Forklift Having An Integrated Battery Box
20190322192 ยท 2019-10-24
Inventors
- Jiang Zhongwei (Hangzhou, CN)
- Ma Qichen (Hangzhou, CN)
- Wang Zheng (Hangzhou, CN)
- Li Yang (Hangzhou, CN)
- Yu Xiaoxian (Hangzhou, CN)
Cpc classification
B60K7/00
PERFORMING OPERATIONS; TRANSPORTING
B60R16/033
PERFORMING OPERATIONS; TRANSPORTING
B60L53/80
PERFORMING OPERATIONS; TRANSPORTING
B60K2001/0494
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/70
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
B60Y2200/15
PERFORMING OPERATIONS; TRANSPORTING
B60K2001/0422
PERFORMING OPERATIONS; TRANSPORTING
B60K1/04
PERFORMING OPERATIONS; TRANSPORTING
B60L50/64
PERFORMING OPERATIONS; TRANSPORTING
B60K2001/0438
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/7072
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
International classification
B60L53/80
PERFORMING OPERATIONS; TRANSPORTING
B60R16/033
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A forklift includes an integrated battery box. The forklift includes a forklift body having a mounting chamber with an opening to a side of the forklift body. The battery box is loaded into the mounting chamber from the side opening. After the battery box is loaded into the mounting chamber, a mechanical connection between the battery box and the forklift is realized by the locking mechanism, and a circuit connection between the battery box and an electric control mechanism of the forklift is realized by a plug-in device.
Claims
1. A forklift having an integrated battery box, comprising: a forklift body including a mounting chamber having an opening configured to receive a battery box via plug-in and pull-out of the battery box on a left or right side of the mounting chamber, the battery box enclosing a lithium battery; a mechanical connection between the battery box and the forklift body via a locking mechanism that is moved to a locking position after the battery box is loaded into the mounting chamber; a circuit connection between the battery box and an electric control mechanism of the forklift by insertion of a plug-in device into a socket in the battery box; and further comprising power supply contacts and electric control contacts, with the power supply contacts and the electric control contacts being located in the socket in battery box.
2. The integrated battery box for a forklift in accordance with claim 1, wherein the battery box has a body that is provided with an external power supply socket, with the position of the power supply socket being fixed on the battery box.
3. The integrated battery box for a forklift in accordance with claim 1, wherein an electric interface is fixed on the forklift body, and at least positive and negative contacts are arranged in the electric interface, which are connected in series with the electric control mechanism of the forklift.
4. The integrated battery box for a forklift in accordance with claim 1, wherein a sliding guide device is arranged between the battery box and the mounting chamber.
5. The integrated battery box for a forklift in accordance with claim 4, wherein the sliding guide device further comprises a plurality of rollers arranged at a bottom of the mounting chamber.
6. The integrated battery box for a forklift in accordance with claim 5, wherein the plurality of rollers are distributed on the moving route of the battery box relative to the mounting chamber and when the battery box is loaded into the mounting chamber the bottom of the battery box contacts a rolling plane of the rollers.
7. The integrated battery box for a forklift in accordance with claim 1, wherein a locking mechanism includes a locking bolt arranged on the battery box and a corresponding slot arranged on the forklift body for inserting the locking bolt, and wherein the locking bolt slides up and down relative to the slot to lock or release the locking bolt from the slot.
8. The integrated battery box for a forklift in accordance with claim 7, wherein the locking mechanism also includes a positioning component that keeps the locking bolt in the slot or out of the slot.
9. The integrated battery box for a forklift in accordance with claim 8, wherein the positioning component includes a positioning post connected to the locking bolt and a positioning slot is arranged on the battery box and receives the positioning, post after the locking bolt has been :raised and removed from a slot in the forklift body.
10. The integrated battery box for a forklift in accordance with claim 1, wherein a step is defined in the batten box.
Description
DESCRIPTION OF THE DRAWINGS
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027] A list of structures and features identified within the application drawings and discussed herein includes: forklift body 1, partition 11, mounting chamber 12, rollers 121, slot 122, upper weight 13, lower weight 14, rear panel 15, seat bracket 16, lifting mechanism 2, lifting frame 21, fork 22, safety cage 3, cockpit 4, seat 41, control mechanism 42, steering wheel 421, driving mechanism 5, driving wheel 51, driving gearbox 52, driving motor 53, electromagnetic brake 54, steering mechanism 6, steering bridge 61, steering wheel 62, steering potentiometer 63, EPS motor 64, EPS controller 65, electronic control mechanism 7, lithium battery box 71, step 711, locking bolt 712, socket 713, copper sleeve 714, positioning post 715, handle 716, controller 72, plug-in device 73, power supply contacts 731, electric control contacts 732, connecting cable 74, contactor power switch 75, hydraulic mechanism 8, tank 81, solenoid valve 82, gear pump 83, pump motor 84, tank filling port 85, hydraulic supply system 86.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0028] An embodiment of a forklift is described in detail below, and an example of the embodiment is shown in the drawings in which identical or similar labels throughout represent identical or similar elements, or elements with the same or similar functions. The following embodiments described with reference to the drawings are illustrative and are intended to be used to explain, rather than to limit the disclosure.
[0029] A forklift shown in
[0030] This example forklift, which also may be referred to as a lithium battery forklift, is driven by two front wheels and steered by two rear wheels that are located side-by-side. A three-fulcrum forklift is a forklift with three supporting points to support the weight of the whole forklift. The three supporting points include two supporting points composed of two spaced apart front wheels and the one supporting point which includes the side-by-side rear wheels located laterally in the middle of the rear of the forklift. The three-pivot forklift has similar stability relative to a four-pivot forklift truck, but the steering of the three-pivot forklift truck is more flexible, in the sense of an ability to provide a small turning radius, especially when turning 360 degrees in a small space. Also, the dual front wheel drive provides strong power, traction and climbing ability.
[0031] As shown in
[0032] As shown in
[0033] The hydraulic mechanism 8 is divided into a lifting hydraulic circuit and a steering hydraulic circuit. The lifting hydraulic circuit includes hydraulic fluid tank 81, solenoid valves 82, gear pump 83 and pump motor 84. The lifting hydraulic circuit in hydraulic mechanism 8 provides power for the lifting mechanism 2. Pump motor 84 is connected with gear pump 83, gear pump 83 is connected with hydraulic fluid tank 81 through a conduit, and gear pump 83 is connected with lifting mechanism 2 through a solenoid valve 82. Pump motor 84 drives the gear pump 83. Gear pump 83 takes hydraulic fluid from the tank 81 and controls the lifting mechanism through multiple solenoid valves 82. The steering hydraulic circuit provides steering power for steering mechanism 6. The steering hydraulic circuit includes a hydraulic supply system 86 connected with the hydraulic fluid tank 81. The hydraulic supply system 86 takes hydraulic fluid from the hydraulic fluid tank 81 and connects the conduit to the left and right end of the steering cylinder to drive the steering bridge 61 to rotate and steer the forklift. The steering bridge 61 is driven by the hydraulic fluid pressure of the hydraulic supply system 86. Each part of the lifting cylinder conduit is centered on the left or right side of the middle of the forklift body 1. The hydraulic supply system connected to the steering hydraulic circuit is located on the rear side of the forklift body near the steering mechanism. The hydraulic supply system is connected to the hydraulic fluid tank in the lifting cylinder hydraulic fluid line through the conduit to supply hydraulic fluid. The hydraulic mechanism 8 also includes a fluid tank filling port 85, which is independent of the lifting cylinder conduit and extends to the outside of the forklift vehicle, facilitating the filling through the fluid tank filling port 85.
[0034] The hydraulic supply system 86 is connected with the steering wheel 421 of the control mechanism through an electronic power steering (EPS) motor 64 and EPS controller 65. The EPS motor 64 is installed on the rotating axis of the steering wheel 421, and the steering wheel 421 rotates while driving the EPS motor 64. The EPS motor 64 in this example, for instance is a stepper motor, and the EPS controller 65 is installed on the hydraulic supply system 86. The EPS controller 65 is connected with the hydraulic supply system 86, and the steering mechanism 6. A signal is received by the EPS motor 64, and pressure of the hydraulic fluid is diverted into the left chamber or the right chamber of the steering cylinder according to the signal to control the steering. In this example, the hydraulic pump motor 84 and hydraulic supply system 86 control the lifting mechanism 2 and steering mechanism 6 independently. Compared with a traditional mechanical steering forklift, the pump motor 84 has advantages including, that the pump motor 84 does not need to work constantly, which can effectively reduce energy consumption and noise, and steering wheel 421 and steering mechanism 6 are connected by electric steering, so steering wheel 421 requires less steering effort.
[0035] The electronic control mechanism 7 connects the control mechanism 42, the hydraulic mechanism 8, the steering mechanism 6, the driving mechanism 5 and the lifting mechanism 2 to control the starting and stopping of the forklift body, the forward and backward movement, the steering angle and the lifting of the fork. The electronic control mechanism 7 includes a battery box 71 housing a lithium battery and a controller 72. The lithium battery box 71 supplies power for electrical equipment such as electric motors on the forklift. The controller 72 receives signals from signal acquisition devices such as steering potentiometers and controls on the motors of the forklift to perform corresponding actions. In order to simplify the control of the motor, the electronic control mechanism sets up several controllers to control the driving motor 53 in the driving mechanism and the pump motor 84 in the hydraulic system respectively. As seen in
[0036] The lithium battery box 71 in the electronic control mechanism 7 is arranged side-by-side in the middle of the forklift body 1 with the lifting hydraulic circuit in the hydraulic mechanism, and the mounting positions of the two are separated by a separator plate 11. The close mounting of the components on the forklift body 1 reduces the volume of the entire vehicle, and the side of the lifting hydraulic circuit path in the above hydraulic mechanism is arranged on the forklift body 1, and an upper side plate may be opened to expose all of the components in the lifting hydraulic circuit path, which is conducive to troubleshooting.
[0037] As shown in
[0038] During the process of loading or removing the battery box 71, the bottom of the battery box 71 contacts a rolling plane of the rollers 121 to reduce the friction between the battery box 71 and the mounting chamber. In addition, the mounting chamber is provided with a guide rail for the battery box 71. After the battery box 71 is loaded into the mounting chamber 12, on the one hand, the mechanical connection between the lithium battery box 71 and the forklift body 1 is realized by a locking mechanism, on the other hand, the circuit connection between the battery box and the electronic control mechanism 7 is realized by a plug-in device 73.
[0039] As shown in
[0040] As shown in
[0041] The plug-in device 73 fits in a forklift body socket. The plug-in device 73 is equipped with power supply contacts 731 and electric control contacts 732, which mate to power supply contacts and electric control contacts in a socket on the battery box 71. The power supply contacts 731 and electric control contacts 732 are conductively connected inside the plug-in device 73, and the insertion direction of plug-in of power supply contacts 731 and the electric control contacts 732 is the same. Because the battery box 71 is located in the forklift body 1, there are up and down dislocations or front and back dislocations between the power supply socket on the battery box 71 and the electrical interface on the forklift body 1 in the insertion direction of the plug-in device 73, and there are up and down dislocations or front and back dislocations between the corresponding electric control contacts 732 and the power supply contacts 731 in the insertion direction of the plug-in device 73, which is configured with a handle 716. The series connection of power supply contacts 731 and electric control contacts 732 forms a circuit between the battery box 71 and the controller 72, as well as the contactor power switch 75. The contactor power switch 75 controls the battery box 71 to supply power for the electric control mechanism of the forklift body 1.
[0042] The circuit connection between the battery box 71 and the controller 72 may be realized by setting a plug-in device 73 at one time, and a contactor power switch 75 is installed in the circuit to control the circuit opening and closing through the contactor power switch 75.
[0043] Because the cockpit position on the forklift body 1 is high, at least one step is needed to be set up so that the forklift driver can step up into the cockpit 4. As a preferred choice, step 711 is formed in the battery box 71 of the present embodiment. This advantageously results in no additional step being needed and keeps the structure simple.
[0044] In the forklift in the present embodiment, lithium batteries are used instead of traditional lead-acid batteries, and the lithium batteries are arranged on the forklift body 1 according to the above-described structure. The seat 41 is connected to a rear panel 15 of the forklift body 1 through a seat bracket 16. Because of the high height of the seat 41 atop the seat bracket 16, the mounting space between a lower seat portion and the upper end of the battery mounting chamber is larger than for prior art forklifts. Therefore, as shown in
[0045] It is preferable that the hydraulic supply system 86 of the hydraulic mechanism 8 in the present embodiment is fixed at the back of the seat support 16, so that the distance between the hydraulic supply system 86 and the steering mechanism 6 is small, which is beneficial to the neatness of the hydraulic conduit on the forklift. Also, the hydraulic fluid tank filling port 85 in the hydraulic mechanism is located at the back of the rear panel 15. The fluid tank filling port 85 is connected to the fluid tank through the conduit. The fluid tank filling port 85 is exposed at the outside of the forklift body 1, which is convenient for use in filling fluid tank. In the present embodiment, in order to expose the fuel tank filling opening to the outside of the vehicle, a gap for accommodating the fluid tank filling port 85 may be arranged on the lower counterweight 14.
[0046] It should be noted that the above embodiments are only representative examples of the forklift of the present disclosure which may have many different configurations. Any equivalent to or modification of the above embodiments according to the essence of the disclosure shall be considered to be within the scope of the disclosure.