Brake system of wire reel in reinforcing bar binding machine
11780621 · 2023-10-10
Assignee
Inventors
Cpc classification
B21F15/04
PERFORMING OPERATIONS; TRANSPORTING
B65B13/22
PERFORMING OPERATIONS; TRANSPORTING
B65H59/04
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65B13/22
PERFORMING OPERATIONS; TRANSPORTING
B21F15/04
PERFORMING OPERATIONS; TRANSPORTING
B65B13/02
PERFORMING OPERATIONS; TRANSPORTING
B65H59/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A reinforcing bar binding machine is provided with a feed means for feeding a wire from a wire reel rotatably mounted on a binding machine body, a braking means for braking a rotation of the wire reel, and a control means that starts a braking to the rotation of the wire reel by the braking means after the wire is fed to a predetermined amount by the feed means.
Claims
1. A reinforcing bar binding machine comprising: a feed device configured to feed out a wire from a wire reel rotatably mounted on a binding machine body in a feeding direction when the feed device is activated; a brake configured to brake a rotation of the wire reel in the feeding direction; and a controller configured to start braking the rotation of the wire reel in the feeding direction by the brake upon the wire is fed out to a predetermined amount by the feed device, and to deactivate the feed device to stop feeding the wire in the feeding direction when the wire is fed out to a predetermined length which is larger than the predetermined amount of feeding in the feeding direction.
2. A reinforcing bar binding machine in which a wire is fed from a wire reel rotatably mounted on a binding machine body, the fed wire is wound around reinforcing bars, and the wound wire is twisted to bind the reinforcing bars, the reinforcing bar binding machine comprising: a feed device configured to feed out the wire from the wire reel in a feeding direction when the feed device is activated; a brake configured to brake a rotation of the wire reel in the feeding direction; a counter configured to count a number of times of binding by which the fed wire is twisted to bind the reinforcing bars; a recording device configured to record the number of times of binding; and a controller configured to start braking the rotation of the wire reel in the feeding direction by the brake upon the wire is fed out to a predetermined amount by the feed device, and to deactivate the feed device to stop feeding the wire in the feeding direction when the wire is fed out to a predetermined length which is larger than the predetermined amount of feeding in the feeding direction only in a case where the number of times of binding read from the recording device is equal to or less than a predetermined number of times of binding.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF REFERENCE NUMERALS AND SIGNS
(16) 10: REINFORCING BAR BINDING MACHINE 11: BINDING MACHINE BODY 13: FEED GEARS (FEED MEANS) 14: FEED MOTOR (FEED MEANS) 16: TWISTING MOTOR 17: COVER (DUST-PROOFING MEANS) 21: ENGAGING PORTION OF WIRE REEL 24: REINFORCING BAR 30: STOPPER LEVER (BRAKING MEANS) 32: SOLENOID (BRAKING MEANS(DRIVING MEANS OF BREAKING MEANS)) 34: SHAFT (DRIVING PORTION) 36: TORSION COIL SPRING (BIASING MEANS) 50: CPU (CONTROL MEANS OR COUNTING MEANS) 52: MEMORY (RECORDING MEANS) 53: BATTERY (POWER SOURCE OF FEED MEANS) 57: VOLTAGE DETECTING CIRCUIT (VOLTAGE DETECTING MEANS) 60: BRAKE MOTOR (DRIVING MEANS) S: STOPPER DEVICE W: WIRE
DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS
(17) A brake mechanism of a wire reel in a reinforcing bar binding machine according to a first embodiment of the invention will be described with reference to
(18) (Schematic Configuration of Reinforcing Bar Binding Machine)
(19) As shown
(20) A guide 15 which guides the wire W (shown by a two-dot chain line in
(21) That is, the twisting hook is configured so as to rotate normally and advance to the looped wire W to twist the wire, and to rotate reversely after the twisting is ended, and retreat to its initial position. Additionally, the wire W which has been subjected to twisting processing is cut by a cutter (not shown) which interlocks with the twisting hook (not shown).
(22) (Configuration of Brake Mechanism)
(23) As shown in
(24) As shown in
(25) As shown in
(26) The shaft 34 which protrudes from the tubular portion 40A of the bracket 40 is inserted into a bearing 35, a hollow pin 38, a coil portion 36A of the spring 36, and the D-shaped cut hole 30A of the stopper lever 30. The stopper lever 30 or the like is prevented from slipping out of the shaft 34 by a stopper 39.
(27) The D-shaped cut portion 34A of the shaft 34 corresponds to the hole 30A of the stopper lever 30, and as the shaft 34 rotates, the stopper lever 30 rotates about the shaft 34. A locking portion 31 which engages an engaging portion 21 of the wire reel 20 is formed in a substantial L shape (refer to
(28) The solenoid 32, the shaft 34, and bracket 40 which are shown in
(29) As shown in
(30) That is, in the stopper device S, the link mechanism is interposed between the stopper lever 30, and the solenoid 32 which operates the stopper lever 30. Thus, time lag until the brake is actuated becomes larger than that of
(31) (Configuration Concerning Control System of Reinforcing Bar Binding Machine)
(32) The reinforcing bar binding machine 10, as shown in
(33) Programs which control various kinds of processing for the reinforcing bar binding machine 10 are recorded in the memory 52 that is a recording means. For example, the turn-on time or the like of the solenoid 32 is recorded in the memory 52. The sensor 54 is arranged so as to be capable of detecting the rotation of the feed gears 13. That is, a magnet which rotates together with the feed gears 13 is detected by a Hall IC that is the sensor 54. The sensor 54 detects that the feed gears 13 has half-rotated, and the CPU 50 determines whether or not the wire W has been fed by a predetermined length, for example, 80 cm per one rotation on the basis of a detection signal of the sensor 54 with the number of rotation of the feed gears 13.
(34) The battery 53 is a power source of the CPU 50, the solenoid 32, the twisting motor 16, the feed motor 14, and the like, and supplies electric power which starts the solenoid 32, the CPU 50, and the like. Additionally, the voltage detecting circuit 57 that is a voltage detecting means detects the voltage of the battery 53, and inputs to the CPU 50 detection value data that is this detection result. Also, the CPU 50 compares a power voltage of the battery 53 which is input detection value data with a reference voltage recorded in the memory 52. In addition, as for wiring lines of the battery 53, illustration of those other than the voltage detecting circuit 57 is omitted. This is to prevent complication in a case where a plurality of wiring lines is connected to respective electronic components, such as the CPU 50.
(35) The trigger SW 56 interlocks with the pulling of the trigger 18 shown in
(36) Additionally, the solenoid 32 makes the iron core 32 slide in a pulling-in direction from its initial position (position shown in
(37) (Operation of this Embodiment
(38) When the trigger 18 of the reinforcing bar binding machine 10 shown in
(39) Therefore, as shown in
(40) After the lapse of predetermined time, the solenoid 32 is turned off, and the stopper lever 30 rotates in the direction (counterclockwise direction) of the arrow of
(41) Thereafter, the twisting motor 16, i.e., the twisting hook is driven on the basis of the driving signal of the CPU 50, and the wire W is twisted and bound. In addition, the CPU 50 outputs the driving signal to the twisting motor 16 after the feed operation of the wire W is ended.
(42) Next, the processing concerning the aforementioned binding processing (the same as a binding mode) will be described with reference to the flow chart shown in
(43) (Binding Mode)
(44) In Step 100 shown in
(45) In Step 104, it is determined whether or not the number of rotation of the feed gears 13 shown in
(46) That is, as the rotation of the feed gears 13 is detected by the sensor 54 shown in
(47) In Step 108, it is determined whether or not the number of rotation of the feed gears 13 has become the reference value (for example, seventeen and half rotations). Here, the reference value is a reference number of rotation which is used to determine whether or not the feed gears 13 have a number of rotation at which they feed the wire W by a predetermined length. That is, it is determined in Step 108 whether or not the feed gears has half-rotated from the reference rotation (17 rotations) of Step 104.
(48) If Step 108 is positive, i.e. if the number of rotation of the feed gears 13 has reached the reference number of rotation, in Step 110, the CPU 50 stops the feed motor 14, and starts counting of clock in the timer 51 shown in
(49) In Step 112, the CPU 50 determines whether or not the counted value of the timer 51 has become the reference value (refer to
(50) In addition, if Step 112 is negative, the CPU waits for the counted value to become reference time. Here, the reason why braking is applied to the wire reel 20 for 0.1 second is because this time is braking release time required for reliably stopping the rotation of the wire reel 20 experimentally. In addition, this braking release time can be arbitrarily changed to 0.08 second, 0.12 second, or the like by change of the configuration of the link mechanism of the stopper device S.
(51) In Step S116, twisting processing is performed. The twisting processing is the processing of normally rotating the twisting motor 16, and twisting the wire W (refer to two-dot chain line of
(52) According to this embodiment, since braking of the rotation of the wire reel 20 is started by the stopper device S after the wire W is fed by a predetermined amount of feed (reference number of rotation of Step 104) before a predetermined length by the feed gears 13, the time lag when braking is applied to the wire reel 20 can be reduced, and braking performance improves.
(53) In addition, the processing concerning the power saving mode and braking timing change mode in the reinforcing bar binding machine 10 will be described below with reference to the flow chart shown in
(54) (Power Saving Mode)
(55) In Step 120 shown in
(56) In Step 126, it is determined whether or not the number of times of binding is equal to or less than a reference value. That is, the CPU 50 determines whether or not the reference value, for example, the counting value, is equal to or less than 40 times. If Step 126 is positive, i.e., if the counted value is equal to or less than 40 times, the CPU 50 performs braking processing in Step 128. This braking processing is respective processing of Step 104 to Step 114 shown in
(57) After braking processing of Step 128 is ended, the same processing as twisting processing (the same processing as Step 116 of
(58) On the other hand, the reason why braking processing is omitted if the counted value is 40 times or more because the diameter difference between the maximum winding diameter of the wire W and the diameter of the outer peripheries of the flanges 20A and 20B of the wire reel 20 is large, and thus, even when the wire reel 20 rotates by inertia, the wire W does not protrudes from the flanges 20A and 20B.
(59) After twisting processing of Step 130 is ended, the number of times of binding is counted in Step 132. That is, the CPU 50 performs increment of 1 to a current counted value, for example, 20, thereby setting the counter value to 21. Then, in Step 134, the counted value, for example, 21 is stored in the memory 52. In addition, this recorded counted value is read in the next Step 124. If the processing of Step 134 is ended, processing of this flowchart is ended. The power saving mode shown in
(60) In this embodiment, only if the number of times of binding by which the wire W fed by a predetermined length by the feed gears 13 is twisted and bound is equal to or less than a reference value (specifically, if Step 126 is positive), braking is applied to the wire reel 20 by the stopper device S. That is, according to this embodiment, if the number of times of binding of a predetermined length of wire W is a reference value or more (specifically, if Step 126 is negative), braking processing is omitted, and thus, power is saved. Thus, the service time of the battery 53 shown in
(61) (Braking Timing Change Mode)
(62) In Step 140 shown in
(63) In Step 146, it is determined whether or not the voltage value of the battery is equal to or less than a reference value. That is, the CPU 50 determines whether or not the battery voltage is equal to or less than 15 V. If Step 146 is positive, i.e., if the battery voltage value is equal to or less than 15 V), in Step 148, CPU 50 set the driving start timing (the same as braking start timing) of the solenoid 32 shown in
(64) If Step 146 is negative, i.e. if the battery voltage is 15 V or more, in Step 150, the driving start timing of the solenoid 32 is made earlier than the reference rotation (17 rotations). For example, in order to make the braking start time of the stopper device S earlier than the reference time, the solenoid 32 is driven with sixteen and half rotations as the reference value, and braking is applied.
(65) Here, the reason why the processing of Step 150 is provided is because the feed rate of the wire W becomes fast if the battery voltage is higher than the reference value, and thus, it is necessary to bring forward the timing with which braking is applied to the wire reel 20. In this case, since termination of an electric current flowing through the solenoid 32 is made the same as that of an example shown in
(66) On the other hand, if the battery voltage is lower than the reference value, the feed rate of the wire W returns to a normal state (the same as standard). Thus, the termination of the electric current is made the same as that of the example of
(67) After processing of Step 150 or Step 148 is ended, braking processing is performed in Step 152. This braking processing is respective processing of Step 104 to Step 114 shown in
(68) In this embodiment, if the power voltage of the battery 53 is a predetermined reference value or more (if Step 146 is negative), the feed rate of the wire W becomes fast. Thus, if the timing with which braking is applied to the wire reel 20 is not made earlier by the rate which becomes fast, the timing with which braking is applied becomes late on the contrary.
(69) That is, according to this embodiment, only if the power voltage of the battery 53 is a predetermined reference value or more, the braking start time of the stopper device S which stops the rotation of the wire reel 20 is made earlier than the reference time. Thus, braking is applied with proper timing, and braking performance improves.
(70) On the other hand, in this embodiment, if the battery voltage is lower than the reference value (if Step 146 is positive), the feed rate of the wire W returns to a normal state. Thus, since the turn-on time of the solenoid 32 becomes shorter than Step 150. Thus, power is saved. That is, according to this embodiment, since the timing with which braking is applied is changed according to the battery voltage, the inertial rotation of the wire reel 20 can be stopped reliably, and useless power consumption can be cut.
(71) In addition, the source of power which drives the stopper lever 30 may be a motor or the like other than the solenoid 32. Additionally, the reference value (refer to Step 104) of the predetermined amount of feed in claim 1 or 2, for example, the number of rotation of the feed gears 13 can be arbitrarily set and changed by changing the configuration of the link mechanism which is interposed between the stopper lever 30 and its driving source.
(72) Additionally, the flow (refer to
(73) In this embodiment, the solenoid 32, a part of the shaft 34 for rotating the stopper lever 30, and the bracket 40, which are shown in
(74) That is, according to this embodiment, the portion between the solenoid 32 and the wire reel is partitioned by the cover 17 and the solenoid 32 is concealed. Thus, even if the reinforcing bar binding machine 10 is used outdoors or the like, braking operation can be reliably performed without adhesion of sand or the like to the solenoid 32. Accordingly, the loading property of the wire reel is not impaired. In addition, the part of the sliding portion of the shaft 34 positioning in the outer side of the cover 17 is also concealed by the hollow pin 38, the bearing 35 and the like. Therefore, dust-proofing performance improves, so that adhesion of sand or the like to the sliding portion can be prevented and the braking operation can be further reliably performed. Particularly, the bearing 35 is adjacent to the hollow pin 38 and a part of the shaft 34 positioning in an outer side of the bearing 35 is covered by the hollow pin 38, the adhesion of sand or the like to the bearing 35 can further be prevented.
(75) Further, the sliding portion is a portion which is arranged to cover around the shaft 34 and slides, and the sliding portion is not limited to the tubular portion 40A of the bracket 40 and the bearing 35 or the hollow pin 38.
Second Embodiment
(76) A second embodiment in which the driving means is changed to an exclusive motor capable of performing normal rotation from a solenoid will be described below with reference to
(77) In the stopper device of this embodiment, a brake motor (hereinafter referred to as a motor) 60 is fixed to a bracket 58. A gear 61 of the motor 60 meshes with a reduction gear 62 fixed to the shaft 34. In addition, a tubular portion 59 which allows the shaft 34 to be inserted therethrough is arranged at the bracket 58. Additionally, in this embodiment, connecting parts, such as the link 33 and connecting wheel 37 which are shown in
(78) According to this embodiment, since the brake lever 30 can be directly rotated by the rotation of the reduction gear 62 in the motor 60 capable of performing normal and reverse rotation, braking release becomes quick. Additionally, according to this embodiment, the spring 36 shown in
(79) While description has been made in connection with specific exemplary embodiment of the invention, it will be obvious to those skilled in the art that various changes and modification may be made therein without departing from the present invention. It is aimed, therefore, to cover in the appended claims all such changes and modifications falling within the true spirit and scope of the present invention.