[0001] The present invention relates to a ball, more particularly to a light-emitting ball.
[0002] Sport activities played with a ball are popular. Examples of such sport activities
include baseball, basketball, soccer, volleyball, softball, and so on.
[0003] Referring to Figures 1 and 2, a conventional sports ball 1 includes an inflatable
ball bladder 12 and a skin layer 11 that encloses the ball bladder 12. The skin layer
11 has a plurality of interconnected patch segments 111 enclosing the ball bladder
12. Each of the patch segments 111 has a backing layer 112 attached to an outer surface
of the ball bladder 12, an intermediate layer 113 disposed on an outer surface of
the backing layer 112, and an outer layer 114 disposed on an outer surface of the
intermediate layer 113. In order to improve visual effects, patterns or colors on
the sports ball 1 can be changed only via the outer layer 114. However, even if the
patterns or the colors can be changed, an appearance of the sports ball 1 remains
dull.
[0004] Therefore, the object of the present invention is to provide a light-emitting ball,
which can effectively promote visual effects.
[0005] Accordingly, a light-emitting ball of the present invention comprises an inflatable
ball bladder, a transparent skin layer that encloses the ball bladder, and an electrically
operable display module that is disposed between the ball bladder and the skin layer
and that is operable to generate images visible through the skin layer.
[0006] Other features and advantages of the present invention will become apparent in the
following detailed description of the preferred embodiments with reference to the
accompanying drawings, of which:
Figure 1 is a perspective view of a conventional sports ball;
Figure 2 is a fragmentary sectional view of the conventional sports ball;
Figure 3 is a perspective view of a first preferred embodiment of a light-emitting
ball according to the present invention;
Figure 4 is a sectional view of the light-emitting ball of the first preferred embodiment
taken along line IV-IV in Figure 3;
Figure 5 is a circuit block diagram of a second preferred embodiment of a light-emitting
ball according to the present invention;
Figure 6 is a perspective view of a third preferred embodiment of a light-emitting
ball according to the present invention;
Figure 7 is a sectional view of the light-emitting ball of the third preferred embodiment;
and
Figure 8 is a circuit block diagram of the light-emitting ball of the third preferred
embodiment.
[0007] Before the present invention is described in greater detail, it should be noted that
like components are assigned the same reference numerals throughout the following
disclosure.
[0008] Referring to Figures 3 and 4, a first preferred embodiment of a light-emitting ball
2 according to the present invention is shown to comprise an inflatable ball bladder
21, a transparent skin layer 222, and an electrically operable display module 223.
[0009] The transparent skin layer 222 encloses the ball bladder 21. The electrically operable
display module 223 is disposed between the ball bladder 21 and the skin layer 222,
is attached to an inner surface of the skin layer 222, and is operable to generate
images visible through the skin layer 222. The display module 223 has a shape of an
annular band in this embodiment, and includes a remotely controllable battery-operated
power supply unit 227 for supplying electric power thereto.
[0010] In this embodiment, the skin layer 222 is made of a thermoplastic resin, such as
thermoplastic polyurethane (TPU). The display module 223 is a flexible organic light
emitting diode (OLED) display module. The material for the skin layer 222 is not limited
to the above example as long as light from the display module 223 can pass therethrough.
[0011] The light-emitting ball 2 further comprises a backing layer 224 that is disposed
between the display module 223 and the ball bladder 21, and a controller 23 that is
disposed on the display module 223, that is coupled to the display module 223, and
that is operable to provide image data thereto. The display module 223 is operable
to generate the images based upon the image data received thereby, and can be configured
to display predetermined images that may be, for example, stored in the display module
223.
[0012] Figure 5 illustrates a circuit block diagram of a controller 23 of a second preferred
embodiment of a light-emitting ball 2 according to the present invention.
[0013] In the second preferred embodiment, the controller 23 includes a processor 232 that
is electrically coupled to the remotely controllable battery-operated power supply
unit 227 and a screen 225 of the display module 223, and a data source 25 that is
coupled to the processor 232. The processor 232 is operable to provide the image data
to the screen 225 of the display module 223 based upon an output of the data source
25. The data source 25 includes at least one of a gravitational accelerometer 233,
a global positioning system (GPS) receiver module 235, and an image library module
251. The gravitational accelerometer 233 is used for measuring acceleration of the
ball 2 when moving and converting the measured acceleration into speed, and may transmit
a speed signal to the processor 232, for subsequent display of the ball speed on the
display module 223. The GPS receiver module 235 is used for obtaining coordinates
of the ball 2, and may transmit a coordinate signal to the processor 232 for subsequent
display of the position of the ball 2 on the display module 223 when the speed of
the ball 2 is below a threshold value. The image library module 251 may include the
predetermined images, which can be accessed by the processor 232 for subsequent transmission
to the display module 233.
[0014] Referring to Figures 6,7, and 8, a third preferred embodiment of a light-emitting
ball 2 of the present invention is shown to be similar to the first and second preferred
embodiments. The third preferred embodiment differs from the first and second preferred
embodiments in the following aspects.
[0015] The display module 223 includes a plurality of display units 253, each of which includes
a screen 225 and a remotely controllable battery-operated first power supply unit
227 for supplying electric power thereto. The skin layer 222 includes a plurality
of interconnected patch segments 221. Each of the display units 253 is attached to
an inner surface of a corresponding one of the patch segments 221. The controller
23 is disposed in the ball bladder 21, and further includes a remotely controllable
battery-operated second power supply unit 234 for supplying electric power thereto.
The light-emitting ball 2 further comprises a suspension mechanism 24 for suspending
the controller 23 in the ball bladder 21. The suspension mechanism 24 includes a frame
member 241, a set of first elastic components 242 that interconnect the controller
23 and the frame member 241, and a set of second elastic components 243 that interconnect
the frame member 241 and the ball bladder 21. By virtue of the elastic components
242, 243, shock forces that act on the controller 23 when the ball 2 is in use can
be reduced.
[0016] The controller 23 is coupled to each of the display units 253, and is operable to
provide image data thereto. Each of the display units 253 is operable to generate
the images based upon the image data received thereby. The controller 23 further includes
a transmitter 231 for transmitting the image data wirelessly to the display units
253, and each of the display units 253 further includes a receiver 226 for receiving
the image data from the controller 23 and for providing the received image data to
the screen 225. Like the previous embodiment, the controller 23 further includes a
processor 232 coupled to the transmitter 231, and a data source 25 coupled to the
processor 232. The processor 232 is operable to provide the image data to the display
units 253 based upon an output of the data source 25. The remotely controllable battery-operated
second power supply unit 234 is for supplying electric power to the processor 232.
[0017] In the third preferred embodiment, the first and second elastic components 242, 243
of the suspension mechanism 24 are not limited to compression springs, and may be
other elastic components as long as shock forces that act on the controller 23 can
be reduced.
1. A light-emitting ball (2) including:
an inflatable ball bladder (21); and
a skin layer (222) that encloses said ball bladder (21) ;
characterized in that said skin layer is transparent, and an electrically operable display module (223)
is disposed between said ball bladder (21) and said skin layer (222) and is operable
to generate images visible through said skin layer (222).
2. The light-emitting ball (2) as claimed in claim 1, characterized in that said skin layer (222) is made of a thermoplastic resin.
3. The light-emitting ball (2) as claimed in any one of the preceding claims, characterized in that said display module (223) is attached to an inner surface of said skin layer (222).
4. The light-emitting ball (2) as claimed in any one of the preceding claims, characterized in that said displaymodule (223) is a flexible organic light emitting diode (OLED) display
module.
5. The light-emitting ball (2) as claimed in any one of the preceding claims, further
characterized by a backing layer (224) disposed between said display module (223) and said ball bladder
(21).
6. The light-emitting ball (2) as claimed in any one of the preceding claims, characterized in that said display module (223) includes a remotely controllable battery-operated power
supply unit (227) for supplying electric power thereto.
7. The light-emitting ball (2) as claimed in any one of the preceding claims, further
characterized by a controller (23) coupled to said display module (223) and operable to provide image
data thereto, said display module (223) being operable to generate the images based
upon the image data received thereby.
8. The light-emitting ball (2) as claimed in claim 7, characterized in that said controller (23) includes a processor (232) coupled to said display module (223)
and a data source (25) coupled to said processor (232), said processor (232) being
operable to provide the image data to said display module (223) based upon an output
of said data source (25).
9. The light-emitting ball (2) as claimed in claim 8, characterized in that said data source (25) includes at least one of a gravitational accelerometer (233),
a global positioning system receiver module (235), and an image library module (251).
10. The light-emitting ball (2) as claimed in any one of claims 1 to 5, characterized in that said display module (223) includes a plurality of display units (253), each of which
includes a remotely controllable battery-operated power supply unit (227) for supplying
electric power thereto.
11. The light-emitting ball (2) as claimed in claim 10, characterized in that said skin layer (222) includes a plurality of interconnected patch segments (221),
each of said display units (253) being attached to an inner surface of a corresponding
one of said patch segments (221).
12. The light-emitting ball (2) as claimed in any one of claims 10 and 11, further characterized by a controller (23) coupled to each of said display units (253) and operable to provide
image data thereto, each of said display units (253) being operable to generate the
images based upon the image data received thereby.
13. The light-emitting ball (2) as claimed in claim 12, characterized in that said controller (23) includes a transmitter (231) for transmitting the image data
wirelessly to said display units (253), and each of said display units (253) includes
a receiver (226) for receiving the image data from said controller (23).
14. The light-emitting ball (2) as claimed in claim 13, characterized in that said controller (23) further includes a processor (232) coupled to said transmitter
(231) and a data source (25) coupled to said processor (232), said processor (232)
being operable to provide the image data to said display units (253) based upon an
output of said data source (25).
15. The light-emitting ball (2) as claimed in claim 14, characterized in that said controller (23) further includes a remotelycontrollablebattery-operatedpower
supply unit (234) for supplying electric power to said processor (232).
16. The light-emitting ball (2) as claimed in any one of claims 13 to 15, characterized in that said controller (23) is disposed in said ball bladder (21) and further includes a
remotelycontrollablebattery-operatedpower supply unit (234) for supplying electric
power thereto.
17. The light-emitting ball (2) as claimed in claim 16, further characterized by a suspension mechanism (24) for suspending said controller (23) in said ball bladder
(21), said suspension mechanism (24) including a frame member (241), a set of first
elastic components (242) that interconnect said controller (23) and said frame member
(241), and a set of second elastic components (243) that interconnect said frame member
(241) and said ball bladder (21).