Indoor structure
11750144 · 2023-09-05
Assignee
Inventors
Cpc classification
H02S20/26
ELECTRICITY
Y02E10/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H02S40/34
ELECTRICITY
Y02B10/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
E06B7/28
FIXED CONSTRUCTIONS
H02S40/36
ELECTRICITY
International classification
H02S20/26
ELECTRICITY
E06B7/28
FIXED CONSTRUCTIONS
H02S40/34
ELECTRICITY
Abstract
The present invention provides an indoor structure in which a wire to a solar cell module is hardly visible and design is improved. In an indoor structure, a solar cell module is attached to a window disposed between a ceiling and a floor. The ceiling has a first ceiling part, and a second ceiling part continuous with the first ceiling part via a vertical wall part on a lower side than the first ceiling part, the window has a window glass including a window main surface, the solar cell module has a main body panel and an extraction wire, the main body panel is obtained by arranging solar cells between two translucent substrates, and is capable of transmitting light in a thickness direction, the main body panel includes a panel main surface, and the panel main surface faces the window main surface of the window, the extraction wire extends inside and outside the main body panel, and includes a first end part, the first end part of the extraction wire is electrically connected to the solar cells within the main body panel, the extraction wire has a wire part exposed from the main body panel, and the wire part is laid between the vertical wall and the window.
Claims
1. An indoor structure provided in a room having an indoor space, comprising: at least one solar cell module attached to at least one window disposed along at least one wall between a ceiling and a floor, wherein the ceiling, the at least one wall, and the floor define the indoor space of the room, wherein the ceiling comprises a first ceiling part and a second ceiling part, the second ceiling part being located lower than the first ceiling part, the second ceiling part being continuous with the first ceiling part via a vertical wall part, the vertical wall part is a part of the ceiling connecting a first end part of the first ceiling part and a second end part of the second ceiling part, the at least one window includes a window glass having a window main surface, the at least one solar cell module comprises a main body panel and an extraction wire, the main body panel comprises two translucent substrates and a plurality of solar cells arranged therebetween, the main body panel being configured to transmit light in a thickness direction of the main body panel, the main body panel includes a panel main surface facing the window main surface, the extraction wire extends inside and outside the main body panel, the extraction wire including a first end part, the first end part is electrically connected to the plurality of solar cells inside the main body panel, the extraction wire includes a wire part exposed from the main body panel, and the wire part is laid between the vertical wall part and the at least one window.
2. The indoor structure according to claim 1, wherein the wire part has a thickness thinner than a width and is laid between the vertical wall part and the at least one window so that a thickness direction crosses the first ceiling part.
3. The indoor structure according to claim 1, wherein a spacing holding member is provided between the window main surface and the panel main surface, and a spacing between the window main surface and the panel main surface is 5 mm or more and 50 mm or less.
4. The indoor structure according to claim 1, wherein the main body panel comprises a positive electrode side connecting part, a negative electrode side connecting part, and the plurality of the solar cells electrically connected in series forming a plurality of solar cell strings, the positive electrode side connecting part is electrically connected to positive electrode side end parts of the plurality of solar cell strings, the negative electrode side connecting part is electrically connected to negative electrode side end parts of the plurality of solar cell strings, the extraction wire comprises a positive electrode side wire part and a negative electrode side wire part at the first end part, and between the two translucent substrates, the positive electrode side wire part is connected to the positive electrode side connecting part, and the negative electrode side wire part is connected to the negative electrode side connecting part.
5. The indoor structure according to claim 4, wherein the extraction wire comprises a second wire part including the positive electrode side wire part and the negative electrode side wire part, and the second wire part is composed of bundled conductors.
6. The indoor structure according to claim 1, further comprising a cover member with a recessed section, wherein the cover member is attached to at least one attachment target selected from the group consisting of the at least one window, the first ceiling part, and the main body panel, and the recessed section surrounds the wire part together with the at least one attachment target.
7. The indoor structure according to claim 6, wherein the at least one solar cell module includes a terminal box to which the wire part is connected, and the cover member includes the terminal box therein.
8. The indoor structure according to claim 1, wherein the wire part has a thickness thinner than a width, a part of the wire part being inserted into the main body panel, and a thickness direction of the wire part substantially coincides with an overlapping direction of the two translucent substrates inside the main body panel.
9. The indoor structure according to claim 1, wherein the at least one window includes a first window and a second window, the at least one solar cell module includes a first solar cell module and a second solar cell module, and the indoor structure further comprises: a column member positioned between the first and second windows; and a cover member with a recessed section, wherein the first solar cell module and the second solar cell module are arranged such that first and second panel main surfaces face first and second window main surfaces, respectively, the first and second solar cell modules are electrically connected by first and second extraction wires, respectively, first and second wire parts are disposed along first and second outer surfaces of the column member, respectively, and the cover member includes a first part and a second part of the first and second wire parts in the recessed section, respectively.
10. The indoor structure according to claim 9, wherein the column member is a column that extends from the floor to the ceiling and supports the ceiling.
11. An indoor structure provided in a room having an indoor space, comprising: first and second windows arranged along at least one wall between a ceiling and a floor, wherein the ceiling, the at least one wall, and the floor define the indoor space of the room, wherein the ceiling comprises a first ceiling part and a second ceiling part, the second ceiling part being located lower than the first ceiling part, the second ceiling part being continuous with the first ceiling part via a vertical wall part, the vertical wall part is a part of the ceiling connecting a first end part of the first ceiling part and a second end part of the second ceiling part; a column member positioned between the first and second windows, the column member extending from the floor to the ceiling and supports the ceiling; first and second solar cell modules; and a cover member with a recessed section, wherein the first and second windows include first and second window glasses having first and second window main surfaces, respectively, the first and second solar cell modules include first and second main body panels with first and second panel main surfaces, and first and second extraction wires, respectively, the first and second panel main surfaces of the first and second main body panels are configured to face the first and second window main surfaces, respectively, the first and second solar cell modules are electrically connected by the first and second extraction wires, respectively, the first and second extraction wires include first and second wire parts exposed from the first and second main body panels, respectively, the first and second wire parts extend along first and second outer surfaces of the column member, respectively, and the cover member is attached to the column member and the second ceiling part, and the cover member includes the first and second wire parts in the recessed section.
Description
BRIEF DESCRIPTION OF DRAWINGS
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BEST MODE FOR CARRYING OUT THE INVENTION
(21) Hereinafter, embodiments of the present invention will be described in detail.
(22) An indoor structure 1 according to a first embodiment of the present invention constitutes a room of a building such as an office. As illustrated in
(23) As illustrated in
(24) The first ceiling part 10 is a part constituting a ceiling surface together with the second ceiling part 11, and is a part positioned on a side closer to the wall 3a than the second ceiling part 11.
(25) The second ceiling part 11 is a part positioned on a lower side than the first ceiling part 10 and having a step with respect to the first ceiling part 10.
(26) The vertical wall part 12 is a wall part connecting an end part of the first ceiling part 10 and an end part of the second ceiling part 11, and is a wall part hanging down from the first ceiling part 10 toward the second ceiling part 11.
(27) As illustrated in
(28) As shown in
(29) As can be seen from
(30) As shown in
(31) As shown in
(32) As can be seen from
(33) As shown in
(34) The window glass 30 is a plate-like body having translucent properties, and the window glass 30 according to the present embodiment is a glass plate having a quadrangular shape when viewed from the front.
(35) The window glass 30 is fixed in a vertical posture via the frame 31, and has two main surfaces that are a main surface on the indoor space 6 side (hereinafter, also referred to as an inner main surface 32) (window main surface) and a main surface on the outdoor space 7 side (hereinafter, also referred to as an outer main surface 33).
(36) As shown in
(37) The frame 31 has a quadrangular annular shape when viewed from the front, and has lighting openings on the front and back, respectively.
(38) As shown in
(39) The main body panel 42 is a see-through solar cell panel, and is capable of transmitting light in a thickness direction. That is, the main body panel 42 includes power generation parts that receive light and generates power and lighting parts that transmit the light in the thickness direction, and the power generation parts can generate the power by photoelectrically converts the light emitted from the outdoor space 7, and the lighting parts can transmit the light to the indoor space 6. In the main body panel 42, a part or all of the power generation parts may also serve as the lighting parts.
(40) The main body panel 42 according to the present embodiment is a solar cell panel having a light-receiving surface on one side. The main body panel 42 may be a double-sided light receiving type solar cell panel having light-receiving surfaces on both sides.
(41) As illustrated in
(42) As shown in
(43) As shown in
(44) The gap forming part 47 is a part that forms a gap between the inner main surface 32 of the window glass 30 and the outer main surface 46 of the main body panel 42 when the power generation window 16 is formed.
(45) The gap forming part 47 is interposed between the inner main surface 32 of the window glass 30 and the outer main surface 46 of the main body panel 42, and is also the spacing holding part that holds a spacing between the window glass 30 and the main body panel 42.
(46) The gap forming part 47 is a projecting stripe protruding from the outer main surface 46 in a crossing direction (orthogonal direction in the present embodiment) to the outer main surface 46 of the main body panel 42, and has an annular shape and continuously or intermittently extends along the sides 48a to 48d when viewed from the back.
(47) The gap forming part 47 is preferably an elastically deformable elastic body. By doing this, the main body panel 42 and the window glass 30 are not in direct contact with each other, and the window glass 30 is less likely to be damaged during construction.
(48) As shown in
(49) The main body panel 42 according to the present embodiment is a crystalline silicon solar cell panel, and includes the solar cell strings 52a to 52d and a panel-side wire part 54 electrically connected to the solar cell strings 52a to 52d, as shown in
(50) The translucent substrates 50 and 51 are translucent insulation substrates having translucent properties and insulation properties, and specifically, glass substrates having a thickness of about 1 mm to 5 mm are generally used. In order to reduce a load on the frame 31 of the window glass 30, one of the translucent substrates 50 and 51 which is disposed on the indoor space 6 side may be a translucent resin sheet or resin plate.
(51) As shown in
(52) In the solar cell strings 52, electrodes of the solar cells 55 may be in direct contact with each other and may be electrically connected in series without the interconnectors 56.
(53) As shown in
(54) As shown in
(55) The negative electrode side connecting part 68 is a connection wire that is connected to the negative electrode side end parts 58 of the solar cell strings 52a to 52d and electrically connects the solar cell strings 52a to 52d to the inner wire part 60 of the extraction wire 43.
(56) As shown in
(57) The extraction wire 43 is a wire that extracts electricity from the solar cells 55, and includes the inner wire part 60, a terminal box 61, and outer wire parts 62 (wire parts) as shown in
(58) The inner wire part 60 is a wire connected to the solar cell strings 52a to 52d in the main body panel 42, and includes a positive electrode side wire part 65 and a negative electrode side wire part 66.
(59) The positive electrode side wire part 65 is a wire in which one end part (first end part) side is connected to the positive electrode side connecting part 67 of the main body panel 42 and the other end part side is drawn into the terminal box 61.
(60) The negative electrode side wire part 66 is a wire in which one end part (first end part) side is connected to the negative electrode side connecting part 68 of the main body panel 42 and the other end part side is drawn into the terminal box 61.
(61) As shown in
(62) The outer wire part 62 is a wire connected to another solar cell module 21 or an external load, and is a cable extending from the terminal box 61 to the outside. Specifically, the outer wire part 62 is a flexible flat cable, is bendable, and is a cable having a cross-sectional shape of which a thickness is thinner than a width.
(63) Here, a positional relationship between the parts of the solar cell module 21 will be described.
(64) As shown in
(65) In each of the solar cell strings 52a to 52d, the solar cells 55 are arranged in a vertical direction Y, and the solar cells 55 are connected via the interconnectors 56.
(66) In the solar cell module 21, the power generation parts are the solar cells 55, and the lighting parts are parts between the solar cells 55.
(67) In each of the solar cell strings 52a to 52d, the positive electrode side end parts 57 are connected to the positive electrode side connecting part 67, and the negative electrode side end parts 58 are connected to the negative electrode side connecting part 68. That is, in each of the solar cell strings 52a to 52d, at the time of power generation, the positive electrode side end parts 57 and the negative electrode side end parts 58 are electrically at the same potential by the connecting parts 67 and 68, and are connected in parallel.
(68) As shown in
(69) As shown in
(70) As shown in
(71) As shown in
(72) The box cutout part 71 is a cutout part provided in the upper holding part 70a that holds the upper side 48a of the main body panel 42, and is a cutout part through which the terminal box 61 can be inserted.
(73) The positioning cutout parts 72a and 72b are cutout parts provided in the upper holding part 70a that holds the upper side 48a of the main body panel 42, and are cutout parts through which the positioning members 23a and 23b can be inserted.
(74) The positioning cutout parts 72c and 72d are cutout parts provided in the lower side holding part 70c that holds the lower side 48c of the main body panel 42, and are cutout parts through which the positioning members 23c and 23d can be inserted.
(75) The positioning members 23a to 23d are members for positioning the main body panel 42 when the main body panel 42 is attached to the window glass 30, and can hold the main body panel 42 in the up and down directions.
(76) As shown in
(77) As can be seen from
(78) The first cover member 80 is an elongated member having a substantially U-shaped cross-sectional shape and extending linearly. That is, the first cover member 80 includes wall parts 82 and 83 facing each other with a spacing therebetween, and a connection wall part 84 connecting end parts of the wall parts 82 and 83, and a recessed groove 85 is formed by the wall parts 82 to 84.
(79) The recessed groove 85 is a recessed section having a depth toward the connection wall part 84, and extends linearly in a longitudinal direction.
(80) As illustrated in
(81) The cutout part 86 is a cutout part extending from an end part of the lower wall part 83 toward the connection wall part 84.
(82) An outer surface of the first cover member 80 has substantially the same color as the wall surface constituting part 15 with the inside of the recessed groove 85 as a reference. In the first cover member 80 according to the present embodiment, the wall parts 82 to 84 have the same color as the wall surface constituting part 15.
(83) The term “substantially the same color” mentioned herein includes not only completely the same color but also similar colors. Specifically, when an image is captured by imaging means such as a digital camera and a color of the captured image is classified into 256 gradations of RGB, a difference is 5 gradations or less.
(84) As can be seen from
(85) The second cover member 81 is an elongated member having a substantially U-shaped sectional shape and extending linearly. That is, the second cover member 81 includes wall parts 87 and 88 facing each other with a spacing therebetween, and a connection wall part 89 connecting end parts of the wall parts 87 and 88, and a recessed groove 90 is formed by the wall parts 87 to 89.
(86) The recessed groove 90 is a recessed section having a depth toward the connection wall part 89, and extends linearly in the longitudinal direction.
(87) An outer surface of the second cover member 81 has substantially the same color as a protrusion side end surface part 96 of the column member 17 with the inside of the recessed groove 90 as a reference. In the first cover member 80 according to the present embodiment, the wall parts 87 to 89 have the same color as the protrusion side end surface part 96 of the column member 17.
(88) As shown in
(89) As shown in
(90) Subsequently, a positional relationship between the members will be described together with a construction procedure of the indoor structure 1 according to the first embodiment of the present invention. The following procedure is an example of the construction procedure, and the present invention is not limited thereto.
(91) First, as shown in
(92) At this time, the gap forming part 47 (see
(93) A spacing D between the inner main surface 32 of the window glass 30 and the outer main surface 46 of the main body panel 42 illustrated in
(94) Within this range, the indoor space 6 is hardly compressed by the main body panel 42 while securing heat insulation performance.
(95) At this time, as shown in
(96) Subsequently, in a state in which the solar cell module 21 is temporarily fixed to the fitting window 20 by the positioning members 23a to 23d as shown in
(97) At this time, the adhesive 100 is applied across the positioning members 23a to 23d and the terminal box 61, and the bonding member 22 bonds the positioning members 23a to 23d and the terminal box 61 to the fitting window 20.
(98) Subsequently, as shown in
(99) At this time, as shown in
(100) At this time, in the solar cell modules 21 and 21 adjacent to each other with the column member 17 interposed therebetween, the outer wire parts 62 and 62 are connected to each other and are electrically connected in series to an external load as shown in
(101) Subsequently, as can be seen from
(102) At this time, the first cover member 80 closes the gap between the main body panel 42 and the first ceiling part 10 together with the bonding member 22.
(103) As shown in
(104) The term “substantially flush” mentioned herein means that the step is 5 mm or less.
(105) As shown in
(106) As can be seen from
(107) As described above, in accordance with the indoor structure 1 according to the present embodiment, the outer wire parts 62 are accommodated in the recessed grooves 85 and 90 of the cover members 80 and 81, and are surrounded at a plurality of locations by the frame 31, the first cover member 80, the protrusion side end surface part 96 of the column member 17, and the second cover member 81. Thus, the outer wire part 62 is hardly visible from the indoor space 6 side, and the design is high.
(108) In accordance with the indoor structure 1 according to the present embodiment, since an exposed part of the outer wire part 62 from the main body panel 42 is laid between the vertical wall part 12 of the ceiling 2 and the fitting window 20, a part of the outer wire part 62 is hidden by the vertical wall part 12, and the outer wire part 62 is hardly visible from the indoor space 6 side.
(109) In accordance with the indoor structure 1 according to the present embodiment, since there is a space between the inner main surface 32 of the window glass 30 and the outer main surface 46 of the main body panel 42, heat can be insulated by air, and a heat insulating effect can be further exhibited.
(110) Next, an indoor structure according to a second embodiment of the present invention will be described.
(111) In the indoor structure according to the second embodiment of the present invention, a shape of the solar cell module is different from that of the first embodiment, the inner wire part and the outer wire part are integrated without the terminal box, and the terminal box is not provided.
(112) As shown in
(113) Similarly to the main body panel 42 according to the first embodiment, in the main body panel 242, a plurality of solar cell strings 52a to 52d is arranged between two translucent substrates 50 and 51, and sealing members 53a and 53b are filled and sealed between the two translucent substrates 50 and 51.
(114) As illustrated in
(115) The outer wire part 262 is bendable, is a cable having a cross-sectional shape of which a thickness is thinner than a width, and includes a positive electrode side cable 250 (second wire part) and a negative electrode side cable 251 (second wire part). The periphery of the cables 250 and 251 is covered with a protective cover 252.
(116) The positive electrode side cable 250 is a multicore cable, and is obtained by bundling a plurality of conductive wires 253 (conductors) and covering the periphery of the conductive wires 253 with an insulator.
(117) The negative electrode side cable 251 is a multicore cable, and is obtained by bundling a plurality of conductive wires 256 (conductors) and covering the periphery of the conductive wires 256 with an insulator.
(118) Next, a positional relationship between the members of the solar cell module 221 according to the second embodiment will be described.
(119) As can be seen from
(120) When the translucent substrates 50 and 51 are viewed from the front, the outer wire part 262 extends between the inside and the outside at an intermediate part of one side of the translucent substrates 50 and 51.
(121) The term “intermediate part” mentioned herein refers to a part between both end parts in one direction, and refers to a part other than both the end parts.
(122) A thickness direction of the outer wire part 262 coincides with an overlapping direction of the two translucent substrates 50 and 51 at least at edge parts of the translucent substrates 50 and 51 (side parts when viewed from the front). That is, a width of the outer wire part 262 extends in a spreading direction of a boundary surface between the translucent substrates 50 and 51.
(123) In accordance with the indoor structure according to the second embodiment, since the terminal box is not provided in the solar cell module 221, cost can be reduced.
(124) In accordance with the indoor structure according to the second embodiment, since the positive electrode side cable 250 and the negative electrode side cable 251 are formed by bundling the plurality of conductive wires 253 and 256, disconnection or the like hardly occurs.
(125) In the above-described second embodiment, although the extraction wire 243 is provided on the upper side 48a of the main body panel 242, and a part for extracting electricity from the main body panel 242 is concentrated in one location, the present invention is not limited thereto. A plurality of parts for extracting electricity may be provided.
(126) For example, as shown in
(127) In the above-described embodiments, although the main body panel 42 or 242 is the crystalline silicon solar cell panel and the solar cell strings 52 are formed by connecting the solar cells 55 via the interconnectors 56, the present invention is not limited thereto. The solar cell strings 52 of the main body panel 42 or 242 may be formed by directly connecting the solar cells 55 in series without the interconnectors 56 similar to the case of using a thin film solar panel.
(128) In the above-described embodiments, the extraction wire 43 or 243 is provided on the upper side 48a of the main body panel 42 or 242. However, the present invention is not limited thereto. The extraction wire 43 or 243 may be provided on the other sides 48b to 48d of the main body panel 42 or 242.
(129) In the above-described embodiments, the first cover member 80 is attached to the frame 31 of the fitting window 20. However, the present invention is not limited thereto. The first cover member 80 is attached is not particularly limited. For example, the first cover member 80 may be attached to the first ceiling part 10. Or the first cover member 80 may be attached to the solar cell module 21.
(130) In the above-described second embodiment, although the positive electrode side cable 250 and the negative electrode side cable 251 of the extraction wire 243 are multicore cables, respectively, the present invention is not limited thereto. The positive electrode side cable 250 and the negative electrode side cable 251 may be single-core cables.
(131) In the above-described embodiments, although the positioning members 23a to 23d are provided on the inner main surface of the window glass 30, the present invention is not limited thereto. As long as the spacing between the inner main surface 32 of the window glass 30 and the outer main surface 46 of the main body panel 42 can be maintained, the window glass may be provided on the frame 31.
(132) In the above-described embodiments, the spacing between the inner main surface 32 of the window glass 30 and the outer main surface 46 of the main body panel 42 is maintained by providing the gap forming part 47 on the outer main surface 46 of the main body panel 42. However, the present invention is not limited thereto. The spacing between the inner main surface 32 of the window glass 30 and the outer main surface 46 of the main body panel 42 may be maintained by providing the gap forming part in the window glass 30.
(133) In the above-described embodiments, the solar cell modules 21 and 21 adjacent to each other with the column member 17 interposed therebetween are electrically connected in series to the external load. However, the present invention is not limited thereto. The solar cell modules 21 and 21 adjacent to each other with the column member 17 interposed therebetween may be electrically connected in parallel to the external load as shown in
(134) In the above-described embodiments, the solar cell module 21 is fitted into the opening 18 of the wall 3a and is attached to the substantially non-detachable fitting window 20. However, the present invention is not limited thereto. The solar cell module may be attached to a window detachable from the opening 18 of the wall 3a.
(135) In the above-described embodiments, the solar cell module 21 is mounted on the positioning members 23c and 23d and then the positioning members 23a and 23b are inserted into the gap between the solar cell module 21 and the frame 31 to perform positioning. However, the present invention is not limited thereto. The positioning members 23a to 23d may be installed on the frame 31, and then the solar cell module 21 may be installed.
(136) In the above-described second embodiment, the thickness direction of the outer wire part 262 coincides with the overlapping direction of the two translucent substrates 50 and 51. However, the present invention is not limited thereto. The thickness direction of the outer wire part 262 may be inclined with respect to the overlapping direction of the two translucent substrates 50 and 51 to such an extent that the thickness direction substantially is regarded as coinciding with the overlapping direction of the two translucent substrates 50 and 51. For example, as shown in
(137) In the above-described embodiments, the constituting members can be freely replaced or added between the embodiments as long as the replacement or addition is included in the technical scope of the present invention.
EXPLANATION OF REFERENCE SIGNS
(138) 1: indoor structure 2: ceiling 5: floor 10: first ceiling part 11: second ceiling part 12: vertical wall part 17: column member 20: fitting window 21,221: solar cell module 23a˜23d: positioning member 25: protective member 30: window glass 32: inner main surface (one main surface of window glass, window main surface) 42,242: main body panel 43,243: extraction wire 46: outer main surface (one main surface of main body panel, panel main surface) 47: gap forming part (spacing maintaining member) 50,51: translucent substrate 52,52a˜52d: solar cell string 55: solar cell 57: positive electrode side end part 58: negative electrode side end part 60: inner wire part 61: terminal box 62,262: outer wire part (wire part) 67: positive electrode side connecting part 68: negative electrode side connecting part 80: first cover member 81: second cover member 85,90: recessed groove (recessed section) 250: positive electrode side cable (second wire part) 251: negative electrode side cable (second wire part) 253,256: conductive wire (conductor)