1. Technical Field
The present disclosure relates to toys, and more particularly, to a simulated pupil assembly capable of changing the size in a simulated eye using same.
2. Description of Related Art
The size of a person's pupil can dilate or contract according to the person's emotion. The pupil is dilated when a person is terrified or astonished. On the other hand, the pupil is contracted when a person is unpleasable or uninterested.
Now, various dolls and animated plush type toys as known can imitate human and/or animal characteristics. In such toys, various efforts have been made to simulate the eyes of human or animal. Some dolls only have plastic button eyes. And some simulated eyes are painted on the face of the dolls. However, the eyes of such toys are toneless, and can not change the size of the pupils to express lively expression.
What is needed, therefore, is a simulated pupil assembly capable of changing the size in a simulated eye using same to overcome or at least alleviate the above-described problem.
Many aspects of the present simulated pupil assembly and a simulated eye using the same can be better understood with reference to the following drawing. The components in the drawing are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present simulated pupil assembly and a simulated eye using same.
Embodiments of the present disclosure will now be described in detail below, with reference to the accompanying drawings.
Referring to
The simulated eyeball assembly 100 is a ball-shaped configuration. The simulated eyeball assembly 100 defines a receiving space 110 and a first circular through hole 120. The simulated eyeball assembly 100 includes an outer surface 130 and an inner surface 140. The color of the outer surface 130 is white. The first circular through hole 120 communicates with the receiving space 110. A fixing structure 141 extends from the inner surface 140 opposite to the first circular through hole 120 toward to a center of the receiving space 110.
The simulated pupil assembly 200 is received in the receiving space 110 facing the first circular through hole 120. The simulated pupil assembly 200 includes a substrate 210, a number of blades 220 engaged with the substrate 210, and a driving device 230 engaged with the substrate 210 and the blades 220. In the present embodiment, the pupil assembly 200 has eighteen blades 220.
Referring to
The circular plate 215 defines an aperture 215d, a number of rectangular slots 215e, and a number of rotation portions 215f. The aperture 215d is formed in a center of the circular plate 215. The number of rectangular slots 215e are aligned equidistantly around the aperture 215d in the surface adjacent the sidewall 215c of the circular plate 215. The number of rotation portions 215f are formed corresponding to the rectangular slots 215e on the cylindrical surface. A center axis OO′ is defined passing through the center of the center hole 215d. The rotation portion 215f also can be a sleeve. In the present embodiment, the center axis of each rotation portion 215f is perpendicularly to the center axis OO′. In the present embodiment, the simulated pupil assembly 200 has eighteen rectangular slots 215e and eighteen rotations portions 215f corresponding to the rectangular slots 215e.
The blade 220 is an arcuate configuration. The blades 220 can be made from plastic or metal material. In the present embodiment, the blades 220 are made from ferromagnetic material such as nickel or iron. Each blade 220 includes a linking end 221, a distal end 222, and an outside surface 223. The linking end 221 can be a rotating shaft or a sleeve. In the present embodiment, the linking end 221 is a sleeve. The linking end 221 is rotatably mounted to the corresponding rotation portion 215f. In the present embodiment, the color of the outside surface 223 is blue. When the linking end 221 is rotatably mounted to the corresponding rotation portion 215f, thereby the eighteen blades 220 are arranged to sequentially overlap each other to cooperatively form a dome. The distal ends 222 cooperatively define a second hole 222a. When the blades 220 rotate about the rotation portions 215f toward or away from the substrate 210, the diameter of the second hole 222a will be corresponding contracted or dilated. In the present embodiment, the second hole 222a is coaxial to the first circular through hole 120.
Referring to
The transmission mechanism 232 is connected the motor 231 to the blades 220. The transmission mechanism 232 includes a transmission shaft 232a, a circular transmission frame 232b, a center support 232c, and a hinge 232d. The center support 232c lies on a diameter of the circular transmission frame 232b. The center support 232c is connected the transmission shaft 232a to the circular transmission frame 232b. The transmission shaft 232a is connected to the motor shaft 231a through the hinge 232d. The circular transmission frame 232b is received in a space formed between the blades 220 and the substrate 210. In the present embodiment, the circular transmission frame 232b is magnetic. When the motor shaft 231a moves along a direction A of the center axis OO′, the blades 220 are driven magnetically to move in the A direction, as a result the second hole 222a of the simulated pupil assembly 200 is dilated. Similarly, when the motor shaft 231 a moves along an inverted direction of the center axis OO′, the blades 220 are driven magnetically to move in the inverted direction of A direction, as a result the second hole 222a of the simulated pupil assembly 200 is contracted. The circular transmission frame 232b can also be a non-magnetic substance. With the above configuration, the simulated pupil assembly 200 is capable of changing the size of the second hole 222a. .
Referring to
When the motor shaft 431a moves along a direction B of the center axis OO′, the magnetic spring 433 is constricted, the blades 420 are driven magnetically to move in the B direction, as a result the simulated eye 20 looks have a smaller pupil. Otherwise, when the motor shaft 431a moves along an inverted direction of the center axis OO′, the blades 420 are driven magnetically to move in the inverted direction of the B direction, as a result the simulated eye 20 looks have a larger pupil.
Referring to
While certain embodiments have been described and exemplified above, various other embodiments will be apparent to those skilled in the art from the foregoing disclosure. The present disclosure is not limited to the particular embodiments described and exemplified, and the embodiments are capable of considerable variation and modification without departure from the scope of the appended claims.
Number | Date | Country | Kind |
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200910303816.0 | Jun 2009 | CN | national |