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To display the first inner object 30, the entire, or a potion of, the outer enclosure shell 20 may be transparent or translucent. In this embodiment, the outer enclosure shell 20 has a spherical shape, and the first inner object 30 may also have a spherical shape. The outer enclosure shell 20 is not fixed onto the base 90 so that a user can pick up the outer enclosure shell 20 (and the first inner object 30 with it); however, the outer enclosure shell 20 may also be fixed onto the base 90.
The base 90 comprises a power supply element 91, a control switch 92 and a plug 93. In this embodiment, the power supply element 91 comprises a coil 911 which is used to send power to the first inner object 30. The base 90 may instead have a battery for the power supply, rather than utilizing the power plug 93.
The first inner object 30 comprises a first enclosure shell 31, at least one illumination element 55 (such as one or a plurality of LEDs) and a power receiving element 51. The illumination element 55 is disposed in the center of the first inner object 30. For example, the illumination element 55 may be fixed at a desired position by way of a frame 57. The first enclosure shell 31 may be completely or partially translucent, so that light from the illumination element 55 may disperse.
The power receiving element 51 comprises a coil 511; using electromagnetic induction between the coil 911 and the coil 511, the power receiving element 51 obtains power via the power supply element 91, and provides the power to the illumination element 55. This power transmission technology, utilizing coils without the need of a wired connection or physically connecting points, is a well known technology; the technology is used, for example, in RFIDs, electrical toothbrushes, and cell phone chargers, and so needs no further description.
The object 10 with a rotational effect of the present invention further comprises a rotation means 70 for rotating the first inner object 30. In the first embodiment, the rotation means 70 comprises an eccentric motor 71 disposed in the first inner object 30. When the eccentric motor 71 rotates, the first enclosure shell 31 also rotates. Since the first liquid 81 is disposed between the first enclosure shell 31 and the outer enclosure shell 20, the first enclosure shell 31 is very easy to rotate; therefore, even when the eccentric motor 71 rotates slowly, the first enclosure shell 31 still rotates.
In the first embodiment, the first inner object 30 further comprises a storage element 53 (such as a capacitor or a battery) electrically connected to the power receiving element 51. For example, when the user picks up the outer enclosure shell 20 and walks away from the base 90, although the power receiving element 51 is then unable to obtain power from the power supply element 91, the storage element 53 can continue to provide power to the eccentric motor 71 and to the illumination element 55 for a period of time. Of course, when the control switch 92 turns off the power supply element 91, the storage element 53 can also continue to provide power.
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The heavier block 35, illumination element 551, illumination element 552, power receiving element 51, control circuit 56 and the frame 57 are all disposed in the second enclosure shell 42.
The rotation means in the fourth embodiment may be identical to the rotation means in the second and third embodiments, utilizing magnetic power to rotate the first enclosure shell 31. The second magnetic object 74 is disposed at a position near the base 90 on the first enclosure shell 31 to be affected by the first magnetic object 732.
The illumination element 551 and the illumination element 552 face in different directions; the user may use the control switch 92 and the control circuit 56 (such as a chip or a simple logic circuit) to control the illumination element 551 and the illumination element 552 so that both are turned on, or just one of the illumination elements is turned on. Although the control switch 92 is not directly connected to the control circuit 56, the control switch 92 can still send a signal to the control circuit 56 via currents or signals having different frequencies (such as is used in RFID technology).
In the fourth embodiment, when the first enclosure shell 31 rotates, the second enclosure shell 42 stays still or moves relatively slowly. Following description explains the benefits provided by the fourth embodiment.
If only the illumination element 551 is turned on, while the illumination element 552 is turned off, and if the first enclosure shell 31 is covered by a map of the earth, the object 10 becomes a globe 11. With reference to
If the object 10 with a rotational effect in the third embodiment is also a globe 11, the illuminated or brighter area on the earth surface in the third embodiment rotates with the first enclosure shell 31, which means the brighter will stay on the same area (e.g. the American continental region keeps brighter). Then the effect will be different from that of a rotational globe shown on the webpage www.mpegla.com/index1.cfm.
To provide a cloud-like effect for the globe, another white liquid (which does not dissolve in the first liquid 81) may be added into the first liquid 81.
The outer enclosure shell 20 and the first inner object 30 in the above first to fourth embodiments all have a spherical shape; however, it will be appreciated that various shapes may be employed, as illustrated in the following fifth to eighth embodiments.
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Although the present invention has been explained in relation to its preferred embodiments, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed. For example, the base 90 can also be disposed above the outer enclosure shell 20, and the power receiving element 51 of the first inner object 30 could be moved up to be close to the base 90.
Number | Date | Country | Kind |
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095124926 | Jul 2006 | TW | national |