Printing device and transport control method

The printing device uses encoders to adjust medium tension in the transport unit, addressing rotational speed differences and ensuring accurate medium feeding and printing by controlling the payout drive unit during specific time periods.

JP7767975B2Active Publication Date: 2025-11-12SEIKO EPSON CORP
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Patent Information

Application Number
JP2022024531
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-02-21
Publication Date
2025-11-12
Estimated Expiration
2042-02-21

AI Technical Summary

Technical Problem

The difference in rotational speed between the feeding drive unit and the roll body during medium transport leads to inaccurate control of the medium feeding process, affecting the accuracy of medium transport and printing.

Method used

A printing device equipped with a transport unit that includes a payout unit, a pair of transport rollers, and a control unit that utilizes first and second encoders to adjust medium tension by controlling the payout drive unit based on the encoders' outputs during specific time periods, ensuring accurate medium feeding.

Benefits of technology

The solution ensures precise control of medium tension and transport, maintaining the medium in a non-skewed and non-broken state, enhancing the accuracy and reliability of the printing process.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a printing apparatus and a conveyance control method, each enabling improvement of accuracy in delivery adjustment operation.SOLUTION: A conveying unit 12 has: a delivery unit 30 that delivers a medium M from a roll body 36; a conveying roller pair 21 that conveys, toward a printing unit 11, the medium M delivered by the delivery unit 30 while holding the medium; a delivery driving unit 33 that rotationally drives the delivery unit 30; a first encoder 35a that detects a rotational speed of the delivery driving unit 33; and a second encoder 35b that detects a rotational speed of the delivery unit 30. A control unit can execute delivery adjustment operation of adjusting tension of the medium M delivered from the delivery unit 30, by controlling the delivery driving unit 33, the control unit furthermore executes the delivery adjustment operation on the basis of output of the second encoder 35b in a first period of time during which a specified time elapses after start of the rotation of the conveying roller pair 21, and executes the delivery adjustment operation on the basis of output of the first encoder 35a in a second period of time following the first period of time.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a printing apparatus and a transport control method. [Background technology]

[0002] The printing device described in Patent Document 1 includes a transport unit that transports a medium and a printing unit that prints on the medium transported by the transport unit. The transport unit has a payout unit that pays out the medium from a roll of medium wound in a roll, a pair of transport rollers that transport the medium paid out by the payout unit toward the printing unit, and a payout drive unit that drives and rotates the payout unit. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Publication No. 2020-158292 Summary of the Invention [Problem to be solved by the invention]

[0004] When the medium begins to be transported, the rotation of the transport roller pair pulls the medium located between the transport roller pair and the feeding unit toward the transport roller pair. This causes the roll body to rotate at a rotational speed faster than the rotational speed of the feeding drive unit, resulting in a difference in rotational speed between the feeding drive unit and the roll body. When controlling the feeding of the medium from the feeding unit based on the rotational speed of the feeding drive unit, this difference in rotational speed can reduce the accuracy of the control. [Means for solving the problem]

[0005] A printing device that solves the above problem comprises a transport unit that transports a medium, a printing unit that prints on the medium transported by the transport unit, and a control unit that controls the transport unit, wherein the transport unit has a payout unit that pays out the medium from a roll on which the medium is wound in a roll, a pair of transport rollers that clamp the medium paid out by the payout unit and transport it towards the printing unit, a payout drive unit that drives the payout unit to rotate, a first encoder that detects the rotational speed of the payout drive unit, and a second encoder that detects the rotational speed of the payout unit, and the control unit is capable of performing a payout adjustment operation that adjusts the tension of the medium paid out from the payout unit by controlling the payout drive unit, and performs the payout adjustment operation based on the output of the second encoder during a first period from when the pair of transport rollers start to when a specified time has elapsed, and performs the payout adjustment operation based on the output of the first encoder during a second period after the end of the first period.

[0006] A transport control method that solves the above problem is a transport control method that transports a medium by a transport unit, wherein the transport unit has a payout unit that pays out the medium from a roll body on which the medium is wound in a roll shape, a pair of transport rollers that clamp and transport the medium paid out by the payout unit, a payout drive unit that drives the payout unit to rotate, a first encoder that detects the rotation speed of the payout drive unit, and a second encoder that detects the rotation speed of the payout unit, and a payout adjustment operation that adjusts the tension of the medium paid out from the payout unit can be performed by controlling the payout drive unit, and the payout adjustment operation is performed based on the output of the second encoder during a first period from when the pair of transport rollers start to when a specified time has elapsed, and the payout adjustment operation is performed based on the output of the first encoder during a second period after the end of the first period. [Brief explanation of the drawings]

[0007] [Figure 1] FIG. 1 is a schematic diagram illustrating an embodiment of a printing device. [Figure 2]FIG. 2 is a schematic diagram showing the positional relationship between a roll body, a pair of intermediate rollers, a pair of transport rollers, and a print head. [Figure 3] FIG. 2 is a block diagram illustrating the electrical configuration of the printing apparatus. [Figure 4] 4 is a flowchart showing a routine executed by a control unit. DETAILED DESCRIPTION OF THE INVENTION

[0008] An embodiment of a printing device and a transport control method will be described below with reference to the drawings. The printing device is, for example, an inkjet printer that prints by ejecting ink, which is an example of a liquid, onto a medium such as paper, fabric, vinyl, plastic parts, or metal parts. The printing device is, for example, a large-format printer. A large-format printer is a printer that can print on media with a short side width of A3 (297 mm) or more.

[0009] In the drawings, the printing device is placed on a horizontal plane, with the direction of gravity indicated by the Z axis, and the directions along the horizontal plane indicated by the X and Y axes. The X, Y, and Z axes are perpendicular to each other. The direction parallel to the X axis is also called the width direction X.

[0010] <Printing device> As shown in FIG. 1, the printing device 10 includes a transport unit 12 that transports a medium M, and a printing unit 11 that prints on the medium M transported by the transport unit 12. The printing device 10 may alternate between a printing operation by the printing unit 11 and a transport operation by the transport unit 12. The printing device 10 may also include a support table 13. The support table 13 extends in the width direction X. The support table 13 supports the medium M in a printing area where printing is performed on the medium M by the printing unit 11.

[0011] The printing unit 11 may have a guide shaft 14, a carriage 15, a print head 16, and a carriage drive mechanism 17. The guide shaft 14 extends in the width direction X above the support base 13. The guide shaft 14 supports the carriage 15 so that the carriage 15 is movable along the guide shaft 14.

[0012] The print head 16 is mounted on the carriage 15. The print head 16 prints on the medium M supported by the support base 13 by ejecting liquid onto the medium M. The carriage drive mechanism 17 is a mechanism that moves the carriage 15 in the scanning direction XD. The printing unit 11 performs a printing operation by ejecting liquid from the print head 16 while moving the carriage 15 in the scanning direction XD along the guide shaft 14 by the carriage drive mechanism 17. The scanning direction XD may be a direction parallel to the X-axis. In this way, the printing unit 11 is a serial type, but it may also be a line type, for example.

[0013] <Transport roller pair> 2, the transport unit 12 has a transport roller pair 21 that sandwiches the medium M and transports it toward the printing unit 11. The transport roller pair 21 has a first drive roller 21a and a first driven roller 21b. The first driven roller 21b sandwiches the medium M together with the first drive roller 21a.

[0014] The first driven roller 21b rotates in accordance with the rotation of the first drive roller 21a. The transport roller pair 21 is a nip roller. The first drive roller 21a and the first driven roller 21b are each rotatable about a rotation axis extending in the width direction X. The first drive roller 21a and the first driven roller 21b may each have a cylindrical shape extending in the width direction X.

[0015] <First drive unit> 1, the transport unit 12 may include a first drive unit 22 that rotates the first drive roller 21a. The first drive unit 22 drives and rotates the first drive roller 21a, causing the transport roller pair 21 to transport the medium M in a transport direction YD. The transport direction YD is the length direction of the medium M. The transport direction YD may be parallel to the Y axis.

[0016] The first drive unit 22 may include a transport drive unit 23, a transport transmission mechanism 24, and a transport rotation detection unit 25. The transport drive unit 23 is, for example, a DC motor. The transport drive unit 23 generates a transport drive torque for rotating the first drive roller 21a.

[0017] The transport transmission mechanism 24 transmits the transport drive torque generated by the transport drive unit 23 to the first drive roller 21a at a predetermined reduction ratio. The first drive roller 21a rotates when the transport drive torque is transmitted from the transport transmission mechanism 24.

[0018] When the transport drive unit 23 is driven in the forward direction, the transport roller pair 21 rotates in the forward direction. By rotating in the forward direction, the transport roller pair 21 can transport the medium M in the transport direction YD toward the support table 13. The printing unit 11 prints on the medium M sent out from the transport roller pair 21. When the transport drive unit 23 is driven in the reverse direction, the transport roller pair 21 rotates in the reverse direction. By rotating in the reverse direction, the transport roller pair 21 can transport the medium M in the direction opposite to the transport direction YD.

[0019] The conveying rotation detection unit 25 detects the rotation position and rotation direction of the conveying output shaft 23a, which is the output shaft of the conveying drive unit 23. The conveying rotation detection unit 25 is, for example, a rotary encoder provided on the conveying output shaft 23a of the conveying drive unit 23 and configured with a disk-shaped scale and a photointerrupter.

[0020] <Feeding section> 2, the transport unit 12 has a feeding unit 30 that feeds out the medium M from a roll 36. The roll 36 is formed by winding the medium M in a roll shape. The feeding unit 30 is disposed on the transport path 19 of the medium M, upstream of the transport roller pair 21 in the transport direction YD.

[0021] 1, the unwinding unit 30 may have a support unit 31 that supports the roll body 36. The support unit 31 rotatably supports the roll body 36. The support unit 31 may have holders 31a that hold the ends of the roll body 36. One holder 31a may be located at each end of the roll body 36 in the width direction X.

[0022] The unwinding unit 30 may have a power transmission mechanism 34. The power transmission mechanism 34 may have a plurality of gears that mesh with each other. The power transmission mechanism 34 may transmit rotational power to the holder 31a by rotating the plurality of gears while meshing with each other. The power transmission mechanism 34 transmits roll drive torque to the holder 31a. The roll drive torque transmitted from the power transmission mechanism 34 causes the holder 31a to rotate. The rotation of the holder 31a causes the roll body 36 to rotate.

[0023] <Feeding drive unit> The conveying unit 12 may have a payout drive unit 33. The payout drive unit 33 is, for example, a DC motor. The payout drive unit 33 generates a roll drive torque for driving the roll body 36 to rotate. The payout drive unit 33 drives the payout unit 30 to rotate. In detail, the payout drive unit 33 drives the support unit 31 to rotate.

[0024] <Transmission of rotational power from the payout drive unit to the support unit> The power transmission mechanism 34 transmits the rotational power of the payout drive unit 33 to the support unit 31. The power transmission mechanism 34 may transmit the roll drive torque generated by the payout drive unit 33 to the support unit 31 at a predetermined reduction ratio. One of the multiple gears in the power transmission mechanism 34 may be connected to the payout output shaft 33a, which is the output shaft of the payout drive unit 33, and the other may be connected to the support unit 31. The multiple gears in the power transmission mechanism 34 may rotate while meshing with each other, thereby transmitting the rotational power from the gear connected to the payout output shaft 33a to the gear connected to the support unit 31.

[0025] When the payout drive unit 33 is driven in the forward direction, the support unit 31 rotates in the forward direction. When the support unit 31 rotates in the forward direction, it is possible to pay out the medium M from the roll body 36 towards the transport roller pair 21. The transport roller pair 21 transports the medium M paid out by the payout unit 30 towards the printing unit 11 while sandwiching it. When the payout drive unit 33 is driven in the reverse direction, the support unit 31 rotates in the reverse direction. When the support unit 31 rotates in the reverse direction, it is possible to wind up the medium M onto the roll body 36.

[0026] <First Encoder> The transport unit 12 has a first encoder 35a. The first encoder 35a detects the rotation speed of the payout driver 33. The rotation speed of the payout driver 33 detected by the first encoder 35a is also referred to as a drive rotation speed SP1.

[0027] The first encoder 35a may detect the rotational speed of the payout drive unit 33 by detecting the rotational position and rotational direction of the payout output shaft 33a of the payout drive unit 33. The first encoder 35a is, for example, a rotary encoder that is provided on the payout output shaft 33a of the payout drive unit 33 and is composed of a disk-shaped scale and a photointerrupter.

[0028] <Second Encoder> The transport unit 12 has a second encoder 35b. The second encoder 35b detects the rotation speed of the payout unit 30. The rotation speed of the payout unit 30 detected by the second encoder 35b is also referred to as the payout rotation speed SP2. The second encoder 35b detects the rotation speed of the power transmission mechanism 34. In this embodiment, the payout rotation speed SP2 is the rotation speed of the power transmission mechanism 34.

[0029] The second encoder 35b may detect the payout rotation speed SP2 by detecting the rotation position and rotation direction of the rotation shaft of one of the gears that make up the power transmission mechanism 34. The second encoder 35b is, for example, a rotary encoder that is configured with a disk-shaped scale and a photointerrupter provided on the rotation shaft of the gear in the power transmission mechanism 34.

[0030] <Intermediate Roller Pair> 2, the transport unit 12 may have an intermediate roller pair 41. The intermediate roller pair 41 is located between the feeding unit 30 and the transport roller pair 21 and transports the medium M fed by the feeding unit 30 toward the transport roller pair 21 while sandwiching the medium M therebetween.

[0031] The intermediate roller pair 41 has a second drive roller 41a and a second driven roller 41b. The second driven roller 41b holds the medium M together with the second drive roller 41a. The second driven roller 41b rotates as the second drive roller 41a rotates. The intermediate roller pair 41 is a nip roller. The second drive roller 41a and the second driven roller 41b are each rotatable about a rotation axis extending in the width direction X. The second drive roller 41a and the second driven roller 41b may each have a cylindrical shape extending in the width direction X.

[0032] <Second drive unit> 1, the transport unit 12 may include a second drive unit 42 that drives the second drive roller 41a. The second drive unit 42 drives and rotates the second drive roller 41a, causing the intermediate roller pair 41 to transport the medium M in the transport direction YD.

[0033] The second drive unit 42 may have an intermediate drive unit 43 that rotates the intermediate roller pair 41. That is, the conveying unit 12 may have the intermediate drive unit 43. The intermediate drive unit 43 is, for example, a DC motor. The intermediate drive unit 43 generates an intermediate drive torque that drives the intermediate roller pair 41.

[0034] The second drive unit 42 may have an intermediate transmission mechanism 44. The intermediate transmission mechanism 44 transmits the intermediate drive torque generated by the intermediate drive unit 43 to the second drive roller 41a at a predetermined reduction ratio. The second drive roller 41a rotates when the transport drive torque is transmitted from the intermediate transmission mechanism 44.

[0035] When the intermediate drive unit 43 is driven to rotate in the forward direction, the intermediate roller pair 41 rotates in the forward direction. By rotating in the forward direction, the intermediate roller pair 41 can transport the medium M in the transport direction YD toward the transport roller pair 21. When the intermediate drive unit 43 is driven in the reverse direction, the intermediate roller pair 41 rotates in the reverse direction. By rotating in the reverse direction, the intermediate roller pair 41 can transport the medium M in the direction opposite the transport direction YD toward the roll body 36.

[0036] The second drive unit 42 may have an intermediate rotation detection unit 45. The intermediate rotation detection unit 45 detects the rotation position and rotation direction of the intermediate output shaft 43a, which is the output shaft of the intermediate drive unit 43. The intermediate rotation detection unit 45 is, for example, a rotary encoder provided on the intermediate output shaft 43a of the intermediate drive unit 43 and configured with a disk-shaped scale and a photointerrupter.

[0037] <Control unit> 3, the printing device 10 includes a control unit 50. The control unit 50 controls various operations executed by the printing device 10. The control unit 50 may be electrically connected to the printing unit 11. The control unit 50 may control the printing unit 11. The control unit 50 controls the conveying unit 12.

[0038] The control unit 50 may be configured as a circuit including: α: one or more processors that execute various processes according to a computer program; β: one or more dedicated hardware circuits that execute at least some of the various processes; or γ: a combination thereof. The hardware circuit is, for example, an application-specific integrated circuit. The processor includes a CPU and memory such as RAM and ROM, and the memory stores program code or instructions configured to cause the CPU to execute processes. The memory, i.e., computer-readable medium, includes any readable medium that can be accessed by a general-purpose or dedicated computer.

[0039] The control unit 50 may be electrically connected to the transport drive unit 23. The control unit 50 controls the driving of the transport drive unit 23. The control unit 50 may drive the transport drive unit 23 so that the transport roller pair 21 rotates in the forward direction when the printing conditions are met. The printing conditions may be met when a print instruction is input in response to an operation of an operation unit (not shown). The printing conditions may be met when a print instruction is input from a terminal device (not shown). The transport drive unit 23 rotates the transport roller pair 21 in the forward direction, causing the transport roller pair 21 to transport the medium M. The control unit 50 may drive the transport drive unit 23 so that the transport roller pair 21 rotates in the reverse direction. The control unit 50 may control the driving of the transport drive unit 23 by controlling the supply of a constant voltage power source to the transport drive unit 23 using PWM (Pulse Width Modulation) control.

[0040] The control unit 50 may be electrically connected to the payout drive unit 33. The control unit 50 may control the driving of the payout drive unit 33. When the printing conditions are met, the payout drive unit 33 may be driven so that the roll body 36 rotates in the forward direction. As the payout drive unit 33 is driven, the roll body 36 rotates in the forward direction, and the medium M is paid out from the roll body 36 toward the pair of transport rollers 21. The control unit 50 may drive the payout drive unit 33 so that the roll body 36 rotates in the reverse direction. The control unit 50 may control the driving of the payout drive unit 33 by controlling the supply of a constant voltage power source to the payout drive unit 33 by PWM control.

[0041] The control unit 50 may be electrically connected to the intermediate drive unit 43. The control unit 50 may control the driving of the intermediate drive unit 43. When the printing conditions are met, the control unit 50 may drive the intermediate drive unit 43 so that the intermediate roller pair 41 rotates in the forward direction. When the intermediate drive unit 43 is driven, the intermediate roller pair 41 rotates in the forward direction, causing the intermediate roller pair 41 to transport the medium M toward the transport roller pair 21. The control unit 50 may drive the intermediate drive unit 43 so that the intermediate roller pair 41 rotates in the reverse direction. The control unit 50 controls the driving of the intermediate drive unit 43 by controlling the supply of a constant voltage power source to the intermediate drive unit 43 using PWM control.

[0042] As shown in FIG. 1, the control unit 50 causes the transport unit 12 to repeatedly perform intermittent transport, thereby transporting the medium M. Intermittent transport is an operation in which the transport unit 12 alternates between transporting the medium M and stopping the transport of the medium M at a predetermined cycle. The control unit 50 controls the transport drive unit 23 to alternately rotate and stop the rotation of the first drive roller 21a during intermittent transport, which alternately transports and stops the transport of the medium M. When transport of the medium M is stopped during intermittent transport, the control unit 50 causes the printing unit 11 to perform a printing operation.

[0043] When the transport unit 12 transports the medium M, the transport drive unit 23 drives the transport roller pair 21 to rotate in the forward direction. When the transport unit 12 transports the medium M, the payout drive unit 33 drives the roll body 36 to rotate in the forward direction. When the transport unit 12 transports the medium M, the intermediate drive unit 43 drives the intermediate roller pair 41 to rotate in the forward direction. When the transport of the medium M by the transport unit 12 stops, the drive of each of the transport drive unit 23, the payout drive unit 33, and the intermediate drive unit 43 may be stopped.

[0044] As shown in FIG. 3, the control unit 50 may be electrically connected to the conveying rotation detection unit 25. A pulse signal may be input to the control unit 50 from the conveying rotation detection unit 25. For example, the control unit 50 acquires the rotational position and rotational direction of the conveying output shaft 23a detected by the conveying rotation detection unit 25. The control unit 50 acquires the rotational position and rotational speed of the first drive roller 21a based on the acquired rotational position and rotational direction of the conveying output shaft 23a. The control unit 50 can perform feedback control of the first drive roller 21a based on the acquired rotational position and rotational speed of the first drive roller 21a.

[0045] The control unit 50 may be electrically connected to the first encoder 35a. A pulse signal may be input to the control unit 50 from the first encoder 35a. For example, the control unit 50 acquires the rotational position and rotational direction of the payout output shaft 33a detected by the first encoder 35a. The control unit 50 acquires the rotational speed of the payout output shaft 33a based on the acquired rotational position and rotational direction of the payout output shaft 33a. In other words, it can be said that the first encoder 35a detects the driving rotation speed SP1, which is the rotational speed of the payout drive unit 33. The control unit 50 can perform feedback control of the payout unit 30 based on the acquired rotational position and driving rotation speed SP1 of the payout drive unit 33.

[0046] The control unit 50 may be electrically connected to the second encoder 35b. A pulse signal may be input to the control unit 50 from the second encoder 35b. For example, the control unit 50 acquires the rotational position and rotational direction of the power transmission mechanism 34 detected by the second encoder 35b. The control unit 50 acquires the rotational speed of the power transmission mechanism 34 based on the acquired rotational position and rotational direction of the power transmission mechanism 34. In other words, it can be said that the second encoder 35b detects the payout rotational speed SP2, which is the rotational speed of the payout unit 30. The control unit 50 can perform feedback control of the payout unit 30 based on the acquired rotational position and payout rotational speed SP2 of the payout unit 30.

[0047] The control unit 50 may be electrically connected to the intermediate rotation detection unit 45. A pulse signal may be input to the control unit 50 from the intermediate rotation detection unit 45. For example, the control unit 50 acquires the rotational position and rotational direction of the intermediate output shaft 43a detected by the intermediate rotation detection unit 45. The control unit 50 acquires the rotational position and rotational speed of the second drive roller 41a based on the acquired rotational position and rotational direction of the intermediate output shaft 43a. The control unit 50 can perform feedback control of the second drive roller 41a based on the acquired rotational position and rotational speed of the second drive roller 41a.

[0048] The control unit 50 may perform position feedback control and speed feedback control. The position feedback control is PID control related to the rotational positions of the first drive roller 21a, the second drive roller 41a, and the holder 31a. The speed feedback control is PID control related to the rotational speeds of the first drive roller 21a, the second drive roller 41a, and the holder 31a. When a target value for the rotational position of the first drive roller 21a is input to the control unit 50, the control unit 50 performs position feedback control. When a target value for the rotational speed of the first drive roller 21a is input to the control unit 50, the control unit 50 performs speed feedback control. Note that the feedback control may be PI control.

[0049] <Intermediate adjustment operation> 1, the control unit 50 may be capable of performing an intermediate adjustment operation M1. In the intermediate adjustment operation M1, the control unit 50 adjusts the tension T of the medium M positioned between the transport roller pair 21 and the intermediate roller pair 41. The control unit 50 is capable of performing the intermediate adjustment operation M1 by controlling the intermediate drive unit 43. In the intermediate adjustment operation M1, the control unit 50 may adjust the tension T of the medium M positioned between the transport roller pair 21 and the intermediate roller pair 41 to a first target tension Ta.

[0050] <Feed adjustment operation> The control unit 50 is capable of performing a payout adjustment operation M2. In the payout adjustment operation M2, the control unit 50 adjusts the tension T of the medium M payed out from the payout unit 30. The control unit 50 is capable of performing the payout adjustment operation M2 by controlling the payout drive unit 33. The control unit 50 is capable of performing the payout adjustment operation M2 by adjusting the tension T of the medium M positioned between the intermediate roller pair 41 and the payout unit 30. In the payout adjustment operation M2, the control unit 50 may adjust the tension T of the medium M positioned between the intermediate roller pair 41 and the payout unit 30 to a second target tension Tb.

[0051] <Load acquisition operation and reference current acquisition operation> The control unit 50 may perform a load acquisition operation M3 and a reference current acquisition operation M4. The control unit 50 may perform an intermediate adjustment operation M1 and a payout adjustment operation M2 based on information obtained through the load acquisition operation M3 and the reference current acquisition operation M4.

[0052] In the load acquisition operation M3, the control unit 50 can acquire the intermediate roller load N1 for any rotational speed of the second drive roller 41a. Results of previous experiments and simulations have shown that the intermediate roller load N1 has a linear relationship with the rotational speed of the second drive roller 41a. When the roll body 36 is attached to the printing device 10, the control unit 50 executes the load acquisition operation M3, which enables calculation of the intermediate roller load N1 for any rotational speed of the second drive roller 41a.

[0053] The load obtaining operation M3 may use the output result from the intermediate rotation detection unit 45 as the rotation speed of the second drive roller 41a. The intermediate roller load N1 may be calculated based on the output of the intermediate rotation detection unit 45. The calculation of the intermediate roller load N1 may be repeated at a predetermined cycle.

[0054] In the load acquisition operation M3, the control unit 50 can acquire the roll body load N2 for any rotation speed of the roll body 36. Results of previous experiments and simulations have shown that the roll body load N2 has a linear relationship with the rotation speed of the roll body 36. When the roll body 36 is attached to the printing device 10, the control unit 50 executes the load acquisition operation M3, which enables calculation of the roll body load N2 for any rotation speed of the roll body 36.

[0055] The load acquisition operation M3 may switch between using the output result from the first encoder 35a and the output result from the second encoder 35b as the rotational speed of the roll body 36. When the output result from the first encoder 35a is used as the rotational speed of the roll body 36, the roll body load N2 may be calculated based on the output of the first encoder 35a. When the output result from the second encoder 35b is used as the rotational speed of the roll body 36, the roll body load N2 may be calculated based on the output of the second encoder 35b. The calculation of the roll body load N2 may be repeated at a predetermined cycle.

[0056] In the reference current acquisition operation M4, the control unit 50 can acquire the current flowing through the intermediate drive unit 43 when driving the intermediate drive unit 43 at the same rotation speed and drive time as when transporting the medium M. In the reference current acquisition operation M4, the control unit 50 can acquire the current flowing through the payout drive unit 33 when driving the payout drive unit 33 at the same rotation speed and drive time as when transporting the medium M.

[0057] <Tension of the medium between the transport roller pair and the intermediate roller pair> We will now explain the tension T of the medium M positioned between the transport roller pair 21 and the intermediate roller pair 41. First, we will explain the first tension T1, which is the tension T that acts on the medium M positioned between the transport roller pair 21 and the intermediate roller pair 41 when the medium M supported by the transport roller pair 21 and the intermediate roller pair 41 is transported by the transport roller pair 21 alone.

[0058] When the medium M supported by the transport roller pair 21 and the intermediate roller pair 41 is transported by the transport roller pair 21 alone, the medium M is pulled by the first drive roller 21a. This causes the second drive roller 41a to rotate in the forward direction. An intermediate roller load N1, which is the load required to rotate the intermediate roller pair 41, is generated on the intermediate roller pair 41. At this time, the first tension T1 is expressed by the following equation (1). The first proportionality constant k1 is a constant set based on the results of experiments and simulations conducted in advance. The first radius R1 is the radius of the second drive roller 41a.

[0059] T1=k1×N1 / R1 … (1) Next, the first tension T1 when the medium M is fed using the transport roller pair 21 and the intermediate roller pair 41 will be described. In this case, a first output torque Tq1 that rotates the second drive roller 41a in the forward direction is generated in the second drive roller 41a. As a result, a torque obtained by subtracting the first output torque Tq1 from the intermediate roller load N1 acts on the second drive roller 41a. The first tension T1 at this time can be expressed by the following equation (2):

[0060] T1=k1×(N1-Tq1) / R1 … (2) From the above formulas (1) and (2), the first output torque Tq1 of the second drive roller 41a can be expressed by the following formula (3).

[0061] Tq1=N1-{(R1 / k1)×T1} … (3) From the above equation (3), the first proportionality constant k1, the first radius R1, which is the radius of the second drive roller 41a, and the intermediate roller load N1 are known values. The first target tension Ta is input as the first tension T1 in the above equation (3). This makes it possible to calculate the first output torque Tq1 of the second drive roller 41a required to generate the first target tension Ta in the medium M located between the transport roller pair 21 and the intermediate roller pair 41.

[0062] The first target tension Ta is set to a value that maintains the medium M positioned between the transport roller pair 21 and the intermediate roller pair 41 in a state where it does not skew or break. The first target tension Ta is set according to the characteristics of the medium M based on the results of experiments and simulations conducted in advance. The set first target tension Ta is associated with the characteristics of the medium M and stored in the control unit 50. Information regarding the characteristics of the medium M may be input to the control unit 50 by the user through an operation unit (not shown). The control unit 50 may select the first target tension Ta based on the input information regarding the characteristics of the medium M.

[0063] The control unit 50 may repeatedly calculate the first output torque Tq1 at a predetermined cycle. The control unit 50 can execute the intermediate adjusting operation M1 by controlling the intermediate drive unit 43 to cause the second drive roller 41a to generate the calculated first output torque Tq1. Since the control unit 50 calculates the intermediate roller load N1 based on the output of the intermediate rotation detection unit 45, it can be said that the control unit 50 executes the intermediate adjusting operation M1 based on the output of the intermediate rotation detection unit 45.

[0064] <Tension of the medium between the intermediate roller pair and the feeding section> The tension T of the medium M positioned between the intermediate roller pair 41 and the feeding section 30 will be described below. First, the second tension T2 will be described, which is the tension T acting on the medium M positioned between the intermediate roller pair 41 and the feeding section 30 when the medium M supported by the intermediate roller pair 41 and the feeding section 30 is transported by the intermediate roller pair 41 alone.

[0065] When the medium M supported by the intermediate roller pair 41 and the feeding unit 30 is transported by only the intermediate roller pair 41, the medium M is pulled by the second drive roller 41a. This causes the roll body 36 to rotate in the forward direction. A roll body load N2, which is the load required to rotate the roll body 36, is generated on the roll body 36. At this time, the second tension T2 is expressed by the following equation (4). The second proportionality constant k2 is a constant set based on the results of experiments and simulations conducted in advance. The second radius R2 is the radius of the roll body 36.

[0066] T2=k2×N2 / R2 … (4) Next, the second tension T2 when the medium M is fed using the intermediate roller pair 41 and the unwinding unit 30 will be described. In this case, a second output torque Tq2 that rotates the roll body 36 in the forward direction is generated in the roll body 36. As a result, a torque obtained by subtracting the second output torque Tq2 from the roll body load N2 acts on the roll body 36. The second tension T2 at this time can be expressed by the following equation (5).

[0067] T2=k2×(N2-Tq2) / R2 … (5) From the above formulas (4) and (5), the second output torque Tq2 of the roll body 36 can be expressed by the following formula (6).

[0068] Tq2=N2-{(R2 / k2)×T2} … (6) From the above equation (6), the second proportionality constant k2, the second radius R2 that is the radius of the roll body 36, and the roll body load N2 are known values. By inputting the second target tension Tb into the second tension T2 in the above equation (6), it is possible to calculate the second output torque Tq2 of the roll body 36 that is required to generate the second target tension Tb in the medium M located between the intermediate roller pair 41 and the unwinding unit 30.

[0069] The second target tension Tb is set to a value that maintains the medium M positioned between the intermediate roller pair 41 and the feeding unit 30 in a state where it does not skew or break. The second target tension Tb is set according to the characteristics of the medium M based on the results of experiments and simulations conducted in advance. The set second target tension Tb is associated with the characteristics of the medium M and stored in the control unit 50. The control unit 50 may select the second target tension Tb based on information regarding the characteristics of the medium M that has been input.

[0070] The control unit 50 may repeatedly calculate the second output torque Tq2 at a predetermined cycle. The control unit 50 can perform the payout adjusting operation M2 by controlling the payout drive unit 33 to cause the roll body 36 to generate the calculated second output torque Tq2. When the control unit 50 calculates the roll body load N2 based on the output of the first encoder 35a, it can be said that the control unit 50 performs the payout adjusting operation M2 based on the output of the first encoder 35a. When the control unit 50 calculates the roll body load N2 based on the output of the second encoder 35b, it can be said that the control unit 50 performs the payout adjusting operation M2 based on the output of the second encoder 35b.

[0071] <First period> The control unit 50 performs the payout adjusting operation M2 based on the output of the second encoder 35b during the first period P1. The first period P1 is a period from when the transport roller pair 21 starts to rotate until a specified time Tp has elapsed.

[0072] The rotation speed of the transport roller pair 21 may be accelerating when a specified time Tp has elapsed since the rotation of the transport roller pair 21 started. In this case, the specified time Tp is the period from the timing when the rotation of the transport roller pair 21 started to the timing when the rotation speed of the transport roller pair 21 has not yet reached a constant speed and is still accelerating. The rotation speed of the transport roller pair 21 may be constant when a specified time Tp has elapsed since the rotation of the transport roller pair 21 started. In this case, the specified time Tp is the period from the timing when the rotation of the transport roller pair 21 started to the timing when the rotation speed of the transport roller pair 21 reaches a constant speed. The specified time Tp may be a preset value determined through experiments or the like.

[0073] <Second Period> The control unit 50 performs a feed adjustment operation M2 based on the output of the first encoder 35a during a second period P2 after the end of the first period P1. The second period P2 is a period from the timing when a specified time Tp has elapsed since the conveyance roller pair 21 started to the timing when conveyance of the medium M by the conveyance unit 12 is stopped. The second period P2 is a period that follows the first period P1. While the medium M is being conveyed by the conveyance unit 12, the control unit 50 performs either a feed adjustment operation M2 based on the output of the second encoder 35b or a feed adjustment operation M2 based on the output of the first encoder 35a.

[0074] <Media transport control method> Next, an example of a transport control method for transporting the medium M by the transport unit 12 will be described with reference to the flowchart shown in Fig. 4. The routine shown in Fig. 4 is repeatedly executed at a predetermined interval on the condition that the power of the printing device 10 is turned on.

[0075] As shown in FIG. 4, in step S101, the control unit 50 determines whether the rotation of the transport roller pair 21 has started. The state in which the rotation of the transport roller pair 21 has started refers to a state in which the rotation of the transport roller pair 21 has accelerated while the rotation of the transport roller pair 21 has stopped. If the control unit 50 determines that the rotation of the transport roller pair 21 has not started, step S101 becomes NO. The control unit 50 ends this routine. If the control unit 50 determines that the rotation of the transport roller pair 21 has started, step S101 becomes YES. The control unit 50 proceeds to step S102.

[0076] In step S102, the control unit 50 executes the payout adjusting operation M2 based on the output of the second encoder 35b. Here, the control unit 50 executes the payout adjusting operation M2 based on the payout rotation speed SP2. The control unit 50 proceeds to step S103.

[0077] In step S103, the control unit 50 determines whether or not the specified time Tp has elapsed. In step S103, the control unit 50 determines whether or not the specified time Tp has elapsed since it was determined in step S101 that the rotation of the transport roller pair 21 had started. If the control unit 50 determines that the specified time Tp has not elapsed, step S103 becomes NO. The control unit 50 makes the determination in step S103 again. The control unit 50 repeatedly executes the process of step S103 until it determines in step S103 that the specified time Tp has elapsed. If the control unit 50 determines that the specified time Tp has elapsed, step S103 becomes YES. The control unit 50 proceeds to step S104.

[0078] In step S104, the control unit 50 performs the payout adjusting operation M2 based on the output of the first encoder 35a. Here, the control unit 50 performs the payout adjusting operation M2 based on the driving rotation speed SP1. After performing the process of step S104, the control unit 50 ends this routine.

[0079] <effect> The operation of this embodiment will be described. The rotation of the roll body 36 is transmitted to the payout unit 30, and then to the payout drive unit 33. Therefore, when the transport of the medium M starts, the difference in rotational speed between the payout unit 30 and the roll body 36 is smaller than the difference in rotational speed between the payout drive unit 33 and the roll body 36. In detail, the difference between the payout rotation speed SP2 detected by the second encoder 35b and the rotational speed of the roll body 36 is smaller than the difference between the drive rotation speed SP1 detected by the first encoder 35a and the rotational speed of the roll body 36.

[0080] In steps S101, S102, and S103, the control unit 50 performs the payout adjustment operation M2 based on the output of the second encoder 35b during a first period P1 from when the transport roller pair 21 starts to when a specified time Tp has elapsed. Therefore, in a situation where there is a large difference in rotation speed between the payout drive unit 33 and the roll body 36, the control unit 50 can perform the payout adjustment operation M2 based on the rotation speed of the payout unit 30, which has a small difference in rotation speed from the roll body 36.

[0081] During the second period P2 after the end of the first period P1, the difference in rotation speed between the payout driver 33 and the roll body 36 becomes smaller than during the first period P1, which is the period from when the transport roller pair 21 starts to rotate until the specified time Tp has elapsed. In step S104, during the second period P2 after the end of the first period P1, the control unit 50 performs the payout adjustment operation M2 based on the output of the first encoder 35a. Therefore, under circumstances where the difference in rotation speed between the payout driver 33 and the roll body 36 is small, the control unit 50 can perform the payout adjustment operation M2 based on the rotation speed of the payout driver 33.

[0082] <Effects> The effects of this embodiment will be described. (1) The rotation of the roll body 36 is transmitted to the unwinding unit 30 and then to the unwinding drive unit 33. Therefore, when the transport of the medium M begins, the difference in rotational speed between the unwinding unit 30 and the roll body 36 is smaller than the difference in rotational speed between the unwinding drive unit 33 and the roll body 36. The control unit 50 performs the unwinding adjustment operation M2 based on the output of the second encoder 35b during a first period P1 from when the transport roller pair 21 starts to rotate until a specified time Tp has elapsed. The second encoder 35b detects the rotational speed of the unwinding unit 30. Therefore, in a situation where the difference in rotational speed between the unwinding drive unit 33 and the roll body 36 is large, the control unit 50 can perform the unwinding adjustment operation M2 based on the rotational speed of the unwinding unit 30, which has a small difference in rotational speed from the roll body 36. This improves the accuracy of the unwinding adjustment operation M2.

[0083] (2) The payout unit 30 has a support unit 31 that supports the roll body 36 and a power transmission mechanism 34 that transmits the rotational power of the payout driver 33 to the support unit 31. In this case, the difference in rotational speed between the payout driver 33 and the roll body 36 at the start of conveyance of the medium M is greater than when the payout driver 33 and the support unit 31 are directly connected and the payout driver 33 drives the support unit 31 to rotate. Therefore, if the control unit 50 performs the payout adjusting operation M2 based on the output of the first encoder 35a when the conveyance roller pair 21 starts to rotate, the accuracy of the payout adjusting operation M2 may be further reduced. When the conveyance roller pair 21 starts to rotate, the control unit 50 performs the payout adjusting operation M2 based on the output of the second encoder 35b. This makes it possible to improve the accuracy of the payout adjusting operation M2 even in cases where the accuracy of the payout adjusting operation M2 may be further reduced as described above.

[0084] (3) The intermediate drive unit 43 rotates the intermediate roller pair 41. The control unit 50 can execute an intermediate adjustment operation M1, which adjusts the tension T of the medium M positioned between the transport roller pair 21 and the intermediate roller pair 41, by controlling the intermediate drive unit 43. Therefore, the intermediate adjustment operation M1 can eliminate a transport error that occurs in the medium M positioned between the transport roller pair 21 and the intermediate roller pair 41 during transport of the medium M.

[0085] (4) During the second period P2 after the end of the first period P1, the difference in rotational speed between the payout driver 33 and the roll body 36 becomes smaller than during the first period P1, which is the period from when the transport roller pair 21 starts to rotate until the specified time Tp has elapsed. During the second period P2 after the end of the first period P1, the control unit 50 performs the payout adjustment operation M2 based on the output of the first encoder 35a. The first encoder 35a detects the rotational speed of the payout driver 33. Therefore, under circumstances in which the difference in rotational speed between the payout driver 33 and the roll body 36 is small, the control unit 50 can perform the payout adjustment operation M2 based on the rotational speed of the payout driver 33. Under circumstances in which there is no concern about a decrease in the accuracy of the payout adjustment operation M2 even if the payout adjustment operation M2 is performed based on the rotational speed of the payout driver 33, the control unit 50 can control the payout driver 33 for the payout adjustment operation M2 based on the rotational speed of the payout driver 33. Therefore, the payout adjustment operation M2 can be stabilized.

[0086] <Example of change> The above embodiment can be modified as follows: The above embodiment and the following modifications can be combined with each other within the scope of technical compatibility.

[0087] The roll body 36 may be supported by a spindle inserted into the roll body 36. In this case, the support unit 31 has a spindle. The spindle is axially axial and extends in the width direction X. A spindle gear may be provided at one of the ends of the spindle. The spindle gear may be one of the gears that make up the power transmission mechanism 34. In this case, the power transmission mechanism 34 transmits the rotational power of the payout drive unit 33 to the spindle of the support unit 31. As a result, the payout drive unit 33 rotates the payout unit 30, which includes the spindle.

[0088] The second encoder 35b may detect the rotation speed of the support unit 31. In this case, during a first period P1 from when the transport roller pair 21 starts to rotate until a specified time Tp has elapsed, the payout adjustment operation M2 is performed based on the rotation speed of the support unit 31. If the support unit 31 has a holder 31a, the second encoder 35b may detect the rotation speed of the holder 31a. If the support unit 31 has a spindle, the second encoder 35b may detect the rotation speed of the spindle.

[0089] The transport transmission mechanism 24 may be omitted from the first drive unit 22. In this case, the transport drive unit 23 may be directly connected to the first drive roller 21a. The intermediate transmission mechanism 44 may be omitted from the second drive unit 42. In this case, the intermediate drive unit 43 may be directly connected to the second drive roller 41a.

[0090] The intermediate roller pair 41 and the intermediate drive unit 43 may be omitted from the conveying unit 12. In this case, the control unit 50 omits execution of the intermediate adjustment operation M1. In the feed adjustment operation M2, the control unit 50 adjusts the tension T of the medium M fed from the feed unit 30.

[0091] The power transmission mechanism 34 may be omitted from the payout unit 30. In this case, the payout drive unit 33 may be directly connected to the support unit 31. The printing device 10 may be a liquid ejection device that jets or ejects liquids other than ink. The state of the liquid ejected as minute droplets from the liquid ejection device includes granular, teardrop-like, and string-like tails. The term "liquid" as used herein refers to any material that can be ejected from the liquid ejection device. For example, the term "liquid" refers to any state in which a substance is in its liquid phase, including fluids such as high or low viscosity liquids, sols, gel water, other inorganic solvents, organic solvents, solutions, liquid resins, liquid metals, and metal melts. The term "liquid" refers not only to a single state of matter, but also to solid functional material particles, such as pigments and metal particles, dissolved, dispersed, or mixed in a solvent. Representative examples of liquids include inks and liquid crystals, as described in the above embodiments. Here, "ink" encompasses various liquid compositions, such as general water-based inks and oil-based inks, as well as gel inks and hot-melt inks. Specific examples of liquid ejection devices include devices that eject liquids containing dispersed or dissolved materials such as electrode materials and color materials used in the manufacture of liquid crystal displays, electroluminescent displays, surface-emitting displays, and color filters. The liquid ejection device may be a device that ejects bioorganic materials used in biochip manufacture, a device used as a precision pipette to eject sample liquids, a textile printing device, a microdispenser, or the like. The liquid ejection device may be a device that ejects lubricating oil with pinpoint accuracy onto precision machinery such as watches and cameras, or a device that ejects transparent resin liquids such as ultraviolet-curing resins onto substrates to form micro-hemispherical lenses, optical lenses, and the like used in optical communication elements. The liquid ejection device may also be a device that ejects etching liquids such as acids or alkalis to etch substrates, etc.

[0092] [Note] The technical concepts and effects that can be understood from the above-described embodiment and modified examples will be described below.

[0093] (A) A printing device comprising: a transport unit that transports a medium; a printing unit that prints on the medium transported by the transport unit; and a control unit that controls the transport unit, wherein the transport unit has a payout unit that pays out the medium from a roll on which the medium is wound in a roll; a pair of transport rollers that clamp the medium paid out by the payout unit and transport it towards the printing unit; a payout drive unit that drives the payout unit to rotate; a first encoder that detects the rotational speed of the payout drive unit; and a second encoder that detects the rotational speed of the payout unit, wherein the control unit is capable of performing a payout adjustment operation that adjusts the tension of the medium paid out from the payout unit by controlling the payout drive unit, and performs the payout adjustment operation based on the output of the second encoder during a first period from when the pair of transport rollers start to when a specified time has elapsed, and performs the payout adjustment operation based on the output of the first encoder during a second period after the end of the first period.

[0094] According to this configuration, the rotation of the roll body is transmitted to the unwinding unit and then to the unwinding drive unit. Therefore, when the medium starts to be transported, the difference in rotational speed between the unwinding unit and the roll body is smaller than the difference in rotational speed between the unwinding drive unit and the roll body. The control unit performs the unwinding adjustment operation based on the output of the second encoder during a first period from when the pair of transport rollers starts to rotate until a specified time has elapsed. The second encoder detects the rotational speed of the unwinding unit. Therefore, in a situation where the difference in rotational speed between the unwinding drive unit and the roll body is large, the control unit can perform the unwinding adjustment operation based on the rotational speed of the unwinding unit, which has a smaller difference in rotational speed from the roll body. This can improve the accuracy of the unwinding adjustment operation.

[0095] (B) In the printing device, the unwinding unit has a support unit that supports the roll body, and a power transmission mechanism that transmits the rotational power of the unwinding drive unit to the support unit. According to this configuration, the payout unit includes a support unit that supports the roll body and a power transmission mechanism that transmits the rotational power of the payout drive unit to the support unit. In this case, the difference in rotational speed between the payout drive unit and the roll body at the start of medium transport is greater than when the payout drive unit and the support unit are directly connected and the payout drive unit drives the support unit to rotate. Therefore, if the control unit performs the payout adjustment operation based on the output of the first encoder when the pair of transport rollers starts to rotate, the accuracy of the payout adjustment operation may be further reduced. By performing the payout adjustment operation based on the output of the second encoder when the pair of transport rollers starts to rotate, the control unit can improve the accuracy of the payout adjustment operation even in cases where the accuracy of the payout adjustment operation may be further reduced as described above.

[0096] (C) In the printing device, the second encoder detects the rotation speed of the power transmission mechanism. (D) In ​​the printing device, the payout unit has a support unit that supports the roll body, the payout drive unit drives the support unit to rotate, and the second encoder detects the rotation speed of the support unit.

[0097] (E) In the printing device, the transport unit has an intermediate roller pair between the feed unit and the transport roller pair that clamps the medium fed by the feed unit and transports it toward the transport roller pair, and an intermediate drive unit that rotates the intermediate roller pair, and the control unit is capable of performing the feed adjustment operation by adjusting the tension of the medium located between the intermediate roller pair and the feed unit, and is capable of performing an intermediate adjustment operation that adjusts the tension of the medium located between the transport roller pair and the intermediate roller pair by controlling the intermediate drive unit.

[0098] According to this configuration, the intermediate drive unit rotates the intermediate roller pair. The control unit can execute an intermediate adjustment operation that adjusts the tension of the medium positioned between the transport roller pair and the intermediate roller pair by controlling the intermediate drive unit. Therefore, the intermediate adjustment operation can eliminate transport errors that occur in the medium positioned between the transport roller pair and the intermediate roller pair during transport of the medium.

[0099] (F) A transport control method for transporting a medium by a transport unit, the transport unit having a payout unit that pays out the medium from a roll body on which the medium is wound in a roll shape, a pair of transport rollers that clamp and transport the medium paid out by the payout unit, a payout drive unit that drives the payout unit to rotate, a first encoder that detects the rotation speed of the payout drive unit, and a second encoder that detects the rotation speed of the payout unit, and a payout adjustment operation for adjusting the tension of the medium paid out from the payout unit can be performed by controlling the payout drive unit, and the payout adjustment operation is performed based on the output of the second encoder during a first period from when the pair of transport rollers start to when a specified time has elapsed, and the payout adjustment operation is performed based on the output of the first encoder during a second period after the end of the first period.

[0100] According to this method, the rotation of the roll body is transmitted to the unwinding unit and then to the unwinding drive unit. Therefore, when the medium starts to be transported, the difference in rotational speed between the unwinding unit and the roll body is smaller than the difference in rotational speed between the unwinding drive unit and the roll body. During a first period from when the pair of transport rollers starts to rotate until a specified time has elapsed, the unwinding adjustment operation is performed based on the output of the second encoder. The second encoder detects the rotational speed of the unwinding unit. Therefore, in a situation where there is a large difference in rotational speed between the unwinding drive unit and the roll body, the unwinding adjustment operation can be performed based on the rotational speed of the unwinding unit, which has a smaller difference in rotational speed from the roll body. This improves the accuracy of the unwinding adjustment operation. [Explanation of symbols]

[0101] M...medium, M1...intermediate adjustment operation, M2...feed adjustment operation, P1...first period, P2...second period, T...tension, Tp...specified time, 10...printing device, 11...printing unit, 12...conveying unit, 21...conveying roller pair, 30...feeding unit, 31...support unit, 33...feeding drive unit, 34...power transmission mechanism, 35a...first encoder, 35b...second encoder, 36...roll body, 41...intermediate roller pair, 43...intermediate drive unit, 50...control unit.

Claims

1. a transport unit that transports the medium; a printing unit that prints on the medium transported by the transport unit; a control unit that controls the transport unit, The conveying unit is a feeding unit that feeds out the medium from a roll body on which the medium is wound in a roll shape; a pair of transport rollers that sandwich the medium fed by the feeding unit and transport it toward the printing unit; a feed drive unit that rotationally drives the feed unit; a first encoder for detecting a rotation speed of the payout drive unit; a second encoder that detects the rotation speed of the payout portion, The control unit is capable of performing a feed adjustment operation to adjust the tension of the medium fed from the feed unit by controlling the feed drive unit, and performs the feed adjustment operation based on the output of the second encoder during a first period from when the pair of transport rollers starts to rotate until a specified time has elapsed, and performs the feed adjustment operation based on the output of the first encoder during a second period after the end of the first period.

2. The feeding section is a support portion that supports the roll body; 2. The printing apparatus according to claim 1, further comprising: a power transmission mechanism that transmits the rotational power of the feed drive portion to the support portion.

3. The printing device according to claim 2 , wherein the second encoder detects the rotation speed of the power transmission mechanism.

4. the unwinding section has a support section that supports the roll body, The feed drive unit drives the support unit to rotate, 3. The printing device according to claim 1, wherein the second encoder detects a rotation speed of the support portion.

5. The conveying unit is an intermediate roller pair disposed between the feeding unit and the pair of transport rollers, which sandwiches the medium fed by the feeding unit and transports the medium toward the pair of transport rollers; an intermediate drive unit that rotates the intermediate roller pair, A printing device described in any one of claims 1 to 4, characterized in that the control unit is capable of performing the feed adjustment operation by adjusting the tension of the medium located between the intermediate roller pair and the feed unit, and is capable of performing an intermediate adjustment operation that adjusts the tension of the medium located between the transport roller pair and the intermediate roller pair by controlling the intermediate drive unit.

6. A transport control method for transporting a medium by a transport unit, comprising: The conveying unit is a feeding unit that feeds out the medium from a roll body on which the medium is wound in a roll shape; a pair of conveying rollers that sandwich and convey the medium fed by the feeding unit; a feed drive unit that rotationally drives the feed unit; a first encoder for detecting a rotation speed of the payout drive unit; a second encoder that detects the rotation speed of the payout portion, A transport control method characterized in that a feed adjustment operation for adjusting the tension of the medium fed from the feed section can be performed by controlling the feed drive section, and the feed adjustment operation is performed based on the output of the second encoder during a first period from when the pair of transport rollers starts to rotate until a specified time has elapsed, and the feed adjustment operation is performed based on the output of the first encoder during a second period after the end of the first period.

Citation Information

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