Conveying system
The conveying system integrates electrically isolated signal terminals, a locking mechanism, and thermal fuses to detect and prevent overheating in forklifts, addressing the safety issues of conventional charging systems by preventing charging when overheating occurs.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-09-11
- Publication Date
- 2026-03-24
AI Technical Summary
Conventional forklifts lack an integrated system to detect abnormal overheating or conditions leading to overheating during charging, which can cause resin melting or fires at the charging plug contact point, and require significant modifications for temperature detection using thermistors.
A conveying system with a charging plug and vehicle charging outlet featuring electrically isolated signal terminals, a voltage path with switches, a light guide, and a locking mechanism to prevent plug removal, along with thermal fuses and switches to detect improper insertion or overheating, and a control unit to manage charging based on signal terminal conductivity.
The system effectively detects abnormal overheating or conditions leading to overheating at an early stage, preventing charging and indicating issues through visible light, thus reducing the risk of fires and ensuring safe charging operations.
Smart Images

Figure 2026052489000001_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a conveying system.
Background Art
[0002] Charging plugs for electric vehicles have a locking mechanism for preventing the charging plug from being pulled out of the vehicle charging socket during charging (see, for example, Patent Document 1). Such a locking mechanism also exists in charging plugs for forklifts.
[0003] In forklifts, there is also a temperature detection mechanism that uses a thermistor to detect the temperature of the vehicle charging socket and automatically stops charging when the vehicle charging socket overheats abnormally (see, for example, Patent Document 2). This temperature detection mechanism and the above locking mechanism are separate mechanisms and operate independently.
[0004] A temperature detection mechanism using a thermistor requires a detection circuit for detecting the resistance value of the thermistor, a mounting component for mounting the thermistor, a harness for transmitting the signal of the thermistor to a control unit (controller), and dedicated software for processing the signal of the thermistor by the control unit, etc. Therefore, when adopting a temperature detection mechanism using a thermistor in an existing forklift, major modifications are required.
[0005] By the way, in conventional forklifts, charging may be performed even when the insertion of the charging plug into the vehicle charging socket is insufficient. In this case, abnormal overheating may occur at the contact portion between the vehicle charging socket and the charging plug. Also, when the charging plug is pulled out during charging, a spark may occur at the contact portion between the vehicle charging socket and the charging plug. Due to these reasons, in conventional forklifts, there is a risk that the resin near the contact portion (for example, the resin case of the charging plug) melts or catches fire. Therefore, it is preferable for the operator of the forklift to be able to detect the occurrence of abnormal overheating or a phenomenon leading to the occurrence of abnormal overheating at an early stage. [Prior art documents] [Patent Documents]
[0006] [Patent Document 1] Japanese Patent Publication No. 2013-106391 [Patent Document 2] Japanese Patent Publication No. 2002-27604 [Overview of the project] [Problems that the invention aims to solve]
[0007] The present invention has been made in view of the above circumstances, and its objective is to provide a transport system that can detect the occurrence of abnormal overheating or phenomena that lead to the occurrence of abnormal overheating at an early stage. [Means for solving the problem]
[0008] To solve the above problems, the transport system according to the present invention is A battery vehicle equipped with a battery, an onboard charger for charging the battery, and a vehicle charging outlet connected to the onboard charger, A charging plug with a cable configured to be connectable to the aforementioned vehicle charging outlet, A transport system including, The aforementioned charging plug with cable is A power cable for connecting to an external power supply, The vehicle comprises a charging plug configured to be detachable from the vehicle charging outlet, The aforementioned charging plug is A plug terminal for supplying power from the external power source to the battery vehicle, A first plug-side signal terminal and a second plug-side signal terminal are electrically isolated from the aforementioned plug terminals, A voltage path connecting the first plug-side signal terminal and the second plug-side signal terminal, The system includes an on / off switch interposed in the voltage path, which switches the voltage path between a conductive state and a non-conductive state, The aforementioned vehicle charging outlet is Terminal section and A terminal block on the outlet side that holds the aforementioned terminal portion, An annular light guide is provided around the terminal portion and on the front side of the outlet-side terminal block, The light source unit comprises a light source unit that causes visible light to be incident on the light guide, The aforementioned terminal portion is The outlet terminal that contacts the plug terminal, The first plug-side signal terminal and the first outlet-side signal terminal that contact the first plug-side signal terminal, It comprises a second outlet-side signal terminal that contacts the second plug-side signal terminal, The above-mentioned mounted charger is characterized in that it determines whether the voltage path is in a conductive state or a non-conductive state according to the voltage between the first outlet-side signal terminal and the second outlet-side signal terminal, and if it is determined to be in a non-conductive state, it prohibits charging and causes visible light to be incident on the light guide from the light source unit.
[0009] In the aforementioned transport system, The light source unit receives the visible light from the rear end of the light guide, The light guide comprises a first region on its inner or outer surface where irregularities are formed along the axial direction and a second region where such irregularities are not formed. The first region and the second region can be configured to be alternately located in the circumferential direction of the light guide.
[0010] In the aforementioned transport system, The charging plug is further equipped with a locking mechanism that prevents the charging plug from being pulled out of the vehicle charging outlet when it is locked. The opening / closing mechanism can be configured to include a first switch that is ON when the lock state is activated and OFF when the lock state is released.
[0011] In the aforementioned transport system, The opening / closing part can be configured to include a second switch that is in an on state when the insertion amount of the charging plug into the vehicle charging socket is equal to or greater than a predetermined threshold value, and is in an off state when the insertion amount is less than the threshold value.
[0012] In the conveying system, The opening / closing part can be configured to include a temperature fuse that is thermally conductively connected to the plug terminal.
[0013] In the conveying system, The temperature fuse is connected to the socket terminal via a metal terminal, The metal terminal includes a connection part connected to the socket terminal, and is formed in a cylindrical shape and includes an arrangement part in which the temperature fuse is arranged inside the cylinder, and can be configured such that the arrangement part faces the end of the plug terminal. In the conveying system,
[0014] The first insertion part of the first socket-side signal terminal inserted into the first plug-side signal terminal is shorter than the insertion part of the socket terminal inserted into the plug terminal, In the conveying system, The second insertion part of the second socket-side signal terminal inserted into the second plug-side signal terminal may be shorter than the insertion part of the socket terminal.
[0015] In the conveying system, The on-vehicle charger includes a power conversion unit that converts the AC power input from the vehicle charging socket via an AC power line into DC power and outputs the DC power to the battery, and a control unit that controls the power conversion unit. The power conversion unit includes a transformer, and a switch circuit provided on the primary side of the transformer, which supplies the AC power to the transformer when in an on state and cuts off the supply of the AC power to the transformer when in an off state. The transformer comprises a rectifier circuit provided on the secondary side, The control unit, A determination unit that detects the voltage between the first outlet-side signal terminal and the second outlet-side signal terminal and determines whether it is in a conductive state or a non-conductive state, An AC connection detection unit for detecting the AC voltage applied to the outlet terminal of the vehicle charging outlet, The switch circuit comprises a switch control unit that controls the ON state and the OFF state of the switch circuit, The switch control unit, when the determination unit determines that the circuit is in a non-conductive state, or when the AC connection detection unit does not detect the AC voltage, turns the switch circuit to the off state. The determination unit can be configured to cause visible light to be incident on the light guide from the light source unit when it determines that the circuit is not conductive. [Effects of the Invention]
[0016] According to the present invention, it is possible to provide a transport system that can detect the occurrence of abnormal overheating or phenomena that could lead to the occurrence of abnormal overheating at an early stage. [Brief explanation of the drawing]
[0017] [Figure 1] This is a diagram showing the transport system according to the present invention. [Figure 2] (A) A diagram showing the charging plug of the present invention. (B) A diagram showing the arrangement of each terminal in the charging plug of the present invention. [Figure 3] This figure shows the mounting structure of the metal terminals in the charging plug of the present invention. [Figure 4] (A) This figure shows the vehicle charging outlet of the present invention. (B) This figure shows the positional relationship between the light guide and the light source (LED) of the present invention. [Figure 5] This is a circuit diagram of the onboard charger of the present invention. [Figure 6] (A) This figure shows a modified charging plug. (B) This figure shows a modified vehicle charging outlet. [Modes for carrying out the invention]
[0018] Hereinafter, embodiments of the transport system according to the present invention will be described with reference to the attached drawings.
[0019] Figure 1 shows a transport system 1 according to one embodiment of the present invention. The transport system 1 includes at least one charging plug 100 with a cable and at least one forklift 200 (corresponding to the "battery vehicle" of the present invention).
[0020] The charging plug with cable 100 comprises a charging plug 110 and a power cable 120. The charging plug 110 is configured to be matesable with a vehicle charging outlet 210, which will be described later. The power cable 120 is configured to be connectable to an external power source (in this embodiment, a three-phase AC power source provided in a facility such as a factory or warehouse). The charging plug with cable 100 supplies AC power from the external power source to the forklift 200. The power cable 120 may consist of a single power cable, or it may consist of multiple power cables (including extension cables) connected in series.
[0021] Figure 2(A) shows the structure of the charging plug 110. The charging plug 110 includes plug terminals 111R, 111S, and 111T that correspond to three phases, a first plug-side signal terminal 111R', a second plug-side signal terminal 111R'', a ground terminal 111E, a plug-side terminal block 112, a plug-side connection part 113, a cover body 114, a lock pin 115A and a lock release button 115B, metal terminals 116R, 116S, and 116T, thermal fuses 117R, 117S, and 117T, and a voltage path 118.
[0022] Plug terminals 111R, 111S, and 111T are terminals corresponding to three phases (R phase, S phase, and T phase), and the configuration of each terminal is the same. Plug terminal 111R has a recess on one side into which the outlet terminal 211R (described later) is inserted, and on the other side a metal terminal 116R and the R phase wire R are connected. Plug terminal 111S has a recess on one side into which the outlet terminal 211S (described later) is inserted, and on the other side a metal terminal 116S and the S phase wire S are connected. Plug terminal 111T has a recess on one side into which the outlet terminal 211T (described later) is inserted, and on the other side a metal terminal 116T and the T phase wire T are connected. The wires R, S, and T are drawn out from the power cable 120.
[0023] The first plug-side signal terminal 111R' has the same axial length as the plug terminals 111R, 111S, and 111T, but a smaller diameter than the plug terminals 111R, 111S, and 111T. The first plug-side signal terminal 111R' has a recess formed on one side into which the first outlet-side signal terminal 211R' (described later) is inserted, and one end of the voltage path 118 is connected to the other side.
[0024] The second plug-side signal terminal 111R'' has the same axial length as the plug terminals 111R, 111S, and 111T, but a smaller diameter than the plug terminals 111R, 111S, and 111T. The second plug-side signal terminal 111R'' has a recess formed on one side into which the second outlet-side signal terminal 211R'' (described later) is inserted, and the other end of the voltage path 118 is connected to the other side.
[0025] The ground terminal 111E has a recess on one side into which the ground terminal 211E (described later) is inserted, and the ground wire E is connected to the other side. The ground wire E is drawn out from the power cable 120.
[0026] Figure 2(B) shows the arrangement of plug terminals 111R, 111S, 111T, the first plug-side signal terminal 111R', the second plug-side signal terminal 111R'', and the ground terminal 111E. Figure 2(B) is a front view of the plug-side connection section 113.
[0027] The plug terminals 111R, 111S, and 111T are positioned in the center of the plug-side connection section 113 in the left-right direction, while the first plug-side signal terminal 111R', the second plug-side signal terminal 111R'', and the ground terminal 111E are positioned to the right of the center in the left-right direction. Furthermore, in the vertical direction, the second plug-side signal terminal 111R'' is positioned between plug terminal 111R and plug terminal 111S, the first plug-side signal terminal 111R' is positioned between plug terminal 111S and plug terminal 111T, and the ground terminal 111E is positioned below plug terminal 111T. Note that the above arrangement is just an example and can be changed as appropriate depending on the relationship with the forklift 200.
[0028] The plug-side terminal block 112 is made of resin (for example, epoxy resin) and holds the central portions of the plug terminals 111R, 111S, 111T, the first plug-side signal terminal 111R', the second plug-side signal terminal 111R'', and the ground terminal 111E. A wall portion 112a is provided on the rear side of the plug-side terminal block 112, as shown in Figure 3. The wall portion 112a is intended to ensure reliable insulation by securing creepage distance between the plug terminals 111R, 111S, 111T, and the ground terminal 111E. The rear end surface of the wall portion 112a protrudes further back than the rear end surfaces of the plug terminals 111R, 111S, 111T, the first plug-side signal terminal 111R', the second plug-side signal terminal 111R'', and the ground terminal 111E. Note that the wall portion 112a is not shown in Figure 2(A).
[0029] The plug-side connection portion 113 is an annular member provided on the front side of the plug-side terminal block 112 so as to surround the plug terminals 111R, 111S, 111T, the first plug-side signal terminal 111R', the second plug-side signal terminal 111R'', and the ground terminal 111E. The plug-side connection portion 113 is configured to be matesable with the vehicle charging outlet 210, which will be described later.
[0030] The cover body 114 houses the plug terminals 111R, 111S, 111T, the first plug-side signal terminal 111R', the second plug-side signal terminal 111R'', the ground terminal 111E, the plug-side terminal block 112, the metal terminals 116R, 116S, 116T, the thermal fuses 117R, 117S, 117T, and the voltage path 118. The cover body 114 has a grip portion that can be grasped by an operator. In this embodiment, the cover body 114 is formed of a transparent material, but it may be formed of an opaque material. However, by making the cover body 114 of a transparent material, or if it is an opaque material, by making it a color that allows the light of the LED 214 described later to be seen (for example, milky white), the light emission range of the LED 214 can be widened.
[0031] The locking pin 115A and the unlocking button 115B constitute the "locking mechanism" of the present invention. The locking pin 115A and the unlocking button 115B are connected by a mechanical mechanism. When the unlocking button 115B is not pressed, the locking mechanism is in a state where the locking pin 115A protrudes from the outer surface of the plug-side connection part 113 (locked state). On the other hand, when the unlocking button 115B is pressed, the locking mechanism is in a state where the locking pin 115A does not protrude from the outer surface of the plug-side connection part 113 (unlocked state). The locking mechanism in the locked state prevents the charging plug 110 from being pulled out of the vehicle charging outlet 210.
[0032] As shown in Figure 3, the metal terminals 116R, 116S, and 116T are connected to the plug terminals 111R, 111S, and 111T by screws 119 while holding the thermal fuses 117R, 117S, and 117T. The metal terminals 116R, 116S, and 116T are made of a metal with high thermal conductivity (for example, copper) and all have the same structure. In this embodiment, flag terminals are used as the metal terminals 116R, 116S, and 116T.
[0033] The metal terminals 116R, 116S, and 116T each have a connecting portion 116a and an arrangement portion 116b. The connecting portion 116a is located on the upper surface of the plug terminals 111R, 111S, and 111T, and the arrangement portion 116b is located opposite the end (rear end face) of the plug terminals 111R, 111S, and 111T.
[0034] The connecting portion 116a is formed on a flat plate and has a through hole that is smaller than the head of the screw 119 and larger than the threaded portion of the screw 119. The placement portion 116b is formed in a cylindrical shape (in this embodiment, a cylindrical shape). A thermal fuse 117R is placed in the placement portion 116b for the metal terminal 116R, a thermal fuse 117S is placed in the placement portion 116b for the metal terminal 116S, and a thermal fuse 117T is placed in the placement portion 116b for the metal terminal 116T. The thermal fuses 117R, 117S, and 117T are fixed inside the cylinder of the placement portion 116b, for example, by an insulating adhesive.
[0035] As described above, the thermal fuses 117R, 117S, and 117T are connected to the plug terminals 111R, 111S, and 111T via metal terminals 116R, 116S, and 116T in a heat-conductive manner. The thermal fuses 117R, 117S, and 117T all have the same configuration. For example, non-resettable thermal fuses in which the temperature-sensing element contains a fusible alloy can be used as the thermal fuses 117R, 117S, and 117T. The thermal fuses 117R, 117S, and 117T include a first lead connected to one side of the temperature-sensing element and a second lead connected to the other side of the temperature-sensing element. The first and second leads are insulated with an insulating tube or the like.
[0036] In this embodiment, a sleeve s is used as a connecting means to connect the first lead, second lead of the thermal fuses 117R, 117S, and 117T and the wires of the voltage path 118. However, any connecting means other than a sleeve s can be used as the connecting means.
[0037] The voltage path 118 has one end connected to the first plug-side signal terminal 111R' and the other end connected to the second plug-side signal terminal 111R''. In this embodiment, one end of the wire constituting the voltage path 118 is crimped to a ring terminal, and the ring terminal is screwed to the first plug-side signal terminal 111R' with a screw 119. Similarly, the other end of the wire constituting the voltage path 118 is crimped to a ring terminal, and the ring terminal is screwed to the second plug-side signal terminal 111R'' with a screw 119. Note that this connection method is just one example, and any connection method can be adopted.
[0038] The voltage path 118 is fitted with a first switch SA, a second switch SB, and thermal fuses 117R, 117S, and 117T, which correspond to the "switching section" of the present invention. The first switch SA, the second switch SB, and the thermal fuses 117R, 117S, and 117T are connected in series.
[0039] The first switch SA is a switch that is ON when the locking mechanism, consisting of a locking pin 115A and a release button 115B, is in the locked state, and OFF when it is in the unlocked state. When the first switch SA is OFF, that is, when the release button 115B is pressed and the lock is released, the voltage path 118 is non-conductive.
[0040] In this embodiment, a microswitch (limit switch) is used as the first switch SA. For example, the actuator portion of the microswitch is connected to the locking mechanism, and the contact portion of the microswitch is interposed in the voltage path 118. This allows the on / off state of the first switch SA to be linked to the locked / unlocked state of the locking mechanism.
[0041] The second switch SB is a switch that turns ON when the insertion depth of the charging plug 110 into the vehicle charging outlet 210 is greater than or equal to a predetermined threshold, and turns OFF when the insertion depth is less than the predetermined threshold. The predetermined threshold is set to the insertion depth when the charging plug 110 is inserted as far as it can go into the vehicle charging outlet 210 (hereinafter referred to as the fully inserted state). When the second switch SB is OFF, that is, when the charging plug 110 is not in the fully inserted state (not fully inserted state), the voltage path 118 becomes non-conductive.
[0042] In this embodiment, a microswitch (limit switch) is used as the second switch SB. For example, the actuator portion of the microswitch is positioned at the location where it contacts the vehicle charging outlet 210 when the device is fully inserted, and the contact portion of the microswitch is interposed in the voltage path 118. This allows the on / off state of the second switch SB to be linked to the fully inserted state / not fully inserted state. The location where the device contacts the vehicle charging outlet 210 when the device is fully inserted is, for example, the location of the ground terminal 111E that the ground terminal 211E of the vehicle charging outlet 210 contacts when the device is fully inserted.
[0043] Furthermore, if abnormal overheating occurs at plug terminal 111R, the heat is transferred to the thermal fuse 117R via metal terminal 116R, causing the thermal fuse 117R to melt (activate), and the voltage path 118 becomes non-conductive. If abnormal overheating occurs at plug terminal 111S, the heat is transferred to the thermal fuse 117S via metal terminal 116S, causing the thermal fuse 117S to melt (activate), and the voltage path 118 becomes non-conductive. Similarly, if abnormal overheating occurs at plug terminal 111T, the heat is transferred to the thermal fuse 117T via metal terminal 116T, causing the thermal fuse 117T to melt (activate), and the voltage path 118 becomes non-conductive.
[0044] As described above, the voltage path 118 becomes non-conductive when the locking mechanism is unlocked, when the charging plug 110 is not fully inserted, or when abnormal overheating occurs at any of the plug terminals 111R, 111S, or 111T. On the other hand, it becomes conductive when the locking mechanism is locked, when the charging plug 110 is fully inserted, and when abnormal overheating does not occur at any of the plug terminals 111R, 111S, or 111T.
[0045] Referring again to Figure 1, in this embodiment, the forklift 200 is a reach-type forklift. However, the forklift 200 may be a counterbalanced type forklift or any other type of forklift. Also, in this embodiment, the forklift 200 is a manned forklift operated by an operator, but it may be an unmanned forklift capable of autonomous driving.
[0046] The forklift 200 comprises a body 201. The front of the body 201 is provided with a pair of left and right straddle legs 202 and a load handling device 203. The load handling device 203 comprises a mast 204 that is movable in the front-rear direction along the straddle legs 202 and forks 205 that are movable up and down on the mast 204. The load handling device 203 may have other attachments in addition to, or in place of, the forks 205.
[0047] A driver's seat 206 for the operator to sit in while standing is provided on the rear right side of the vehicle body 201. An operating unit 207, including an accelerator lever and various operating levers for the cargo handling device 203, is provided in front of the driver's seat 206. A steering wheel 208 for steering is provided on the left side of the driver's seat 206. A head guard 209 is provided above the driver's seat 206. A vehicle charging outlet 210 is provided on the side wall of the driver's seat 206. Note that the vehicle charging outlet 210 is not limited to this position and can be provided at any other location.
[0048] Inside the vehicle body 201 are an onboard charger 220 and a battery 230. In this embodiment, the battery 230 is a lead-acid battery, but it may also be a lithium-ion battery or another type of battery.
[0049] A warning unit 240 is provided between the control unit 207 and the steering wheel 208. The warning unit 240 includes a touch panel configured for operator operation and a speaker for audio output. The configuration of the warning unit 240 can be modified as appropriate, as long as it can provide warnings to the operator by visual and / or auditory means. For example, the warning unit 240 may be a buzzer that outputs a warning sound.
[0050] As shown in Figure 4(A), the vehicle charging outlet 210 includes outlet terminals 211R, 211S, and 211T that correspond to three phases, a first outlet-side signal terminal 211R', a second outlet-side signal terminal 211R'', a ground terminal 211E, an outlet-side terminal block 212, a light guide 213 which is an outlet-side connection part, and a plurality (six in this embodiment) of LEDs 214.
[0051] The outlet terminals 211R, 211S, and 211T are terminals corresponding to three phases (R phase, S phase, and T phase), and the configuration of each terminal is the same. Outlet terminal 211R has a shape that allows one end to be inserted into the recess of plug terminal 111R, and the R phase wire R is connected to the other end. Outlet terminal 211S has a shape that allows one end to be inserted into the recess of plug terminal 111S, and the S phase wire S is connected to the other end. Outlet terminal 211T has a shape that allows one end to be inserted into the recess of plug terminal 111T, and the T phase wire T is connected to the other end. The wires R, S, and T are connected to the mounted charger 220.
[0052] The first outlet-side signal terminal 211R' has a shape on one end that allows it to be inserted into the recess of the first plug-side signal terminal 111R', and a wire R' is connected to the other end. The wire R' is connected to the mounted charger 220. The length of the part of the first outlet-side signal terminal 211R' that is inserted into the recess (first insertion part) is the same as the length of the insertion part of the outlet terminals 211R, 211S, and 211T, but its diameter is smaller than the diameter of the outlet terminals 211R, 211S, and 211T.
[0053] The second outlet-side signal terminal 211R'' has a shape on one end that can be inserted into the recess of the second plug-side signal terminal 111R'', and a wire R'' is connected to the other end. The wire R'' is connected to the mounted charger 220. The length of the part of the second outlet-side signal terminal 211R'' that is inserted into the recess (second insertion part) is the same as the length of the insertion part of outlet terminals 211R, 211S, and 211T, but its diameter is smaller than the diameter of outlet terminals 211R, 211S, and 211T.
[0054] The ground terminal 211E has a shape on one end that allows it to be inserted into the recess of the ground terminal 111E, and the ground wire E is connected to the other end.
[0055] The outlet-side terminal block 212 is made of resin (for example, epoxy resin) and holds outlet terminals 211R, 211S, 211T, the first outlet-side signal terminal 211R', the second outlet-side signal terminal 211R'', and the ground terminal 211E. On the rear side of the outlet-side terminal block 212 (the side facing the vehicle body 201), a wall portion (not shown) may be provided to ensure creepage distance between each terminal of the outlet terminals 211R, 211S, 211T, and the ground terminal 211E and to ensure reliable insulation.
[0056] The light guide 213 is an annular member provided on the front side (external side of the vehicle body 201) of the outlet-side terminal block 212 so as to surround the outlet terminals 211R, 211S, 211T, the first outlet-side signal terminal 211R', the second outlet-side signal terminal 211R'', and the ground terminal 211E. The light guide 213 is an outlet-side connection part configured to accommodate the plug-side connection part 113, and its inner circumferential surface is provided with a receiving part (not shown) for receiving the lock pin 115A protruding from the outer circumferential surface of the plug-side connection part 113.
[0057] LED214 corresponds to the "light-emitting part" of the present invention and causes visible light to enter the light guide 213. In this embodiment, six LED214 are arranged on the outlet-side terminal block 212 so that visible light enters from the rear end of the light guide 213. The six LED214 are connected in series and are arranged at predetermined intervals in the circumferential direction of the light guide 213, as shown in the front view of the light guide 213 in Figure 4(B). The number and arrangement of LED214 can be changed as appropriate. A wire L is connected to the LED214, and a drive current is supplied via the wire L.
[0058] The inner circumferential surface of the light guide 213 has a first region 213A in which irregularities are formed (for example, roughened) along the axial direction (front-to-back direction), and a second region in which no irregularities are formed (for example, not roughened). The area of the inner circumferential surface other than the first region 213A is the second region. Six first regions 213A are formed corresponding to the locations where the LEDs 214 are placed. The first region 213A and the second region are formed alternately in the circumferential direction of the light guide 213. In this embodiment, the first region 213A is formed on the inner circumferential surface of the light guide 213, but the first region 213A may also be formed on the outer circumferential surface of the light guide 213. Furthermore, the range of the first region 213A can be changed as appropriate.
[0059] Visible light from the LED 214, incident from the rear end of the light guide 213, propagates through the inside of the light guide 213 while undergoing total internal reflection, and is scattered in the first region 213A. This scattered light is emitted from the region of the outer surface opposite the first region 213A. Therefore, on the outer surface of the light guide 213, the region opposite the first region 213A (the light-emitting region) is relatively brighter than the region opposite the second region.
[0060] Furthermore, the configuration of the light guide 213 can be modified as appropriate, provided that the operator can confirm the emission of light from the light guide 213 even when located away from the vehicle body 201. For example, the light guide 213 does not need to include the first region 213A and the second region described above. For example, since the LED 214 is directional, if an annular transparent resin plate is used as the light guide 213 and the LED 214 is illuminated at the rear end of the transparent resin plate, the part of the transparent resin plate located in front of the LED 214 can be illuminated relatively brighter than other parts. The transparent resin plate described above is simply manufactured by resin molding, and does not need to undergo any surface roughening or processing of the total reflectivity surface (e.g., polishing or coating).
[0061] Figure 5 shows the circuit diagram of the onboard charger 220. The onboard charger 220 comprises terminals T1 to T8, a power conversion unit 220A, and a control unit 220B.
[0062] Terminals T1 to T3 are AC input terminals. Terminal T1 is connected to outlet terminal 211R via R-phase wire R. Terminal T2 is connected to outlet terminal 211S via S-phase wire S. Terminal T3 is connected to outlet terminal 211T via T-phase wire T. Terminals T4 and T5 are DC output terminals. Terminal T4 is connected to the positive terminal of battery 230, and terminal T5 is connected to the negative terminal of battery 230. Terminals T6 to T8 are DC terminals. Terminal T6 is connected to the second outlet side signal terminal 211R'' via wire R''. Terminal T7 is connected to the first outlet side signal terminal 211R' via wire R'. Terminal T8 is connected to LED 214 via wire L.
[0063] The power conversion unit 220A includes a switch circuit 221, a transformer 222, and a rectifier circuit 223. The control unit 220B is composed of, for example, a microcontroller and includes a determination unit 224, an AC connection detection unit 225, and a switch control unit 226.
[0064] The switch circuit 221 is located on the primary side of the transformer 222 and supplies AC power to the transformer 222 when charging, and cuts off the supply of AC power to the transformer 222 when it is not charging or in the event of an abnormality.
[0065] The switch circuit 221 consists of a magnetic switch. The magnetic switch comprises three switch units 221R, 221S, and 221T that switch between an on state and an off state, and a coil unit MC. The switch units 221R, 221S, and 221T are interposed in the AC power lines of the corresponding phases. The coil unit MC is interposed in the signal line L1 (power line), and when current flows through the signal line L1, it turns on the switch units 221R, 221S, and 221T, and when no current flows through the signal line L1, it turns off the switch units 221R, 221S, and 221T. When the switch units 221R, 221S, and 221T are in the off state, the supply of AC power to the transformer 222 is cut off.
[0066] The switch circuit 221 may include a thermal relay. The thermal relay comprises, for example, three heat elements and relay contacts. The three heat elements are connected in series with three switch units 221R, 221S, and 221T, and the relay contacts are connected in series with the coil unit MC. When the heat elements detect a predetermined overcurrent, the relay contacts are open, and the supply of current to the coil unit MC is interrupted. When the heat elements do not detect a predetermined overcurrent, the relay contacts are closed, and the supply of current to the coil unit MC is not interrupted.
[0067] The transformer 222 comprises a primary coil and a secondary coil (not shown). The primary coil is connected to a switch circuit 221, and the secondary coil is connected to a rectifier circuit 223. The transformer 222 transforms (for example, steps down) the AC power input to the primary coil and outputs it from the secondary coil.
[0068] The rectifier circuit 223 rectifies AC to DC. In this embodiment, the rectifier circuit 223 is a three-phase bridge diode in which six diodes are connected in a bridge configuration. A smoothing capacitor may be provided after the three-phase bridge diode. The high-potential side (positive side) output terminal of the rectifier circuit 223 is connected to terminal T4, and the low-potential side (negative side) output terminal of the rectifier circuit 223 is connected to terminal T5.
[0069] The determination unit 224 is connected to the second outlet side signal terminal 211R'' via signal line L3 (wire) and wire R'', and is also connected to the first outlet side signal terminal 211R' via signal line L4 (wire) and wire R'. The determination unit 224 determines whether the voltage path 118 of the charging plug 110 is conducting or not, based on the voltage between the first outlet side signal terminal 211R' and the second outlet side signal terminal 211R''. This determination is performed at any arbitrary interval.
[0070] For example, in the determination unit 224, a power supply (e.g., a 5V DC power supply) is connected to the signal line L3 via a pull-up resistor, and the signal line L4 is connected to ground (GND). When the voltage path 118 is conducting, the voltage at terminal T6 connected to the signal line L3 becomes the ground voltage (e.g., 0V), so the determination unit 224 can determine that the voltage path 118 is conducting. On the other hand, when the voltage path 118 is not conducting, the voltage at terminal T6 becomes the power supply voltage (e.g., 5V), so the determination unit 224 can determine that the voltage path 118 is not conducting.
[0071] The configuration using the pull-up resistor described above is just one example. The determination unit 224 can be modified as appropriate, as long as it can determine whether the voltage path 118 is conducting or not based on the voltage between the first outlet side signal terminal 211R' and the second outlet side signal terminal 211R''.
[0072] The determination unit 224 is connected to the LED 214 via the signal line L5 (electric wire) and the electric wire L. If the determination unit 224 determines that the voltage path 118 is in a non-conductive state, it supplies a drive current to the LED 214, causing the LED 214 to emit light (turn on) and direct visible light into the light guide 213. The determination unit 224 may supply a drive current so that the LED 214 is always lit, or it may supply a drive current so that the LED 214 lights up (flashes) at predetermined time intervals. On the other hand, if the determination unit 224 determines that the voltage path 118 is in a conductive state, it does not supply a drive current to the LED 214. In this case, the LED 214 remains off.
[0073] The AC connection detection unit 225 is connected to the wire R via the signal line L2 (wire) and detects the AC voltage applied to the outlet terminal 211R. The AC connection detection unit 225 only needs to be able to detect the AC voltage applied to the outlet terminals 211R, 211S, and 211T, so it may also detect the AC voltage applied to the outlet terminal 211S by changing the connection destination of the signal line L2, or it may detect the AC voltage applied to the outlet terminal 211S.
[0074] The switch control unit 226 controls the on and off states of the switch circuit 221. Specifically, the switch control unit 226 controls the on and off states of the switch units 221R, 221S, and 221T by controlling the current supply to the coil unit MC.
[0075] In this embodiment, when the determination unit 224 determines that the voltage path 118 is in a conductive state, and the AC connection detection unit 225 detects an AC voltage, the operator operates the charging start switch (charging start button) provided on the vehicle body 201. The switch control unit 226 then supplies current to the coil unit MC and turns on the switch units 221R, 221S, and 221T. The switch control unit 226 monitors the voltage between terminals T4 and T5 and causes the power conversion unit 220A to charge the battery 230. When the voltage between terminals T4 and T5 reaches a predetermined voltage value (for example, the voltage value when the battery 230 is fully charged), the switch control unit 226 stops supplying current to the coil unit MC and turns off the switch units 221R, 221S, and 221T, thereby ending the charging of the battery 230.
[0076] On the other hand, if the determination unit 224 determines that the voltage path 118 is in a non-conductive state during charging, or if the AC connection detection unit 225 no longer detects AC voltage during charging, the switch control unit 226 stops supplying current to the coil unit MC and turns off the switches 221R, 221S, and 221T. This cuts off the supply of AC power to the transformer 222, and the charging of the battery 230 automatically stops. Also, if the determination unit 224 determines that the voltage path 118 is in a non-conductive state before charging starts, or if the AC connection detection unit 225 does not detect AC voltage before charging starts, the switch control unit 226 does not supply current to the coil unit MC and keeps the switches 221R, 221S, and 221T off, even if the charging start switch (charging start button) is operated by the operator. As a result, the supply of AC power to the transformer 222 does not start, and the charging of the battery 230 does not start.
[0077] If the determination unit 224 determines that the voltage path 118 is in a non-conductive state, it means, as described above, that the locking mechanism is in the unlocked state, the charging plug 110 is not fully inserted, or that abnormal overheating has occurred at any of the plug terminals 111R, 111S, or 111T. In these cases, charging will stop automatically (if charging has not yet started, charging will not start). In other words, charging of the battery 230 is prohibited.
[0078] If the determination unit 224 determines that the voltage path 118 is in a non-conductive state, it may illuminate the LED 214 and issue a warning to the warning unit 240. This allows the operator to know that the locking mechanism is in an unlocked state, that the charging plug 110 is not fully inserted, or that abnormal overheating has occurred at any of the plug terminals 111R, 111S, or 111T.
[0079] As described above, with the transport system 1 according to this embodiment, the operator can detect the occurrence of abnormal overheating or phenomena that could lead to abnormal overheating at an early stage. In particular, in this embodiment, by illuminating at least the light guide 213, the operator can detect the occurrence of abnormal overheating or phenomena that could lead to abnormal overheating even when they are at a distance from the vehicle body 201, i.e., when viewed from afar. Furthermore, by making the cover body 114 of the charging plug 110 a transparent material (it can also be milky white), the cover body 114 can also be illuminated, thereby widening the light emission range.
[0080] In the transport system 1 according to this embodiment, charging is stopped (charging is not started) when the locking mechanism is unlocked, so for example, when the charging plug 110 is pulled out during charging, sparks at the contact point between the vehicle charging outlet 210 and the charging plug 110 can be suppressed. Also, in the transport system 1 according to this embodiment, charging is stopped (charging is not started) when the charging plug 110 is not fully inserted, so for example, abnormal overheating caused by insufficient contact between the vehicle charging outlet 210 and the charging plug 110 can be suppressed. Furthermore, in the transport system 1 according to this embodiment, charging is stopped (charging is not started) when abnormal overheating occurs at any of the plug terminals 111R, 111S, or 111T by the thermal fuses 117R, 117S, and 117T, so the progression of such abnormal overheating can be suppressed.
[0081] According to the transport system 1 of this embodiment, the charging plug 110 side can be handled by a single voltage path 118 by connecting the first switch SA, the second switch SB, and the thermal fuses 117R, 117S, and 117T in series. Furthermore, the three-phase compatible thermal fuses 117R, 117S, and 117T can handle abnormal overheating that occurs at the plug terminals 111R, 111S, and 111T of each phase.
[0082] In this embodiment, the thermal fuses 117R, 117S, and 117T are connected to the plug terminals 111R, 111S, and 111T in a heat-conductive manner via metal terminals 116R, 116S, and 116T made of a metal with high thermal conductivity (for example, copper). Therefore, in the event of abnormal overheating, heat is quickly transferred to the thermal fuses 117R, 117S, and 117T. Moreover, since the thermal fuses 117R, 117S, and 117T are positioned inside the cylinders of the metal terminals 116R, 116S, and 116T, heat is transferred to the thermal fuses 117R, 117S, and 117T from all directions. As a result, the performance (operation) of the thermal fuses 117R, 117S, and 117T can be stabilized and accelerated. Furthermore, by using the metal terminals 116R, 116S, and 116T, space can be saved, and the size of the charging plug 110 can be avoided. The metal terminals 116R, 116S, and 116T can be fastened with screws 119, which can improve work efficiency.
[0083] [Differentiation] Figure 6(A) shows a modified charging plug 110', and Figure 6(B) shows a modified vehicle charging outlet 210' corresponding to the charging plug 110'. The transport system 1 according to the above embodiment may be equipped with a charging plug 110' and a vehicle charging outlet 210' instead of the charging plug 110 and the vehicle charging outlet 210.
[0084] The charging plug 110' has the same configuration as the charging plug 110 of the above embodiment, except that it does not have a second switch SB. In the charging plug 110', even when not fully inserted, the voltage path 118 is conductive as long as the locking mechanism is in the locked state (first switch SA is ON) and the thermal fuses 117R, 117S, and 117T have not melted (activated).
[0085] The vehicle charging outlet 210' has the same configuration as the vehicle charging outlet 210 of the above embodiment, except that the length of the first insertion part of the first outlet-side signal terminal 211R' is shorter than the length of the insertion parts of outlet terminals 211R, 211S, and 211T, and the length of the second insertion part of the second outlet-side signal terminal 211R'' is shorter than the length of the insertion parts of outlet terminals 211R, 211S, and 211T. The lengths of the first insertion part and the second insertion part are the same.
[0086] The first insertion portion of the first outlet-side signal terminal 211R' and the second insertion portion of the second outlet-side signal terminal 211R'' are configured to be of a length that allows the AC connection detection unit 225 to detect AC voltage when the charging plug 110' is fully inserted, while preventing the AC connection detection unit 225 from detecting AC voltage when the charging plug 110' is not fully inserted. With this configuration, in a modified example, a charging plug 110' can be used in which the second switch SB is omitted from the charging plug 110.
[0087] In the modified configuration, the AC connection detection unit 225 is unable to detect the AC voltage when the charging plug 110' is not fully inserted. Therefore, as with the above embodiment, it is possible to suppress abnormal overheating caused by insufficient contact between the vehicle charging outlet 210' and the charging plug 110'. In the modified configuration, the configuration is the same as the above embodiment except for the charging plug 110' and the vehicle charging outlet 210', so the modified configuration has the same effects as the above embodiment.
[0088] [Other variations] Although embodiments of the transport system according to the present invention have been described above, the present invention is not limited to the above embodiments.
[0089] The transport system according to the present invention includes a battery, a mounted charger for charging the battery, a battery vehicle equipped with a vehicle charging outlet connected to the mounted charger, and a charging plug with a cable configured to be connectable to the vehicle charging outlet, wherein the charging plug with a cable comprises a power cable for connecting to an external power source and a charging plug configured to be matesable to the vehicle charging outlet, the charging plug comprises a plug terminal for supplying power from an external power source to the battery vehicle, a first plug-side signal terminal and a second plug-side signal terminal electrically insulated from the plug terminal, a voltage path connecting the first plug-side signal terminal and the second plug-side signal terminal, and a device interposed in the voltage path that switches the voltage path between a conductive state and a non-conductive state. The vehicle charging outlet includes an opening / closing section for switching between the two states, and comprises a terminal section, an outlet-side terminal block for holding the terminal section, an annular light guide provided around the terminal section and on the front side of the outlet-side terminal block, and a light source section for injecting visible light into the light guide. The terminal section includes an outlet terminal that contacts a plug terminal, a first outlet-side signal terminal that contacts a first plug-side signal terminal, and a second outlet-side signal terminal that contacts a second plug-side signal terminal. The mounted charger determines whether the voltage path is conductive or non-conductive based on the voltage between the first outlet-side signal terminal and the second outlet-side signal terminal, and if it determines that it is non-conductive, it prohibits charging and injects visible light into the light guide from the light source section. The configuration can be changed as appropriate.
[0090] In the above embodiment, the voltage path 118 is interposed with a first switch SA, a second switch SB, and thermal fuses 117R, 117S, and 117T as the switching unit of the present invention. However, the switching unit of the present invention only needs to include at least one of the first switch SA, the second switch SB, and the thermal fuses 117R, 117S, and 117T.
[0091] In the above embodiment, the thermal fuses 117R, 117S, and 117T are connected to the plug terminals 111R, 111S, and 111T via metal terminals 116R, 116S, and 116T. However, they may also be connected to the plug terminals 111R, 111S, and 111T by a heat-conductive method other than the metal terminals 116R, 116S, and 116T, or they may be directly placed on the plug terminals 111R, 111S, and 111T. Furthermore, when using metal terminals 116R, 116S, and 116T, their shape and other characteristics may be appropriately modified.
[0092] In the above embodiment, the light source is configured with an LED 214, but the light source of the present invention can be configured with any light-emitting means other than an LED 214.
[0093] In the above embodiment, a forklift 200 is given as an example of a battery-powered vehicle, but the battery-powered vehicle may be a material handling vehicle other than a forklift (for example, a transport vehicle, construction machinery, or agricultural machinery). [Explanation of Symbols]
[0094] 1. Conveying System 100 Charging Plugs with Cables 110 Charging Plug 111R, 111S, 111T plug terminals 111R' Signal terminal on the first plug side 111R'' Second plug side signal terminal 111E Ground terminal 112 Plug-side terminal block 113 Plug-side connection 114 Cover body 115A Locking Pin 115B Unlock button 116R, 116S, 116T metal terminal 117R, 117S, 117T Thermal Fuse 118 Voltage Path 120 Power Cable 200 forklifts 210 Vehicle charging outlets 211R, 211S, 211T outlet terminals 211R' Signal terminal on the first outlet side 211R'' Second outlet side signal terminal 211E Ground terminal 212 Outlet-side terminal block 213 Light guide 214 LED 220 Onboard Charger 230 batteries 240 Warning section
Claims
1. A battery vehicle equipped with a battery, an onboard charger for charging the battery, and a vehicle charging outlet connected to the onboard charger, A charging plug with a cable configured to be connectable to the aforementioned vehicle charging outlet, A transport system including, The aforementioned charging plug with cable is A power cable for connecting to an external power supply, The vehicle comprises a charging plug configured to be detachable from the vehicle charging outlet, The aforementioned charging plug is A plug terminal for supplying power from the external power source to the battery vehicle, A first plug-side signal terminal and a second plug-side signal terminal are electrically isolated from the aforementioned plug terminals, A voltage path connecting the first plug-side signal terminal and the second plug-side signal terminal, The system includes an on / off switch interposed in the voltage path, which switches the voltage path between a conductive state and a non-conductive state, The aforementioned vehicle charging outlet is Terminal section and A terminal block on the outlet side that holds the aforementioned terminal portion, An annular light guide is provided around the terminal portion and on the front side of the outlet-side terminal block, The light source unit comprises a light source unit that causes visible light to be incident on the light guide, The aforementioned terminal portion is The outlet terminal that contacts the plug terminal, The first plug-side signal terminal and the first outlet-side signal terminal that contact the first plug-side signal terminal, It comprises a second outlet-side signal terminal that contacts the second plug-side signal terminal, The mounted charger determines whether the voltage path is in a conductive or non-conductive state based on the voltage between the first outlet-side signal terminal and the second outlet-side signal terminal, and if it determines that the state is non-conductive, it prohibits charging and causes visible light to be incident on the light guide from the light source unit. A transport system characterized by the following features.
2. The light source unit receives the visible light from the rear end of the light guide, The light guide comprises a first region on its inner or outer surface where irregularities are formed along the axial direction, and a second region where such irregularities are not formed. The first and second regions are alternately located in the circumferential direction of the light guide. The transport system according to feature 1.
3. The charging plug is further equipped with a locking mechanism that prevents the charging plug from being pulled out of the vehicle charging outlet when it is locked. The opening / closing mechanism includes a first switch that is ON when the lock is engaged and OFF when the lock is released. The transport system according to feature 1.
4. The opening / closing unit includes a second switch that turns on when the amount of the charging plug inserted into the vehicle charging outlet is equal to or greater than a predetermined threshold, and turns off when the amount of insertion is less than the threshold. The transport system according to feature 1.
5. The switching mechanism is connected to the plug terminals in a heat-conductive manner and includes a thermal fuse. The transport system according to feature 1.
6. The thermal fuse is connected to the outlet terminal via a metal terminal, The aforementioned metal terminals are The connection part connected to the aforementioned outlet terminal, It comprises a cylindrical section in which the thermal fuse is placed, The arrangement portion is facing the end of the plug terminal. The transport system according to feature 5.
7. The first insertion portion of the first outlet-side signal terminal, which is inserted into the first plug-side signal terminal, is shorter than the insertion portion of the outlet terminal, which is inserted into the plug terminal. The second insertion portion of the second outlet-side signal terminal, which is inserted into the second plug-side signal terminal, is shorter than the insertion portion of the outlet terminal. The transport system according to feature 1.
8. The aforementioned onboard charger is A power conversion unit that converts AC power input from the vehicle charging outlet via AC power lines into DC power and outputs the DC power to the battery, The system comprises a control unit for controlling the power conversion unit, The power conversion unit is Transformer and A switch circuit provided on the primary side of the transformer, which supplies AC power to the transformer when it is ON and cuts off the supply of AC power to the transformer when it is OFF, The transformer comprises a rectifier circuit provided on the secondary side, The control unit, A determination unit that detects the voltage between the first outlet-side signal terminal and the second outlet-side signal terminal and determines whether it is in a conductive state or a non-conductive state, An AC connection detection unit for detecting the AC voltage applied to the outlet terminal of the vehicle charging outlet, The switch circuit comprises a switch control unit that controls the ON state and the OFF state of the switch circuit, The switch control unit, when the determination unit determines that the circuit is in a non-conductive state, or when the AC connection detection unit does not detect the AC voltage, turns the switch circuit to the off state. When the determination unit determines that the circuit is not conductive, it causes the light source to emit visible light into the light guide. The transport system according to feature 1.
Citation Information
Patent Citations
Safety device for recharge of battery forklift
JP2002027604A
Charger
JP2013106391A