The present invention relates to electronic device and projectors.
Main modules constituting a projection type display device for projecting an image include light sources such as lamps, lasers, and LEDs (Light Emitting Diode), illumination optical systems, projection lenses, electronic substrates, and power supplies. Optical electronic components for generating images using an optical modulator such as DMD (Digital Mirror Device) or a liquid crystal panel are mounted on the illumination optical system. In response to an external video signal, an electronic substrate generates a drive signal for driving the optical modulator. Strong light is sent from the light source of the lamp or laser/LED to the illumination optical system and irradiates the light modulator through each optical component. The projection lens enlarges the light emitted from the light modulator and projects it on the screen.
In these processes, the electronic component generates heat due to electrical resistance, the optical component temperature rise due to the absorption of light is generated. Each component must be operated so as not to exceed the allowable temperature to achieve the desired performance. Therefore, a plurality of cooling fans are mounted in the device, the blower from the cooling fan cools each component, to prevent a temperature increase so as not to exceed the allowable temperature. Further, since the life time of the liquid crystal panel is determined according to the temperature, it is necessary to further reduce the temperature.
In order to cool liquid crystal panels and peripheral optical components, cooling air blown out from a blower fan, which is generally arranged around an illumination optical system, is guided to liquid crystal panels and optical components using a cooling duct. In 3LCD (Liquid Crystal Display) optical illumination system in which the direction in which the integrators and PBSs (Polarizing Beam Splitter) are arranged side by side is perpendicular to the projection direction of the image, the illumination optical system becomes a rectangular optical layout because it is long in the optical axis direction of the integrator and short in the direction perpendicular to the optical axis direction of the integrator.
Also, a pair of fans are respectively arranged on both sides of the projection lens, an apparatus for performing cooling is considered (e.g., see Patent Document 1.).
[Patent Document 1] U.S. Pat. No. 3,467,697
In the arrangement shown in
Thus, there is a problem in which it is impossible to perform efficient cooling.
An object of the present invention is to provide an electronic device and a projector to solve the problems described above.
The electronic device of the present invention,
an electronic device, comprising:
a plurality of blowers, wherein
the plurality of blowers cool each of three liquid crystal panels, mounted on an illumination optical system for outputting light to a projection lens for light modulation, and are disposed so that the rotation axis of the motor of the blowers is arranged along a first direction in which the two liquid crystal panels of the three liquid crystal panels face each other on the opposite side of the three liquid crystal panels from the projection lens side.
Further, the projector of the present invention,
a projector, comprising:
an electronic device, comprising
the projection lens; and
a light source, wherein
the electronic device that receives the light from the light source and modulates the incident light.
According to the present invention, high cooling efficiency can be obtained.
It will be described below with reference to the accompanying drawings embodiments of the present invention.
Thus, in the electronic device for projecting an image using three liquid crystal panels, along a direction in which the two liquid crystal panels facing each other, blowers for cooling the three liquid crystal panels are arranged side by side. Thus, it is possible to increase the cooling efficiency.
Illumination optical system 112 that is provided projection lens 121 has a XDP122 which is a cross dichroic prism, three liquid crystal panels 123-125, mirror 126, field lens 127, mirror 128, relay lens 129, mirror 130, relay lens 131, color filter 132, field lens 133, color filter 134, field lens 135, PBS (Polarizing Beam Splitter) 136 which is a polarizing beam splitter, and integrator 137. Light source unit 113 includes lens 138, DM139, lens 140, phosphor 141, lens 142, lens 143, and laser 144. Each component of illumination optical system 112 and light source unit 113 is identical to that of a typical projector.
Light from laser 144 is output using other components constituting light source unit 113. Also, in this embodiment, of the light that passed through integrator 137, PBS136 and field lens 135, blue light is reflected by color filter 134, passes through field lens 127 and is reflected by mirror 126. Also, of the light that has passed through integrator 137, PBS136 and field lens 135, green light passes through color filter 134 and field lens 133 and is reflected color filter 132. Also, of the light that has passed through integrator 137, PBS136 and field lens 135, red light passes through color filter 134, field lens 133, color filter 132 and relay lens 131, is reflected by mirror 130, passes through relay lens 129 and is reflected by mirror 128. Therefore, liquid crystal panel 123 modulates the blue light. Further, liquid crystal panel 124 modulates the green light. Further, liquid crystal panel 125 modulates the red light.
In the arrangement of such a 3LCD, the planar shape of illumination optical system 112 is a rectangle in the direction in which liquid crystal panel 123 and liquid crystal panel 125 face the long side.
Fans 203 to 205, which are blowers, are provided to cool liquid crystal panels 123-125, respectively. Fans 203 to 205 are arranged side by side along a first direction in which liquid crystal panel 123 and liquid crystal panel 125 of liquid crystal panels 123 to 125 face each other on a side opposite to the side in which projection lens 121 of liquid crystal panels 123 to 125 is disposed. Fans 203 to 205 are also arranged such that their respective inlets face each other. Incidentally, when the components constituting illumination optical system 112 are housed in one rectangular parallelepiped that can store their layout (broken line of illumination optical system 112 shown in
Incidentally, the rotation of fans 203 to 205 is individually controlled, and the rotational speed may be different from each other. This rotational speed may be set in advance based on the operation of the light modulation in liquid crystal panels 123 to 125, may be one that measures the temperature of liquid crystal panels 123 to 125 and is controlled based on the measured temperature, or may be one that is controlled based on the use period of liquid crystal panels 123 to 125.
Incidentally, fans 203 to 205 are arranged at intervals at which a predetermined intake amount can be secured. Further, a partition plate may be provided between each of fans 203 to 205. Further, when fans 203 to 205 perform air intake from both sides, the position of the partition plate may be determined based on the ratio of the air intake capacity from one side to the air intake capacity from the other side. Specifically, for example, when the air intake capacity from the left side surface of fans 203 to 205 is larger than the air intake capacity from the right side surface, the distance from the left side surface of fans 203 to 205 to the partition plate on the left side may be longer than the distance from the right side surface of fans 203 to 205 to the partition plate on the right side.
Also, the positions of the respective air outlets of fans 203 to 205 with respect to cooling ducts 304, i.e., the distances from the air outlets of fans 203 to 205 to the receptacles of cooling ducts 304, are preferably equal to each other.
Further, as shown in
In this embodiment, along the long side of the illumination optical system optical layout becomes rectangular, fans for cooling the liquid crystal panel are arranged side by side. In this way, it is possible to secure a wider width of the flow path of the cooling duct than those arranged side by side the cooling fan on the short side. Further, the length of the flow path of the cooling duct from the cooling fan to the liquid crystal panel is shorter than that arranged side by side the cooling fan on the short side. Thus, it is possible to improve the cooling efficiency of the liquid crystal panel. Further, the bending of the cooling duct (passage of the cooling air) is reduced, the flow path resistance in the cooling duct is reduced and it is possible to minimize the loss of the flow of the cooling air. Further, the layout area occupied in the fan arrangement is reduced and it is therefore possible to achieve miniaturization of the device.
Further, a cooling duct is arranged in the bottom portion of the illumination optical system, on the side opposite to the projection lens side of the liquid crystal panel, the three blower fans are arranged in a direction in which the two liquid crystal panels face each other, so that the air inlets face each other. Thus, by using a blower fan having a feature in which the direction of the intake air and the direction of the blowout are orthogonal, the width of the intake duct of the blower fan can also be ensured widely. Furthermore, when using blower fans for performing air intake from both sides, by providing a partition plate between the fan and the fan, it is possible to achieve further cooling efficiency. In addition, the three air outlets of the blower fans are aligned, and the cooling duct takes on a simple shape. Further, by this arrangement, the height of the top surface of the illumination optical system and the height of the blower fan are the same and it is thus possible to reduce the height of the projector apparatus. Further, by placing the blower fan vertically, it is possible to place the illumination optical system in the portion that is created by the difference between the height of the cooling duct and the height of the blower fan and this space can be effectively used.
Thus, it is possible to secure a wide width of the flow path of the cooling air in the cooling duct, to shorten the length of the flow path, by the air outlets of the fans which are aligned, and it is possible to improve configuration cooling efficiency. In addition, the number of fans can be increased to more than three. If the cooling efficiency is improved, the life cycle of the liquid crystal panel will be extended. Further, it is possible to reduce the rotational speed of the cooling fan and it thus becomes possible to reduce the annoying noise value. Further, the structure of the cooling duct itself and the structure for holding the cooling fan by aligning the air outlets of the blower fans can be improved and production efficiency therefore becomes simple. Further, by reducing the number of parts, it is possible to realize a reduction in the cost of all of the components that are used.
Fans 503-506, which are blowers, are provided to cool liquid crystal panels 123-125, respectively. Fans 503 to 506 are arranged side by side along a first direction in which liquid crystal panel 123 and liquid crystal panel 125 of liquid crystal panels 123 to 125 face each other on a side opposite to the side in which projection lens 121 of liquid crystal panels 123 to 125 is disposed. Further, the fans 503 to 506 are arranged such that the rotation axes of the motors of the fans 503 to 506 are along the first direction. Fans 503 to 506 are arranged in a cylindrical shape around a rotation axis of an impeller (runner) which is a blade for generating wind, and a swirling flow is generated in a direction almost perpendicular to a rotation axis by centrifugal force of an impeller by rotating an impeller around a rotation axis using a motor. The generated swirling flow is rectified in one direction using a scroll provided in fans 503 to 506 and blown out from the air outlet. Incidentally, when the components constituting illumination optical system 112 are housed in a housing having one rectangular parallelepiped or a corresponding shape capable of storing their layout (broken line of illumination optical system 112 shown in
Incidentally, the rotation of fans 503 to 506 are individually controlled, and the rotational speed of each of the fans may be different from the other. This rotational speed may be set in advance based on the operation of the light modulation in liquid crystal panels 123 to 125, may be one that measures the temperature of liquid crystal panels 123 to 125 and is controlled based on the measured temperature, or may be one that is controlled based on the use period of liquid crystal panels 123 to 125.
Incidentally, fans 503 to 506 are arranged at intervals at which a predetermined intake amount can be secured. Further, a partition plate may be provided between each of fans 503 to 506. Further, when fans 503 to 506 perform air intake from both sides, the position of the partition plate may be determined based on the ratio of the air intake capacity from one side to the air intake capacity from the other side. Specifically, for example, when the air intake capacity from the left side surface of fans 503 to 506 is larger than the air intake capacity from the right side surface, the distance from the left side surface of fans 503 to 506 to the partition plate on the left side may be longer than the distance from the right side surface of fans 503 to 506 to the partition plate on the right side.
Also, the positions of the respective air outlets of fans 503-506 relative to cooling ducts 304, i.e., the distances from the air outlets of fans 503-506 to the receptacles of cooling ducts 304, are preferably equal to each other.
Further, as shown in
In this embodiment, the long side of the illumination optical system optical layout becomes rectangular, fans for cooling the liquid crystal panel are arranged side by side. In this way, it is possible to secure a wider width of the flow path of the cooling duct than those arranged side by side the cooling fan on the short side. Further, the length of the flow path of the cooling duct from the cooling fan to the liquid crystal panel is shorter than that arranged side by side the cooling fan on the short side. Thus, it is possible to improve the cooling efficiency of the liquid crystal panel. Further, the bending of the cooling duct (passage of the cooling air) is reduced, the flow path resistance in the cooling duct is reduced and it is thus possible to minimize the loss of the flow of the cooling air. Further, the layout area occupied in the fan arrangement is reduced and miniaturization of the device can be realized.
Further, a cooling duct is disposed in the bottom portion of the illumination optical system, on the side opposite to the projection lens side of the liquid crystal panel, the four blower fans are arranged in a direction in which the two liquid crystal panels face each other, their air inlets are arranged side by side so as to face each other. Thus, by using a blower fan having a feature in which the direction of the intake air and the direction of the outlet are orthogonal, the wide width of the intake duct of the blower fan can also be ensured. Furthermore, when using blower fans for performing air intake from both sides, by providing a partition plate between the fan and the fan, it is possible to achieve further cooling efficiency. In addition, the four air outlets of the blower fans are aligned, and the cooling duct takes on a simple shape. Further, by this arrangement, the height of the top surface of the illumination optical system and the height of the blower fan are the same and it is possible to reduce the height of the projector apparatus. Further, by placing the blower fan vertically, it is possible to place the illumination optical system in the portion created by the difference between the height of the cooling duct and the height of the blower fan and the space can be effectively used.
Thus, it is possible to secure a wide width of the flow path of the cooling air in the cooling duct, to shorten the length of the flow path, by the air outlet of the fan is aligned and it is possible to improve the configuration cooling efficiency. In addition, the number of fans can be increased to more than four. If the cooling efficiency is improved, the life cycle of the liquid crystal panel will be extended. Further, it is possible to reduce the rotational speed of the cooling fan, and thus it becomes possible to reduce the annoying noise value. Further, the structure of the cooling duct itself and the structure for holding the cooling fan by aligning the air outlet of the blower fan can be improved and production efficiency becomes simple. Further, by reducing the number of parts, it is possible to realize a reduction in the cost of all parts that are used.
In the second embodiment, the case where the number of fans is three as an example, in the third embodiment has been described as an example a case where the number of fans is four, the number is not limited to these but may be five or more.
In addition to fans 503 to 506 for cooling liquid crystal panels 123 to 125 as shown in
This application claims precedence based on an international application PCT/JP2018/020099 filed May 25, 2018, and incorporates all of its disclosure herein.
Number | Date | Country | Kind |
---|---|---|---|
PCT/JP2018/020099 | May 2018 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2019/020392 | 5/23/2019 | WO | 00 |