Electronic apparatus
09837705 · 2017-12-05
Assignee
Inventors
Cpc classification
H01Q7/00
ELECTRICITY
H01Q1/273
ELECTRICITY
International classification
H01Q7/00
ELECTRICITY
Abstract
An electronic apparatus includes a display; and an antenna including a first element without power feeding that is a structural component made of metal and is disposed on the display or above a display surface of the display in a display direction, a second element which is disposed below the first element and is connected to a power supply, and a GND plate that is disposed below the second element, wherein the first element and the second element are electromagnetically coupled.
Claims
1. An electronic apparatus comprising: a display; a circuit board; a first element without power feeding that is made of metal; a second element which includes an antenna electrode connected to a ground of the circuit board and a power supply, wherein the first element is disposed above the circuit board along an axis perpendicular to a planar surface of the display where the display and the circuit board overlap, and the second element is disposed above the circuit board and below the first element along the axis, and wherein the second element is an inverted F antenna.
2. The electronic apparatus according to claim 1, wherein the first element and the second element are electromagnetically coupled without a radiation element between the first element and the second element.
3. The electronic apparatus according to claim 1, wherein the circuit board includes a signal pattern and a GND pattern, and wherein the power supply is connected to the signal pattern, and the antenna electrode is connected to the GND pattern.
4. The electronic apparatus according to claim 1, wherein when λ is a wavelength of the electric wave received from a satellite, an equivalent electrical length of the second element is shorter than λ/4.
5. The electronic apparatus according to claim 1, wherein the first element is an annular shape.
6. The electronic apparatus according to claim 1, wherein when λ is a wavelength of the electric wave received from a satellite, an equivalent electrical length after the first element and the second element are electromagnetically coupled is λ/4, or an integer multiple of λ/4.
7. The electronic apparatus according to claim 1, wherein the first element and the second element are disposed so as to overlap each other along the axis where the display and the circuit board overlap.
8. The electronic apparatus according to claim 1, wherein when d is a distance between the first element and the second element,
0.5 mm≦d≦2.0 mm is satisfied.
9. The electronic apparatus according to claim 1, wherein when H1 is a distance between the circuit board and the first element along the axis,
4.0 mm≦H1≦8.0 mm is satisfied.
10. The electronic apparatus according to claim 1, wherein when λ is a wavelength of the electric wave received from a satellite, an equivalent electrical length of the second element is λ/4×about 0.7.
11. The electronic apparatus according to claim 1, wherein the first element is a bezel or a ring-shaped dial ring.
12. The electronic apparatus according to claim 1, wherein the second element receives microwaves from 300 MHz to 3 THz.
13. The electronic apparatus according to claim 1, wherein the second element is a circular arc shape.
14. The electronic apparatus according to claim 1, wherein the first element is an annular shape, a circular arc shape, or a rectangular frame shape.
15. The electronic apparatus according to claim 1, wherein the display is a digital-type or a pointer-type.
16. An electronic apparatus comprising: a case body; a bezel made of metal without power feeding is attached to the surface side of the case body; a display; a circuit board; a receiver mounted on the circuit board; an inverted F antenna mounted on the circuit board and connected to the receiver, wherein the inverted F antenna includes an antenna electrode connected to a ground of the circuit board and a power supply, and the bezel is disposed above the circuit board along an axis perpendicular to a planar surface of the display where the display and the circuit board overlap, and the inverted F antenna is below the bezel along the axis.
17. The electronic apparatus according to claim 16, wherein the bezel and the inverted F antenna are electromagnetically coupled.
18. The electronic apparatus according to claim 16, wherein the circuit board includes a signal pattern and a GND pattern, and wherein the power supply is connected to the signal pattern, and the antenna electrode is connected to the GND pattern.
19. The electronic apparatus according to claim 16, wherein the bezel is an annular shape.
20. The electronic apparatus according to claim 16, wherein when λ is a wavelength of the electric wave received from a satellite, an equivalent electrical length after the bezel and the inverted F antenna are electromagnetically coupled is λ/4, or an integer multiple of λ/4.
21. The electronic apparatus according to claim 16, wherein the bezel and the inverted F antenna are disposed so as to overlap each other along the axis where the display and the circuit board overlap.
22. The electronic apparatus according to claim 16, wherein when d is a distance between the bezel and the inverted F antenna along the axis,
0.5 mm≦d≦2.0 mm is satisfied.
23. The electronic apparatus according to claim 16, wherein when H1 is a distance between the circuit board and the bezel along the axis,
4.0 mm≦H1≦8.0 mm is satisfied.
24. The electronic apparatus according to claim 16, wherein when λ is a wavelength of the electric wave received from a satellite, an equivalent electrical length of the inverted F antenna is λ/4×about 0.7.
25. The electronic apparatus according to claim 16, wherein the inverted F antenna is a circular arc shape.
26. The electronic apparatus according to claim 16, wherein the bezel is an annular shape, a circular arc shape, or a rectangular frame shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The disclosure will be described with reference to the accompanying drawings, wherein like numbers reference like elements.
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DESCRIPTION OF EXEMPLARY EMBODIMENTS
(16) Preferred embodiments of the present disclosure will be described below with reference to the accompanying drawings. In the drawings, the size and scale of each component are appropriately different from actual ones. Further, since the embodiments described below are preferred specific examples of the present disclosure, various technically preferable limitations are imposed, but unless there is a particular limitation in the following description, the scope of the disclosure is not limited to the embodiments.
First Embodiment
(17) A: Mechanical Structure of an Antenna Built-In Electronic Apparatus
(18) As illustrated in
(19) The electronic apparatus 1 includes, as illustrated in
(20) The outer case 2 includes a case body 11 and a back cover 12. The case body 11 is made of plastic such as polycarbonate resin, and formed in a substantially cylindrical shape. The back cover 12 is attached to the back surface side which is the arm side having the electronic apparatus 1 mounted therein, in the case body 11 and blocks the opening on the back surface side. The back cover 12 may be made of plastic similar to the case body 11, or metal such as stainless steel.
(21) Further, a one-piece type in which the case body 11 and the back cover 12 are integrally formed is employed as the outer case.
(22) Glass (windshield) 13 that is a light transmitting member is attached on the opening on the case body 11, in other words, the front surface side of the outer case 2. In order to support the glass 13, as illustrated in
(23) Therefore, after the supporting ring 14 is disposed on the protrusion 111 of the case body 11, the glass 13 is press-fitted into the projection 112 through the packing 15, and thus the glass 13 is attached to the case body 11.
(24) In addition, the light transmitting member is not limited to being made of glass, but may be made of plastic, or a plate-like member through which the user can view the back surface side (display 20 described later) from the front surface side of the light transmitting member.
(25) The bezel 16 is attached to the surface side of the case body 11. The bezel 16 is made of metal such as stainless steel, titanium, aluminum, copper, and silver, and is formed in a ring shape. A plated member can also be used as the bezel 16. A groove 161 that is press-fitted into the outer peripheral surface of the projection 112 is formed on the back surface of the bezel 16.
(26) The diameter of the inner peripheral surface of the groove 161 has substantially the same dimensions as the diameter of the outer peripheral side of the projection 112. Therefore, even when the projection 112 is deformed on the outer peripheral side by press-fitting the glass 13, the bezel 16 made of metal is pressed to and mounted on the projection 112 in advance, and thus it is possible to prevent the deformation of the projection 112. In other words, the bezel 16 has a function to reinforce press-fitting and fixing the glass 13 to the case body 11. Then, it is possible to prevent the projection 112 from being deformed on the outer peripheral side by the bezel 16, such that the packing 15 is disposed between the glass 13 and the projection 112 without a gap so as to secure necessary waterproof properties.
(27) As illustrated in
(28) An antenna 30 is disposed on the side of the display 20 in the interior space of the outer case 2. As illustrated in
(29) The display 20 includes a liquid crystal panel 21 with a backlight, and a panel frame 22 that holds the liquid crystal panel 21. The liquid crystal panel 21 is connected to the circuit board 26 through the flexible substrate 23. The panel frame 22 is made of a non-conductive member such as plastic.
(30) The spacer 25 is made of a non-conductive member such as plastic, and is disposed between the panel frame 22 and the circuit board 26. A plurality of hooks 251 are formed to protrude on the surface of the spacer 25 (the surface on the glass 13 side), and the hooks 251 hold the panel frame 22 of the display 20.
(31) The circuit board 26 has various ICs and the like mounted therein which control the display of the display 20 or processes a satellite signal received from the antenna 30.
(32) The circuit case 27 is made of a non-conductive member such as plastic, and holds a secondary battery 28, a vibration motor 29, and the like. Further, a plurality of hooks 271 are formed to protrude on the upper surface of the circuit case 27. Then, since the hook 271 is engaged with the spacer 25 while the circuit board 26 is interposed between the spacer 25 and the circuit case 27, the spacer 25, the circuit board 26, and the circuit case 27 are integrated.
(33) B: Circuit Configuration of an Antenna Built-In Electronic Apparatus
(34) Next, the circuit configuration of the electronic apparatus 1 of the present embodiment will be described with reference to
(35) A GPS satellite 100 illustrated in
(36) Further, the satellite signal includes trajectory information indicating the position on the trajectory of the GPS satellite 100, and the like. In other words, the electronic apparatus 1 can also perform the positioning calculation, and typically, has a function of receiving the satellite signals respectively transmitted from four or more GPS satellites and performing the positioning calculation by using the trajectory information and the GPS time information included in the satellite signals. The electronic apparatus 1 can easily modify the time difference in accordance with the current position by the positioning calculation, and the modification is performed as a positioning mode. The radio waves emitted by the GPS satellite are right-handed circularly polarized waves, and a change in the receiving sensitivity caused by the attitude of the receiving antenna and an error of time measurement and positioning due to the influence of the multipath, such as in the alley of a building are set to be minimized.
(37) In addition, if the satellite signal is used, various applications such as current position display, moving distance measurement, and moving speed measurement are possible, and the electronic apparatus 1 can display these pieces of information on the liquid crystal panel 21 of the display 20. As illustrated in
(38) Next, the circuit configuration of the electronic apparatus 1 that is an electronic wristwatch having a GPS receiving function will be described.
(39) The reception module 940 is connected to the antenna 910, and is configured to include a surface acoustic wave (SAW) filter 921, a radio frequency (RF) unit 920, and a baseband unit 930. The SAW filter 921 performs a process of extracting a satellite signal from radio waves received by the antenna 910. The RF unit 920 is configured to include a low noise amplifier (LNA) 922, a mixer 923, a voltage controlled oscillator (VCO) 927, a phase locked loop (PLL) control circuit 928, an intermediate frequency (IF) amplifier 924, an IF filter 925, and an A/D converter (ADC) 926.
(40) The satellite signal extracted by the SAW filter 921 is amplified by the LNA 922, mixed with a local signal that is output by the VCO 927 in the mixer 923, and down-converted into a signal of an intermediate frequency band. The PLL control circuit 928 and the VCO 927 form a phase-locked loop and a signal obtained by frequency-dividing the local signal that is output by the VCO 927 and a stable reference clock signal are subjected to a phase comparison, and the local signal and the reference clock signal are synchronized by feedback, and a local signal of a correct frequency is intended to be generated and stabilized. A signal mixed in the mixer 923 is amplified by the IF amplifier 924, and an unnecessary signal is removed by the IF filter 925. The signal passing through the IF filter 925 is converted into a digital signal by the A/D converter (ADC) 926.
(41) The baseband unit 930 is configured to include a digital signal processor (DSP) 931, a central processing unit (CPU) 932, a static random access memory (SRAM) 934, and a real time clock (RTC) 933. Further, a temperature compensated crystal oscillator (TCXO) 935, a flash memory 936, and the like are connected to the baseband unit 930.
(42) The temperature compensated crystal oscillator (TCXO) 935 generates a reference clock signal of a substantially constant frequency irrespective of temperature, and current position information, time difference information and the like are stored in the flash memory 936. In a time measuring mode and the like, the baseband unit 930 performs a process of demodulating a baseband signal from a digital signal that has been obtained through the conversion by the ADC 926 of the RF unit 920. Further, the baseband unit 930 acquires the satellite information such as trajectory information and GPS time information which are included in a navigation message captured from the GPS satellite 100, and stores the satellite information in the SRAM 934.
(43) The display 950 is configured to include the controller 955, a quartz oscillator 951, and the like. The controller 955 includes a storage 953, an oscillation circuit 952, and a driving circuit 954, and performs various controls. The controller 955 controls the reception module 940, transmits a control signal to the reception module 940, controls the reception operation of the reception module 940, and controls the display of the liquid crystal panel 21 through the driving circuit 954 in the controller 955. Various pieces of information including the internal time information are stored in the storage 953. The secondary battery 28 supplies the energy required for the operation and display of the circuit.
(44) The controller 955, the CPU 932, and the DSP 931 calculate the time measuring and the positioning information in cooperation with each other, and determine information such as time, a current position, a moving distance, and a movement speed, based on the information. Further, the controller 955 performs the control of display of the information on the liquid crystal panel 21 and control such as setting of an operation mode or a display mode of the electronic apparatus 1 in response to the operation of the press buttons 40, 41, 42 and 43 illustrated in
(45) C: Detailed Configuration of Antenna
(46) Next, the configuration of the antenna 30 of the electronic apparatus 1 of the present embodiment will be described in detail with reference to the accompanying drawings.
(47)
(48) The ribbon 31, the power supply 32, and the antenna electrode 33 can be easily configured using a copper wire or an aluminum wire, or a pipe. A copper wire or a thin aluminum plate may be used. The electrode may be formed by sticking, etching, or printing a conductive foil on a base of a suitable shape. The electrode may be formed by applying plating in the inner wall of the case body 11.
(49) The bezel 16 is made of a metal such as stainless steel, titanium, aluminum, copper, and silver, and formed in a notch-free ring (O-shaped). A bezel formed by plating a resin or the like may be used as the bezel 16, in addition to the metal-made bezel.
(50) The power supply 32 and the antenna electrode 33 are connected to one end of the ribbon 31, and the other end of the ribbon 31 is open. The power supply 32 and the antenna electrode 33 are connected to the circuit board 26, the power supply 32 is connected to the signal pattern of the circuit board 26, and the antenna electrode 33 is connected to the GND pattern of the circuit board 26.
(51) As illustrated in
(52)
(53) As illustrated in
(54) The power supply 32 for moving the feed point is connected to the ribbon 31. The antenna electrode 33 is connected to the GND pattern of the circuit board 26, and the power supply 32 is connected to the signal pattern of the circuit board 26. In such a configuration, the antenna electrode 33 and the bezel 16 operate as a current element that outputs a current vector, and the ribbon 31 operates as a magnetic current element that outputs a magnetic current vector. In other words, the circuit board 26 functions as a GND plate, and the circuit board 26 is disposed below the ribbon 31 in the vertical direction.
(55) If considering the antenna electrode 33 as a current element disposed in the Z-axis direction at the coordinate origin, the radiated electromagnetic field by the antenna electrode 33 shows non-directivity in the XY plane (donut-like directivity), as is well known.
(56) If considering the ribbon 31 as a magnetic element disposed in the Z-axis direction at the coordinate origin, the radiated electromagnetic field by the ribbon 31 shows non-directivity in the XY plane (donut-like directivity), as is well known.
(57) If the direction of the electric field generated by the antenna electrode 33 and the direction of the electric field generated by the ribbon 31 are orthogonal and the phases of the current flowing through the antenna electrode 33 and the current flowing through the ribbon 31 are the same, the phases of the electric fields generated from both are different by 90°, and their synthesized wave is circularly polarized.
(58) In the present embodiment, since the electronic apparatus 1 which is a wristwatch satisfies the visibility of a display and the portability of a clock, it is preferable to form the outer shape of the outer case to have a diameter of substantially 20 mm or more to 50 mm or less in a plan view of the wristwatch. The bezel 16 does not have a notch formed therein unlike the ribbon 31, and is a closed O-shape ring. In the present embodiment, as an example, the bezel 16 of a diameter of 30 mm is used. Therefore, the circumference of the bezel 16 is approximately 90 mm.
(59) However, since the bezel 16 is an O-shaped ring without a notch, the current flowing through the bezel 16 is symmetric, and does not function as a loop element. In other words, even if one point of the bezel 16 is power-supplied, the current flows in both directions from the feeding point. Therefore, the bezel 16 is equivalently considered as one linear element, and the equivalent electrical length is close to the diameter, rather than the circumference of the bezel 16.
(60) The electronic apparatus 1 of the present embodiment receives GPS radio waves at approximately 1.5 GHz of which one wavelength (1λ) is approximately 20 cm. Therefore, the equivalent electrical length of the bezel 16 is sufficiently shorter than 1λ.
(61) In the antenna 30 of the present embodiment, the equivalent electrical length obtained by adding the equivalent electrical length of the bezel 16, the equivalent electrical length of the ribbon 31, and the equivalent electrical length of the antenna electrode 33 is set to be ¼λ. Since the antenna electrode 33 is connected to the GND pattern of the circuit board 26 which is the GND plate, an image antenna of ¼λ is formed on the circuit board 26 in the antenna 30 of the present embodiment, as a ground plane antenna. Therefore, the antenna 30 of the present embodiment operates as an antenna having an equivalent electrical length of ½λ. Thus, the antenna 30 of the present embodiment ideally has directivity in the same vertical plane as in the vertical dipole antenna of ½λ. Further, the loop portion of the ribbon has directivity of the micro-loop unlike the loop antenna of 1×λ. The directivity of the micro-loop is the directivity obtained by rotating the directivity of a loop of 1λ by 90 degrees in a direction perpendicular to the loop diameter, which is consistent with the directivity of the ground plane antenna. The electric field generated by the ground plane antenna and the electric field generated by the micro-loop are different by 180° in their phases. This can generate circularly polarized waves.
(62) The GPS radio waves of approximately 1.5 GHz have 1λ of approximately 20 cm, and ¼λ which is the equivalent electrical length of the antenna 30 is approximately 5 cm. However, λ is a free space wavelength, and in practice, is set to within a predetermined range due to the influence of surrounding members. For example, in the present embodiment, λ is set to a range of 0.8×(¼λ) to 1.3×(¼λ), in other words, a range of 4 cm to 6.5 cm, as an example.
(63) The ribbon 31 which is the second element uses radio waves of a thickness of 100 μm, a width of 2 mm, and a length of 3.5 cm, as an example. When ¼λ is approximately 5 cm, the length is a length of ¼λ×0.7.
(64) The equivalent electrical length of the bezel 16 which is the first element is 4.5 cm that is a length of approximately half the circumference of the bezel 16. However, the bezel 16 is disposed at a position overlapping the ribbon 31 in a plan view of the wristwatch. By this arrangement, since a portion of the bezel 16 overlapping the ribbon 31 in a plan view of the wristwatch does not function as an equivalent electrical length of the antenna 30, the equivalent electrical length of the bezel 16 which is the first element is 1.5 cm.
(65) Then, the length of the antenna electrode 33 is a distance from the lower end surface of the ribbon to a GND pattern, and is 1 mm as an example.
(66) Therefore, in the present embodiment, the length satisfying the equivalent electrical length of the bezel 16 and the length of the ribbon 31 is set to be ¼λ in 50 mm. If adding the length to the length of the antenna electrode 33, the length is 51 mm, and is set to be approximately ¼λ as a whole.
(67) In addition, these lengths can be determined by simulation such as a moment method.
(68) Next, the electromagnetic coupling between the bezel 16 which is the first element and the ribbon 31 which is the second element will be described in detail.
(69) As illustrated in
(70) As described above, if the bezel 16 is equivalently considered as one linear element and is electromagnetically coupled with the ribbon 31, the bezel 16 has a function to increase a current flowing through the ribbon 31, as in a horizontal portion of a reversed L antenna.
(71) In addition, as illustrated in
H1=H0+d
(72) It is possible to increase the radiation efficiency of the antenna 30, by increasing the distance H1 from the circuit board 26 to the bezel 16 functioning as a receiving surface.
(73)
(74) Further, if comparing the radiation efficiencies of the case where there is the bezel 16 and the case where there is no bezel 16, under the same conditions, it is confirmed that the radiation efficiency rises up to 42% in the case where there is the bezel 16, while the radiation efficiency is 31% in the case where there is no bezel 16. In addition, the radiation efficiency changes with a degree of coupling of these two members according to the distance H1 between the bezel 16 and the ribbon 31.
(75) As described above, a longer a distance H1 from the feeding point that is a connection point between the power supply 32 and the circuit board 26 to the lower surface of the bezel 16 is, the stronger the strength of the electric field generated in the ribbon 31 which is a loop element, but in the present embodiment, the distance H1 is set such that the strength of the electric field generated in the antenna electrode 33 and the strength of the electric field generated in the ribbon 31 which is a loop element are equal to each other. When these electric field strengths are equal, it is possible to generate complete circularly polarized waves.
(76) In addition, since the bezel 16 is the closed O-shaped ring, current having reversed direction exist in the bezel 16, the radio waves emitted from the bezel 16 are weakened by being cancelled, and do not affect the radio waves of circularly polarized waves emitted from the ribbon 31 and the antenna electrode 33.
(77) Further, for the antenna 30 of the present embodiment, the power feeding position is adjusted as a reversed F antenna by the power supply 32, the adjustment of power feeding to the antenna 30 is easy, and a large current can flow to the antenna electrode 33.
(78) As described above, in the antenna 30 of the present embodiment, the equivalent electrical length obtained by adding the equivalent electrical length of the bezel 16, the equivalent electrical length of the ribbon 31, and the equivalent electrical length of the antenna electrode 33 is set to be ¼λ, and the antenna 30 is connected to the GND pattern of the circuit board 26 by the antenna electrode 33. Therefore, an image antenna of a ¼λ is formed in the circuit board 26, and the antenna 30 of the present embodiment has the same directivity as in the same vertical plane in the vertical dipole antenna of ½λ.
(79) As illustrated in
(80) It is confirmed that from the directivity of an X-Z plane illustrated in
(81) Further, when the electronic apparatus 1 is attached to the user's arm, the direction toward the arm is −Z axis direction and the direction toward the outside is +Z axis direction, but as can be seen from
(82) As described above, according to the present embodiment, the glass 13 is press-fitted and fixed to the case body 11, and the bezel 16 functions as a part of the antenna 30, which is used to dispose the packing 15 between the glass 13 and the projection 112 are disposed without a gap, such that it is possible to increase the distance H1 from the circuit board 26 to the receiving surface than in the related art, and to improve the radiation efficiency of the antenna 30.
(83) According to the present embodiment, as illustrated in
(84) According to the present embodiment, since the bezel 16 made of metal that has been provided for design improvement of the wristwatch-type electronic apparatus 1 and strength improvement of the case thereof is regarded and used as a part of the antenna 30, only the ribbon 31 which is the loop element, the antenna electrode 33, and the power supply 32 are required for the antenna dedicated member, it is possible to reduce the volume of the antenna member to minimum. Further, even if it is difficult to ensure the height from the circuit board 26 to the receiving surface from a demand or the like on the design, it is possible to ensure the height from the circuit board 26 to the receiving surface by regarding and using the bezel 16 as a part of the antenna 30.
(85) Further, according to the present embodiment, since the number of components of the antenna is reduced as described above, it is possible to suppress the component cost to approximately one of tenth as compared to the patch antenna.
(86) If an antenna has basically a large volume, the radiation efficiency is improved. In the antenna 30 of the present embodiment, the bezel made of metal operates as the antenna electrode for the GND pattern of the circuit board 26, and the entire case equivalently operates as an antenna. Therefore, the antenna is equivalent to an antenna of a large volume, and it is possible to obtain good radiation efficiency.
(87) In addition, in present embodiment, as illustrated in
Second Embodiment
(88) Next, the second embodiment of the present disclosure will be described with reference to
(89) An electronic apparatus 1a of the present embodiment illustrated in
(90) A disc-shaped character plate 81 is disposed as a time display portion, on the inner circumferential side of the bezel 16, through a ring-shaped dial ring 83 made of plastic. The pointer 17 that displays the time and date and the like are disposed on this character plate 81. The pointer 17 is configured with an hour hand 17a, a minute hand 17b, and a second hand 17c. A date viewing window 18a is opened and formed on the character plate 81, and the date displayed in a date wheel 18 has become visible from the date viewing window 18a.
(91) The opening on the surface side of the outer case 80 is closed by the cover glass 84 through the bezel 16, and the character plate 81, the pointer 17 (the hour hand 17a, the minute hand 17b, and the second hand 17c) in the inside become visible through the cover glass 84.
(92) The electronic apparatus 1a is configured to be able to perform a manual time correction by manually operating the crown 86, and to perform switching between a normal time display mode and a time difference correction mode, by manually operating the operation buttons 87. In addition, the electronic apparatus 1a of the present embodiment has a time correction function for correcting the time by receiving automatically and daily a GPS signal. It is also possible to forcibly receive the GPS signal by manually operating the operation buttons 87.
(93) Even in the present embodiment, the antenna 30 includes an arcuate ribbon 31, a linear power supply 32, a linear antenna electrode 33, and a ring-shaped bezel 16.
(94) The ribbon 31, the power supply 32, and the antenna electrode 33 can be easily configured using a wire such as a copper wire or a pipe. The electrode may be formed by sticking, etching, or printing a conductive foil on a base of a suitable shape. The bezel 16 can be made of a metal such as stainless steel and titanium.
(95) The power supply 32 and the antenna electrode 33 are connected to one end of the ribbon 31, and the other end of the ribbon 31 is open. The power supply 32 and the antenna electrode 33 are connected to the circuit board 26, the power supply 32 is connected to the signal pattern of the circuit board 26, and the antenna electrode 33 is connected to the GND pattern of the circuit board 26.
(96) In the ribbon 31 of the present embodiment, the direction extending from the power supply 32, unlike the first embodiment, is counterclockwise in a plan view. In this way, even if the extending direction of the ribbon 31 is a counterclockwise, it is possible to mainly obtain the right-handed circularly polarized waves due to the influence of the component in the vicinity, similar to the first embodiment.
(97) As described above, the antenna 30 of the present disclosure can also be applied to the pointer-type GPS watch. Further, it is possible to make the extension direction of the ribbon 31 as a counterclockwise direction.
MODIFICATION EXAMPLES
(98) The present disclosure is not limited to the embodiments described above, and for example, various kinds of deformation are possible as described below. Furthermore, the aspects of the deformation described below may be those in which one or more arbitrarily selected configuration may be combined appropriately. In addition, the same configurations in the first and second embodiments are denoted by the same reference numerals, and duplicate explanation may be omitted.
Modification Example 1
(99) In each of the above described embodiments, an example in which the O-shaped ring is employed as the bezel 16 which is the second element has been described. However, the present disclosure is not necessarily to be limited to such an example, and the bezel 16 may be, for example, a rectangular shape.
(100)
(101) The bezel may be the O-shaped ring or a ring of a rectangular frame shape as described above, and may be a C-shaped loop in which a portion of the O-shaped ring is cut away. In this case, the ribbon which is a loop element, and the C-shaped bezel which is a loop element are electromagnetically coupled. Alternatively, the bezel may be a rod shape. However, in the case of the rod shape, the electromagnetic coupling with the ring which is the loop element is considered to be weakened, and the sensitivity is considered to be reduced. Further, the axial ratio of circularly polarized waves is also considered to be deteriorated.
(102) Moreover, the ribbon may be not only the C-shape, but also an L-shape.
Modification Example 2
(103) In each of the above-described embodiments and modification example, the case has been described in which the bezel made of metal which is the second element is disposed on the case body of the outer case 2. However, the present disclosure is not intended to be limited to such a configuration. For example, the present disclosure is applicable to the case where the case body is made of a resin or the like and the bezel made of metal is accommodated in the inside of the case body as invisible from the outside.
Modification Example 3
(104) In each of the above-described embodiments and modification examples, the case has been described in which the bezel made of metal is used as the first element. However, the present disclosure is not intended to be limited to such a configuration. For example, a metal ring such as a dial ring is stacked on the outer circumferential inner surface or the outer surface of the glass 13 or cover glass 84, or is bonded and fixed to the glass and integrated, or a metal film is formed and the metal ring or the metal film may be used as the first element. In addition, a metal ring such as dial ring is stacked on the outer peripheral side surface or the outer peripheral upper surface of the character plate 81 or the liquid crystal panel 21, or is bonded and fixed to the character plate or the liquid crystal panel, or a metal film is formed and the metal ring or the metal film may be used as the first element. It is possible to reduce the assembling work load of the wristwatch by integrating the first element with the cover glass, the character plate or the liquid crystal panel. Further, it is possible to reduce a variation in assembly of the first element to the outer case.
Modification Example 4
(105) In each of the above-described embodiments and modification examples, the case has been described in which the antenna of the present disclosure receives GPS radio waves of 1.5 GHz, but the present disclosure is not intended to be limited to such a configuration. For example, it may be configured to receive radio waves of microwaves of a wavelength of 1 m to 100 μm and a frequency of 300 MHz to 3 THz.
(106) Moreover, it may be configured to receive a radio wave corresponding to the standards such as Bluetooth (registered trademark) or Wi-Fi (registered trademark).
Modification Example 5
(107) In each of the above-described embodiments and modification examples, the case has been described in which the equivalent electrical length of the bezel which is the first element and the ribbon which is second element is ¼ wavelength, but the present disclosure is not intended to be limited to such a configuration. For example, the equivalent electrical length may be an integral multiple of ¼ wavelength.
Modification Example 6
(108) In each of the above-described embodiments and modification examples, a running watch and a GPS watch are illustrated as an example of the electronic apparatus of the present disclosure, but the present disclosure is not limited thereto. The present disclosure is applicable to various electric apparatuses that receive radio waves by the antenna and display information.