to reciprocate up and down relative to the base 2.
With particular reference to
With particular reference to
The first motion mechanism 8 includes the straight guiding rods 81 and the first rollers 82. When the threaded rod 7 is rotated by the power mechanism 6, the second projecting tooth 27 of the base 2 is moved along the second helical slot 72. Hence, the first rollers 82 reciprocate along the straight guiding rods 81, thereby resulting in a back-and-forth motion of the base 2 relative to the bottom seat 12.
The second motion mechanism 9 includes the first helical slot 71 and the first projecting tooth 91. When the first projecting tooth 91 is moved along the first helical slot 71, the supporting rod 3 reciprocates up and down relative to the base 21.
When the supporting rod 3 is in the locked state and when the power mechanism 6 is operated, the first projecting tooth 91 is spaced apart from the first helical slot 71. This prevents movement of the seat body 11 relative to the base 2, thereby resulting in only a back-and-forth motion of the seat body 11.
When the supporting rod 3 is in the released state and when the power mechanism 6 is operated, the first projecting tooth 91 comes into contact with the threaded rod 7, and slides along the first helical slot 71 in the threaded rod 7. This allows for movement of the seat body 11 relative to the base 2, thereby resulting in a curved swinging motion of the seat body 11.
In an alternative design, the second helical slot 72 and the second projecting tooth 27 are omitted, and the shape of the first projecting tooth 91 is changed such that, when the supporting rod 3 is in the locked state, the first projecting tooth 91 is spaced apart from the bottom wall defining the first helical slot 71, and is in slidable contact with one of the lateral walls defining the first helical slot 71, thereby allowing the one of the lateral walls to perform the same function as the second helical slot 72 (see
With this invention thus explained, it is apparent that numerous modifications and variations can be made without departing from the scope and spirit of this invention. It is therefore intended that this invention be limited only as indicated by the appended claims.
Number | Date | Country | Kind |
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200720002699.0 | Jan 2007 | CN | national |