Printer device and digital camera with printer

By using a separate gear plate to support the gear shafts in the printer device, the gear positions are stabilized, ensuring accurate film feeding and developer spreading, thus improving image quality in printer devices and digital cameras with built-in printers.

JP7787153B2Active Publication Date: 2025-12-16FUJIFILM CORP
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Patent Information

Application Number
JP2023511388
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-31
Filing Date
2022-03-29
Publication Date
2025-12-16
Estimated Expiration
2042-03-29

AI Technical Summary

Technical Problem

In printer devices and digital cameras with built-in printers, the reaction forces between rotating gears cause the cover member to bend, leading to fluctuations in gear position, which affects the accuracy of instant film feeding and developer spreading, resulting in decreased image quality.

Method used

The printer device includes a gear plate separate from the cover member, fixed to the device housing, supporting the rotation shafts of the transport and spreading rollers, and the drive transmission gear train, with the gears arranged to minimize reaction forces and prevent bending.

Benefits of technology

This configuration stabilizes gear positions, improving the accuracy of instant film feeding and developer spreading, thereby enhancing image quality by preventing fluctuations caused by gear reaction forces.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

Provided are a printer device and a printer-mounted digital camera that can prevent fluctuations in gear position due to reaction forces between gears and suppress degradation in image quality. A printer unit (13) comprises: a device housing (56) including a transport roller and a development roller; a roller drive mechanism (52) attached to the device housing (56) and having a drive transmission gear (72) for driving the transport roller and the development roller; and a cover member (60) covering the roller drive mechanism (52). The roller drive mechanism (52) includes a gear plate (73) that is separate from the cover member (60). The gear plate (73) is fixed at two points to the device housing (56) and is formed in a plate shape that axially supports at least one of rotary shafts of the drive transmission gear (52).
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Description

[Technical Field]

[0001] The present invention relates to a printer device and a digital camera with a built-in printer. [Background technology]

[0002] 2. Description of the Related Art Various types of mobile printer devices or digital cameras with built-in printers are commercially available, which are designed to record images taken with a digital camera or a smartphone on a recording medium such as instant film.

[0003] Printers or digital cameras with printers that use instant film as a recording medium typically have a configuration that includes a loading chamber, a transport roller, a spreading roller, and a roller drive mechanism. An instant film pack containing multiple instant film sheets in a case is loaded into the loading chamber. The transport rollers transport the instant film by pinching both edges of the film. The spreading roller spreads the developer by squeezing the developer pod on the instant film.

[0004] The roller drive mechanism drives the spreading rollers and the conveying rollers and is composed of, for example, a motor as a drive source and multiple gears that transmit rotational driving force. The gears that make up the drive mechanism are journaled on a part of the loading chamber or on a cover member fixed to the loading chamber. The cover member is formed in a box shape to accommodate the multiple gears. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Japanese Patent Application Laid-Open No. 2005-300838 Summary of the Invention [Problem to be solved by the invention]

[0006] However, in a printer device or digital camera with a printer equipped with the roller drive mechanism described above, multiple gears are supported by a cover member, and when drive is transmitted, the reaction force acting between the rotating gears acts on the cover member, causing it to bend. When the cover member bends, the position of the gears supported by the cover member changes, which in turn causes the positions of the transport roller and the spreading roller to shift, resulting in a decrease in the accuracy of feeding the instant film and uneven spreading of the developer by the spreading roller, which can lead to a decrease in image quality.

[0007] SUMMARY OF THE INVENTION The present invention has been made to solve the above problems, and has as its object to provide a printer device and a digital camera with a printer that can prevent fluctuations in gear position caused by reaction forces between gears and suppress deterioration in image quality. [Means for solving the problem]

[0008] To solve the above problems, the printer device of the present invention is a printer device that exposes an image on an instant film having a developer pod containing developer and spreads the developer, and includes a transport roller, a spreading roller, a device housing, a roller drive mechanism, and a cover member. The roller drive mechanism includes a gear plate separate from the cover member, fixed to the device housing at at least two locations, and supporting at least one of the rotation shaft of the transport roller, the rotation shaft of the spreading roller, and the rotation shaft of the drive transmission gear train. The transport roller transports the instant film toward the discharge port. The spreading roller is located downstream of the transport roller in the transport direction and spreads the developer by clamping the instant film and crushing the developer pod. The device housing contains the transport roller and spreading roller. The roller drive mechanism is attached to the device housing and has a drive transmission gear train that drives the transport roller and spreading roller. The cover member covers the roller drive mechanism.

[0009] The gear plate has a fixed portion for fixing to the device housing and a bearing portion for supporting at least one of the rotating shafts, and it is preferable that the portions connecting the fixed portions, the bearing portions, or the fixed portions and the bearing portions are formed in a straight line.

[0010] It is preferable that the gear provided on the rotation shaft of the conveying roller, the gear provided on the rotation shaft of the unfolding roller, and the drive transmission gear train are arranged on the device housing side and on the opposite side of the device housing with respect to the gear plate.

[0011] The roller drive mechanism comprises a motor serving as a drive source and a drive transmission gear train, the drive transmission gear train consisting of a first sub-gear train that transmits the rotational drive force from the motor, a second sub-gear train that receives the rotational drive force from the first sub-gear train and transmits it to the conveying roller, and a third sub-gear train that receives the rotational drive force from the first sub-gear train and transmits it to the unfolding roller, and it is preferable that the second sub-gear train is arranged on the device housing side relative to the gear plate, and the third sub-gear train is arranged on the opposite side of the device housing relative to the gear plate.

[0012] A digital camera with a printer according to the present invention comprises the above-described printer and an imaging unit having an imaging optical system, capturing an image of a subject, and outputting image data to a printer device. [Effects of the Invention]

[0013] According to the present invention, fluctuations in gear position caused by reaction forces between gears can be prevented, and degradation of image quality can be suppressed. [Brief explanation of the drawings]

[0014] [Figure 1] FIG. 1 is a front perspective view of a digital camera with a printer. [Figure 2] FIG. 2 is a central vertical cross-sectional view of the digital camera with a printer. [Figure 3] FIG. 2 is a rear perspective view of the digital camera with a printer with the loading lid in the closed position. [Figure 4]FIG. 2 is a rear perspective view of the digital camera with a printer with the loading lid in the open position. [Figure 5] FIG. 1 is a perspective view of an instant film pack. [Figure 6] FIG. 2 is a cross-sectional view of an instant film pack. [Figure 7] FIG. 2 is an exploded perspective view of the instant film pack. [Figure 8] FIG. 1 is a cross-sectional view of an instant film. [Figure 9] FIG. [Figure 10] FIG. 2 is a perspective view of the printer unit with the device housing omitted. [Figure 11] FIG. [Figure 12] FIG. [Figure 13] FIG. [Figure 14] FIG. [Figure 15] FIG. 2 is a perspective view of a conveying roller, a spreading roller, and connected gears. [Figure 16] FIG. 2 is an exploded perspective view showing the configuration of the roller drive mechanism and its surroundings. [Figure 17] FIG. [Figure 18] FIG. 2 is a perspective view showing the configuration around a gear plate and a cover member. [Figure 19] FIG. 2 is a cross-sectional view of a main part around a roller drive mechanism. DETAILED DESCRIPTION OF THE INVENTION

[0015] [Outline of digital camera with printer] 1, a digital camera 10 with a printer of the present invention comprises a camera body 11, an imaging unit 12, and a printer section 13. On the front surface of the camera body 11, an imaging window 15 and two release switches 16A and 16B are provided.

[0016] The camera body 11 has a substantially square shape when viewed from the front. The digital camera with printer 10 uses instant film 28 (see FIG. 9). The instant film 28 is, for example, a square-shaped instant film. However, this is not limiting, and wide-format or card-shaped instant film may also be used.

[0017] The imaging window 15 is disposed in the center of the front surface of the camera body 11. The imaging window 15 exposes an imaging optical system 19 (see FIG. 2) that constitutes the imaging unit 12.

[0018] 2, the imaging unit 12 is provided with an imaging optical system 19 and a solid-state imaging element 20. The solid-state imaging element 20 is, for example, a CMOS (Complementary Metal Oxide Semiconductor) image sensor, and has a light-receiving surface configured with a plurality of pixels (not shown) arranged in a two-dimensional matrix. Each pixel includes a photoelectric conversion element, and performs photoelectric conversion on the subject image formed on the light-receiving surface by the imaging optical system 19 to generate an imaging signal.

[0019] The solid-state imaging device 20 includes signal processing circuits (none of which are shown) such as a noise reduction circuit, an auto-gain controller, and an A / D conversion circuit. The noise reduction circuit performs noise reduction processing on the imaging signal. The auto-gain controller amplifies the level of the imaging signal to an optimum value. The A / D conversion circuit converts the imaging signal into a digital signal and outputs it from the solid-state imaging device 20 to an internal memory (not shown). The output signal from the solid-state imaging device 20 is image data (so-called RAW data) having one color signal for each pixel.

[0020] When at least one of the release switches 16A and 16B is pressed, the solid-state image sensor 20 is driven to capture an image of a subject.

[0021] A film ejection opening 21 is provided on the top surface of the camera body 11. From the film ejection opening 21, instant film 28 is ejected after printing images.

[0022] As shown in Fig. 3, a loading lid 22 is attached to the rear side of the camera body 11 by a hinge portion 22c. The hinge portion 22c supports the loading lid 22 so that it can rotate freely between an open position (the state shown in Fig. 4) and a closed position (the state shown in Fig. 3). In the open position, the loading lid 22 exposes the film pack chamber 23 inside the camera body 11. In the closed position, the loading lid 22 covers the film pack chamber 23. A locking mechanism and an unlocking mechanism (not shown) are provided between the camera body 11 and the loading lid 22. The locking mechanism holds the loading lid 22 in the closed position, and when the unlocking mechanism is operated, the loading lid 22 rotates from the closed position to the open position.

[0023] As shown in Fig. 4, an instant film pack 24 containing instant film 28 is loaded into the film pack chamber 23 (loading chamber). The user loads the instant film pack 24 containing instant film 28 into the film pack chamber 23. The loading lid 22 has a plurality of film holders 22a on its inner surface.

[0024] A rear display unit 17 and an operation unit 18 are provided on the outer surface of the loading lid 22, i.e., on the rear surface of the camera body 11. The rear display unit 17 is configured, for example, by an LCD (Liquid Crystal Display) panel. Image data for one frame output from the solid-state imaging device 20 is sequentially input to the rear display unit 17 and displayed as a through image.

[0025] Shooting begins when the photographer presses at least one of the release switches 16A and 16B. During shooting, image data is acquired from the solid-state image sensor 20. This image data is subjected to known image processing by an image processing unit (not shown) and then compressed. Image processing includes, for example, matrix calculation, demosaic processing, gamma correction, brightness conversion, color difference conversion, and resizing. The processed and compressed image data is recorded in an internal memory (not shown), such as a flash memory, provided within the camera body 11.

[0026] When the menu switch 18a of the operation unit 18 is pressed, an image is reproduced and displayed on the rear display unit 17 based on the image data recorded in the built-in memory. When an image that the photographer wants to print is displayed on the rear display unit 17, the photographer can press the print switch 18b of the operation unit 18, and the printing process by the printer unit 13 will start.

[0027] [Instant film pack composition] As shown in FIGS. 5 and 6, the instant film pack 24 includes a case 26, a film pressure plate 27, a plurality of instant films 28, and a film cover 30.

[0028] As shown in Figure 6, case 26 stores a stack of multiple instant films 28 and one film cover 30. Case 26 is made of a material such as thermoplastic resin or a paper resin made by mixing thermoplastic resin with cellulose. Case 26 is composed of a box-shaped case member 31 and a lid 32 that covers an opening formed on the back side of case member 31.

[0029] As shown in FIG. 7, the case member 31 has an exposure opening 31a for exposing the instant film 28. In the following description, the surface of the instant film pack 24 on which the exposure opening 31a is formed is referred to as the "front," the surface opposite the "front" is referred to as the "rear," the surface facing the film ejection opening 21 of the camera body 11 is referred to as the "top," and the surface opposite the "top" is referred to as the "bottom." Within the case member 31, a film cover 30 is placed in front of the frontmost instant film 28 that is first loaded into the exposure opening 31a. This allows the film cover 30 to light-tightly close the exposure opening 31a. A notch 31b is provided at the bottom of the exposure opening 31a to receive a well-known claw member 57 (see FIGS. 9 and 10) provided on the camera.

[0030] An outlet 31c is formed on the top surface of the case member 31. The outlet 31c is slit-shaped. The instant films 28 or film covers 30 are fed out of the instant film pack 24 one by one from the outlet 31c by a claw member 57 inserted into the notch 31b of the case member 31.

[0031] A light-shielding seal 31d is attached to the case member 31 so as to block the outlet 31c from the outside. The light-shielding seal 31d is formed in a flexible sheet shape. The light-shielding seal 31d is attached only to one edge of the long side of the outlet 31c so as not to interfere with the instant film 28 or film cover 30 passing through the outlet 31c.

[0032] 7, the cover 32 has a pair of openings 32a, a pair of unit support projections 32b, a pair of crimping pins 32c, and a support piece 32d. The pair of openings 32a are formed at a predetermined distance above and below, and serve as entrances for the film holder 22a provided on the digital camera with printer 10 when the film is loaded into the digital camera with printer 10.

[0033] A pair of unit support protrusions 32b are provided vertically on both side edges of the lid 32, with their central arc-shaped portions projecting toward the exposure opening 31a. The unit support protrusions 32b come into contact with both side edges of the backside of the last layer of instant film 28, pushing the instant film 28 up in an arc-shaped manner with its central portion projecting toward the exposure opening 31a. This prevents a gap from forming between the film cover 30 and the exposure opening 31a.

[0034] The pair of caulking pins 32c are for attaching the film pressure plate 27. The support piece 32d supports the central portion of the last layer of instant film 28 from behind, preventing the central portion of the instant film 28 from bending in a direction that curves toward the lid 32.

[0035] Film pressure plate 27 consists of two sheets 27a and 27b made of elastic synthetic resin. When loading lid 22 is closed, sheet 27a is pressed by multiple film holders 22a and curves convexly toward lid 32. Sheet 27a is formed with opening 27c and a pair of holes 27d. Opening 27c is formed vertically in the center of sheet 27a and is for inserting support piece 32d. A pair of caulking pins 32c are inserted into the pair of holes 27d to attach film pressure plate 27 to lid 32.

[0036] The sheet 27b has an opening 27e and a pair of holes 27f. The opening 27e is formed in the center of the sheet 27a and is for inserting the support piece 32d. A pair of crimping pins 32c are inserted into the pair of holes 27f. The lower end 27h of the sheet 27b is attached to the lower end 27g of the sheet 27a. This prevents the sheet 27a from sagging and prevents light leakage from the pair of openings 32a. Furthermore, when the sheet 27a is elastically bent by the multiple film retaining portions 22a, the sheet 27b pushes up the instant film 28 in a substantially flat state. As a result, the frontmost film cover 30 or the instant film 28 is pressed against the rear side of the front surface of the case member 31.

[0037] An L-shaped protrusion 24c is provided on both side surfaces 24a, 24b of the instant film pack 24. The protrusion 24c is provided to prevent the instant film pack 24 from being loaded backwards.

[0038] [Instant film composition] As shown in Figure 8, instant film 28 is a so-called mono-sheet type film, consisting of a mask sheet 33, a photosensitive sheet 34, a cover sheet 35, a developer pod 36, and a trap section 37. Mask sheet 33 is formed into a sheet shape from a thin synthetic resin and has a screen opening 33a. Photosensitive sheet 34 is provided with a photosensitive layer, a diffuse reflection layer, an image-receiving layer, etc. Cover sheet 35 has an exposure surface 28a that faces exposure head 51, which will be described later.

[0039] The developer pod 36 is formed in a generally bag-like shape and contains developer 38. The developer pod 36 is attached to the end of the photosensitive sheet 34 on the outlet 31c side, and is wrapped by the end of the mask sheet 33. The trap portion 37 is attached to the end of the photosensitive sheet 34 opposite to the outlet 31c side, and is similarly wrapped by the end of the mask sheet 33.

[0040] As will be described in detail later, when printing, the instant film 28 is exposed to printing light by irradiating the photosensitive layer. During development, the developer pod 36 is torn open, and developer 38 is poured into the gap 39 between the photosensitive sheet 34 and the cover sheet 35 and developed. The image formed by the exposure of the photosensitive layer is inverted by the diffuse reflection layer and transferred to the image-receiving layer. Thus, a positive image appears on the positive image observation surface 40 of the photosensitive sheet 34 exposed through the screen opening 33a.

[0041] The film cover 30 is formed in a sheet-like shape that is thinner than the instant film 28, and has light-blocking properties and flexibility. The film cover 30 is a molded synthetic resin product, formed from polystyrene containing carbon black, for example. In other words, the film cover 30 has greater rigidity than the instant film 28. When the instant film pack 24 is loaded into the film pack chamber 23 for use, the film cover 30 is ejected into the film ejection opening 21 by a pair of spreading rollers 54 (see Figures 9 and 10), which will be described later.

[0042] [Printer section configuration] 9 and 10, the printer unit 13 is made up of an exposure head 51, a roller drive mechanism 52, a transport roller pair 53, a spreading roller pair 54, a spreading control member 55, a device housing 56 (see FIGS. 11 and 12), a claw member 57, a claw member drive mechanism (not shown), a discharge guide 58, a control unit 59, and a cover member 60 (see FIGS. 11 and 12). The printer unit 13 corresponds to the printer device in the claims.

[0043] 10, the device housing 56, the cover member 60, etc. are omitted from the illustration to avoid complication. However, in reality, as shown in FIGS. 11 and 12, the exposure head 51, the roller drive mechanism 52, the conveying roller pair 53, the spreading roller pair 54, the spreading control member 55, nine The printer unit 13 is configured by attaching the claw member 57, the claw member drive mechanism, the cover member 60, etc.

[0044] In the following description, the conveying direction in which the conveying roller pair 53 conveys the instant film 28 is referred to as the Y direction, the width direction of the instant film 28 perpendicular to the Y direction is referred to as the X direction, and the direction perpendicular to the X direction and the Y direction is referred to as the Z direction.

[0045] [Device enclosure configuration] 13, the device housing 56 is formed in a box shape with an open rear side of the camera body 11, and is provided integrally with the film pack chamber 23. In addition to the film pack chamber 23, the device housing 56 also has a frame portion that supports the exposure head 51, roller drive mechanism 52, transport roller pair 53, spreading roller pair 54, claw member 57, and cover member 60, but this is omitted from Fig. 13. The device housing 56 and cover member 60 are formed from a resin material, preferably polycarbonate resin, for example, and more preferably glass fiber reinforced polycarbonate resin containing 20% ​​glass fiber.

[0046] An L-shaped notch 23c is formed on both side surfaces 23a, 23b of the film pack chamber 23. The L-shaped notch 23c fits into an L-shaped protrusion 24c provided on both side surfaces 24a, 24b of the instant film pack 24, thereby preventing the instant film pack 24 from being loaded in the wrong direction.

[0047] The film pack chamber 23 is also provided with a positioning protrusion 23d that determines the positioning in the X direction with respect to the instant film pack 24. The positioning protrusion 23d is formed in a wedge shape whose thickness gradually increases along the Z direction, i.e., the front-to-rear direction of the camera body 11.

[0048] An elastic member 23f is provided on the bottom surface 23e of the film pack chamber 23 to position it in the Y direction. The elastic member 23f is a rectangular parallelepiped member made of sponge or rubber. When the elastic member 23f returns from a compressed state to its original state, an elastic force acts, pressing the top surface 24e of the instant film pack 24 against the top surface 23g of the film pack chamber 23. The top surface 23g of the film pack chamber 23 has an opening that leads to the transport roller pair 53.

[0049] The film pack chamber 23 also has a notch 23h. The claw member 57 enters the interior of the instant film pack 24 through the notch 23h and feeds the instant films 28 out of the instant film pack 24 one by one.

[0050] As described above, the instant film pack 24 is positioned in the X and Y directions relative to the film pack chamber 23, and is further positioned in the Z direction by closing the loading lid 22. Specifically, the multiple film pressing portions 22a provided on the loading lid 22 position the instant film pack 24 in the Z direction.

[0051] When one of the instant film packs 24 is loaded into the film pack chamber 23 and the loading lid 22 is in the closed position, the film pressing portions 22a enter the interior of the instant film pack 24 through the opening 32a and press the film pressing plate 27. This presses the instant film 28 inside the instant film pack 24 in the stacking direction.

[0052] As described above, the instant film pack 24 is loaded into the film pack chamber 23. An image is recorded by the printer unit 13 on the instant film 28 ejected from the instant film pack 24.

[0053] 9, the device housing 56 contains the pair of conveying rollers 53 and the pair of spreading rollers 54. Specifically, the device housing 56 is provided therein with bearings (not shown) that support the pair of conveying rollers 53 and the pair of spreading rollers 54.

[0054] [Configuration of the conveying roller pair and the spreading roller pair] As shown in FIG. 14, the pair of conveying rollers 53 and the pair of spreading rollers 54 are rotationally driven by a roller driving mechanism 52 to convey the film cover 30 and the instant film 28.

[0055] The transport roller pair 53 is made up of a capstan roller 61 and a pinch roller 62. The capstan roller 61 and pinch roller 62 are positioned so that they sandwich the transport path of the instant film 28 (see Figure 9). The capstan roller 61 is positioned on the side facing the exposed surface 28a of the instant film 28. The capstan roller 61 is made up of a pair of cylindrical spike roller members 61a, a drive gear 61b, and a rotating shaft 61c that holds the spike roller members 61a and the drive gear 61b. The spike roller member 61a has spikes with a plurality of tiny protrusions formed on its peripheral surface.

[0056] The pinch roller 62 is disposed on the side facing the positive image observation surface 40 of the instant film 28. The pinch roller 62 is composed of a roller member 62a, a drive gear 62b, and a rotation shaft 62c. Both ends of the roller member 62a are supported by the device housing 56 so as to be able to move freely within the thickness range of the instant film 28, and are pressed against the capstan roller 61 by a spring 66 that serves as a pressing mechanism. Therefore, the pinch roller 62 is elastically supported in a direction perpendicular to the transport direction of the instant film 28.

[0057] The drive gears 61b and 62b are provided at both ends of the rotary shafts 61c and 62c and are in mesh with each other. One end of the rotary shaft 61c is connected to a DC motor 71 via a drive transmission gear train 72 (described later). Therefore, when the DC motor 71 rotates, the capstan roller 61 and the pinch roller 62 rotate synchronously.

[0058] The spreading roller pair 54 is composed of spreading rollers 63, 64, and is arranged downstream in the conveying direction relative to the conveying roller pair 53. The spreading roller 63 is arranged on the side facing the exposure surface 28a of the instant film 28. The spreading roller 64 is arranged on the side facing the exposure surface 28a of the instant film 28. Positive The spreading roller 64 is disposed on the side facing the image observation surface 40. Both ends of the spreading roller 64 are supported by the device housing 56 so as to be freely movable within the thickness range of the instant film 28, and are pressed toward the spreading roller 63 by springs 67 (see FIG. 9) that serve as a pressing mechanism. Therefore, the spreading roller 64 is elastically supported in a direction perpendicular to the transport direction of the instant film 28.

[0059] Gears 76e and 76d that constitute a drive transmission gear train 72 (described later) are connected to one end of the spreading rollers 63 and 64. A DC motor 71 is connected to the drive transmission gear train 72. Therefore, when the DC motor 71 rotates, the spreading rollers 63 and 64 rotate in synchronization with each other.

[0060] The discharge guide 58 is disposed downstream in the conveyance direction from the pair of spreading rollers 54. The pair of spreading rollers 54 grips the entire width of the instant film 28 being conveyed by the pair of conveyance rollers 53 and conveys it to the discharge guide 58. The developer pod 36 of the instant film 28 is crushed by being gripped by the pair of spreading rollers 54. This causes the developer to be spread in the gap 39 (see FIG. 8). The instant film 28 sent out from the pair of spreading rollers 54 is then conveyed toward the discharge guide 58.

[0061] A development control member 55 (see FIG. 9) is provided between the pair of transport rollers 53 and the pair of spreading rollers 54. The development control member 55 comes into contact with the positive image observation surface 40 of the instant film 28 that has been transported, and controls the distribution of the developing solution as it spreads by rubbing the positive image observation surface 40 of the instant film 28. The development control member 55 extends parallel to the width direction of the instant film 28 that is being transported and in a direction perpendicular to the transport direction of the instant film 28. The development control member 55 is formed integrally with a plate-shaped support member 55a, and is fixed to the device housing 56 via the support member 55a.

[0062] The tip of the development control member 55 is perpendicular to the exposure surface 28a of the instant film 28 being transported, and in a cross section parallel to the transport direction, protrudes toward the instant film 28 beyond the clamping position where the development roller pair 54 clamps the instant film 28. This allows the development control member 55 to reliably rub the positive image observation surface 40 of the instant film 28.

[0063] The pair of transport rollers 53 transports the instant film 28, which has been sent out from the instant film pack 24 by the claw member 57, towards the film outlet 21. The exposure position P (see Figure 9) where the exposure head 51 exposes the instant film 28 to printing light is located between the outlet 31c of the instant film pack 24 and the pair of transport rollers 53. The exposure by the exposure head 51 is performed during transport by the pair of transport rollers 53.

[0064] The control unit 59 controls the exposure of the exposure head 51 based on the image data. Exposure by the exposure head 51 is performed by moving the instant film 28 line by line and sequentially exposing the line images onto the instant film 28. In this way, one frame's worth of image is exposed onto the photosensitive layer of the instant film 28. The instant film 28 is then transported by the transport roller pair 53 toward the spreading roller pair 54.

[0065] [Configuration of roller drive mechanism] 14, the roller drive mechanism 52 includes a DC motor 71 as a drive source, a drive transmission gear train 72 that transmits the rotational drive force, and a gear plate 73. The drive transmission gear train 72 is made up of a first sub-gear train 74, a second sub-gear train 75, and a third sub-gear train 76. The first sub-gear train 74 transmits the rotational drive force from the DC motor 71 partway through. The first sub-gear train 74 is made up of a worm gear 74a journaled on the rotary shaft of the DC motor 71, and gears 74b, 74c, and 74d that sequentially transmit the rotational drive force from the worm gear 74a.

[0066] The second sub-gear train 75 receives the rotational drive force from the first sub-gear train 74 and transmits the rotational drive force to the capstan roller 61 of the conveying roller pair 53. This second sub-gear train 75 is made up of a gear 75a that rotates upon receiving the rotational drive force from the gear 74d that constitutes the first sub-gear train 74. Note that while in this embodiment the second sub-gear train 75 is made up of one gear 75a, this is not limiting and the second sub-gear train 75 may be made up of a plurality of gears that sequentially transmit the rotational drive force from the gear 74d.

[0067] As shown in Fig. 15, one end 61d of the rotating shaft 61c of the capstan roller 61 is formed in a D-cut shape. The one end 61d protrudes from the device housing 56 (see Fig. 16). The gear 75a has a fitting hole 77. By fitting the one end 61d into the fitting hole 77, the gear 75a is connected to the rotating shaft 61c.

[0068] The third sub-gear train 76 receives the rotational driving force from the first sub-gear train 74 and transmits the rotational driving force to the unfolding roller pair 54. The third sub-gear train 76 is made up of a gear 76a that rotates upon receiving the rotational driving force from the gear 74d that constitutes the first sub-gear train 74, and gears 76b, 76c, 76d, and 76e that transmit the rotational driving force from the gear 76a.

[0069] The unfolding rollers 63, 64 have one end 63d, 64d of the rotation shaft formed in a D-cut shape. The one end 63d, 64d protrudes from the device housing 56 (see FIG. 16). The gears 76e, 76d have fitting holes 78a, 78b. The gears 76e, 76d are connected to the unfolding rollers 63, 64 by fitting the one end 63d, 64d into the fitting holes 78a, 78b.

[0070] The roller drive mechanism 52 transmits the rotational drive force from the DC motor 71 partway through the first sub-gear train 74, and then transmits the rotational drive force from the first sub-gear train 74 to the capstan roller 61 through the second sub-gear train 75 and to the spreading rollers 63, 64 through the third sub-gear train 76. Therefore, the rotational drive force from the DC motor 71 is transmitted to the capstan roller 61 through the second sub-gear train 75. On the other hand, the rotational drive force from the DC motor 71 is transmitted to the spreading rollers 63, 64 through the third sub-gear train 76. In this way, the paths of the rotational drive force transmitted to the capstan roller 61 and the spreading rollers 63, 64 are different.

[0071] Meanwhile, in consideration of the miniaturization and space saving of the roller drive mechanism 52, the second sub-gear train 75 and the third sub-gear train 76 are arranged at different positions in the X direction and at positions where they at least partially overlap in the Y and Z directions. Therefore, it is preferable that the second sub-gear train 75 and the third sub-gear train 76 are journaled by separate members so that their reaction forces do not affect each other.

[0072] 16 , the gear 75a of the second sub-gear train 75 is journaled on the device housing 56, and the gears 76a to 76c of the third sub-gear train 76 are journaled on a gear plate 73 that is separate from the cover member 60. As described above, the gears 76e and 76d are journaled on the unfolding rollers 63 and 64. The first sub-gear train 74 is journaled on the device housing 56.

[0073] 17, gear plate 73 has positioning hole 73a, fixing holes 73b, 73c, and support holes 73d, 73e, and 73f. Positioning hole 73a and fixing holes 73b, 73c correspond to the fixed portion in the claims, and support holes 73d, 73e, and 73f correspond to the bearing portion in the claims. Hereinafter, positioning hole 73a, fixing holes 73b, 73c, and support holes 73d, 73e, and 73f will be collectively referred to as reference holes.

[0074] The gear plate 73, like the device housing 56 and the cover member 60, is made of a resin material, preferably a polycarbonate resin, and more preferably a glass fiber reinforced polycarbonate resin containing 20% ​​glass fiber.

[0075] The gear plate 73 has linearly formed portions connecting the reference holes, namely, a portion 73g connecting the positioning hole 73a and the support hole 73d, a portion 73h connecting the positioning hole 73a and the support hole 73f, and a portion 73i connecting the fixing hole 73c and the support hole 73f.

[0076] 18, a positioning pin 80 is provided on the device housing 56. The positioning pin 80 is fitted into the positioning hole 73a of the gear plate 73, and abuts against bosses of female screws 83 and 84, which will be described later. This positions the gear plate 73 in the X direction. The support holes 73d, 73e, and 73f are bearings that support the rotation shafts of the gears 76a to 76c of the third sub-gear train 76.

[0077] Male screws 81 and 82 are attached to the fixing holes 73b and 73c of the gear plate 73. The male screws 81 and 82 are fastened to female screws 83 and 84 of the device housing 56. This fixes the gear plate 73 to the device housing 56. As will be described later, one of the male screws 82 also serves to fasten the cover member 60, and is fastened to the device housing 56 through the fixing hole 60a of the cover member 60 and the fixing hole 73b of the gear plate 73. The fixing portions that fix the gear plate 73 to the device housing 56 are not limited to two locations, the fixing holes 73b and 73c, but may be three or more locations.

[0078] As described above, the device housing 56 supports the first sub-gear train 74 and the second sub-gear train 75. The unfolding rollers 63, 64 support the gears 76e, 76d. The gear plate 73 supports the rotation shafts of the gears 76a to 76c of the third sub-gear train 76 and is fixed to the device housing 56.

[0079] A drive transmission gear train 72 is journaled to the device housing 56 directly or via unfolding rollers 63, 64 and a gear plate 73, and a cover member 60 is fixed to the device housing 56. The cover member 60 is formed in a box shape that covers the drive transmission gear train 72. The cover member 60 has a plurality of fixing holes 60a.

[0080] Male screws 82 are attached to the fixing holes 60a of the cover member 60. The male screws 82 are fastened and fixed to the female screws 84, 85 of the device housing 56. In this way, the cover member 60 is fixed to the device housing 56.

[0081] As shown in Figure 19, when the drive transmission gear train 72 is attached to the device housing 56 and the gear plate 73 and cover member 60 are fixed to the device housing 56, the second sub-gear train 75 is located inside the gear plate 73, i.e., on the side of the gear plate 73 facing the device housing 56. On the other hand, the third sub-gear train 76 is located outside the gear plate 73, i.e., on the side opposite the device housing 56. Also, some of the first sub-gear trains 74 are located inside the gear plate 73, while others are located outside. Note that in Figure 19, to avoid complication, a cross-sectional view of the cover member 60 is omitted and is represented by a two-dot chain line.

[0082] As described above, in the digital camera with printer 10, the gears 76a-76c, which are part of the drive transmission gear train 72, are fixed to the device housing 56 while being pivotally supported by the plate-shaped gear plate 73. Therefore, during drive transmission, a reaction force acting between the rotating gears 76a-76c acts on the gear plate 73, but the plate-shaped, highly rigid gear plate 73 is less likely to bend, and fluctuations in the position of the pivotally supported gears 76a-76c can be suppressed. This makes it possible to improve the accuracy with which the transport roller pair 53 feeds the instant film 28 and prevent uneven spreading of the developer by the spreading roller pair 54, thereby improving image quality.

[0083] In conventional printers, when the gears are supported only by a cover member that covers the device housing or the drive transmission gear train, the cover member is formed in a box shape, so the gears are supported by a portion located on the outside of the cover member (the portion located on the opposite side of the drive transmission gear train from the device housing), and since the distance from the rising edge on the device housing side to the bearing portion is large, the cover member is prone to bending, and the position of the supported gears fluctuates greatly.In contrast, in the present invention, the gears are supported by a gear plate 73 that is separate from the cover member 60 described above, so this does not happen.

[0084] As described above, the gear plate 73 has linearly formed portions connecting the reference holes. By forming the portions connecting the reference holes linearly and eliminating recesses along the way, it is possible to prevent the gear plate 73 from bending and improve its rigidity. This shape also allows for a streamlined shape that does not interfere with other components. Furthermore, in this embodiment, the positioning hole 73a, the fixing hole 73c, and the support hole 73f are positioned as vertices, and linearly formed portions are formed between them, so that the gear plate 73 is formed in a substantially triangular shape. This makes the gear plate 73 even more resistant to bending and highly rigid. The overall shape of the gear plate 73 is not limited to this, and as long as the portions connecting the reference holes are linearly formed, this shape can be changed as appropriate depending on the arrangement of the reference holes.

[0085] Furthermore, since the first and second sub-gear trains 74 to 76 are dispersedly disposed on the inside and outside of the gear plate 73, the reaction force from the gears acting on the gear plate 73 is small. This further reduces the positional fluctuations of the axially supported gears 76a to 76c.

[0086] Furthermore, by supporting the gears with the gear plate 73, the degree of freedom in the layout of the gears that make up the drive transmission gear train 72 is increased, and gears of different paths can be arranged close to each other. This makes it possible to reduce the number of gears, thereby reducing costs. The gear plate 73 can be made thinner than the cover member 60 and still maintain its rigidity, so it can be made thinner, thereby saving space in the width direction of the printer unit 13. Furthermore, since the gears are supported by the gear plate 73, the strength of the cover member 60 can be reduced, thereby improving the external design.

[0087] In the above embodiment, the gear plate 73 supports the rotation shaft of the gears that make up the drive transmission gear train 72, but it is not limited to this, and it may support either the rotation shaft of the conveying roller pair 53 or the rotation shaft of the spreading roller pair 54. Also, in the above embodiment, an example in which the invention is applied to a digital camera with a printer is shown. AppointmentHowever, the present invention is not limited to this and may be applied to a printer device alone.

[0088] In the above embodiment, the hardware structure of a processing unit that executes various processes, such as the control unit 59, is various processors as follows: The various processors include a CPU (Central Processing Unit), which is a general-purpose processor that executes software (programs) and functions as various processing units, a GPU (Graphical Processing Unit), a programmable logic device (PLD), which is a processor whose circuit configuration can be changed after manufacturing, such as an FPGA (Field Programmable Gate Array), and a dedicated electric circuit, which is a processor having a circuit configuration designed specifically for executing various processes.

[0089] A single processing unit may be configured with one of these various processors, or may be configured with a combination of two or more processors of the same or different types (for example, multiple FPGAs, a combination of a CPU and an FPGA, or a combination of a CPU and a GPU). Also, multiple processing units may be configured with a single processor. Examples of multiple processing units configured with a single processor include, first, a configuration in which one or more CPUs and software are combined to form a single processor, as typified by client or server computers, and this processor functions as multiple processing units. Second, a configuration in which a processor is used to realize the functions of an entire system including multiple processing units on a single IC (Integrated Circuit) chip, as typified by a system-on-chip (SoC). In this way, the various processing units are configured with one or more of the above-mentioned various processors as a hardware structure.

[0090] Furthermore, the hardware structure of these various processors is, more specifically, an electric circuit in the form of a combination of circuit elements such as semiconductor elements. [Explanation of symbols]

[0091] 10. Digital camera with printer 11 Camera body 12 Imaging unit 13 Printer section 15 Imaging window 16A release switch 16B Release switch 17 Rear display 18 Control section 18a Menu switch 18b Print switch 19 Imaging optical system 20 Solid-state imaging element 21 Film outlet 22 Loading lid 22a Film holder 22c Hinge part 23 Film Pack Room 23a, 23b both sides 23c notch 23d Positioning protrusion 23e bottom 23f Elastic member 23g top 23h notch 24 instant film packs 24a, 24b side 24c protrusion 24e Top 26 cases 27 Film pressure plate 27a sheet 27b seat 27c aperture 27d hole 27e aperture 27f hole 27g lower end 27h Lower end 28 Instant Film 28a Exposure surface 30 Film Cover 31 Case material 31a Exposure aperture 31b Notch 31c outlet 31d Light-blocking sticker 32 Lid 32a aperture 32b Unit support protrusion 32c rivet pin 32d support piece 33 Mask Sheet 33a Screen aperture 34 Photosensitive sheet 35 Cover Sheet 36 Developer Pod 37 Trap section 38 Developer 39 Gap 40 Image observation surface 51 Exposure head 52 Roller drive mechanism 53 Conveyor roller pair 54 Spreading roller pair 55 Deployment control member 55a Support member 56 Equipment housing 57 Claw member 58 Ejection Guide 59 Control Unit 60 Cover member 60a fixing hole 61 Capstan Roller 61a Spike crawler member 61b Drive gear 61c Rotating shaft 61d One end 62 Pinch roller 62a Roller member 62b Drive gear 62c Rotating axis 63, 64 Unfolding roller 63d, 64d One end 66 Spring 67 Spring 71 DC motor 72 Drive transmission gear train 73 Gear Plate 73a Positioning hole 73b, 73c fixing hole 73d, 73e, 73f support hole The part connecting 73g, 73h, and 73i 74 1st Sub-Gear Train 74a worm gear 74b, 74c, 74d gear 75 Second sub-gear train 75a gear 76 3rd sub gear train 76a~76e gear 77 Fitting hole 78a, 78b fitting hole 80 Locating pin 81, 82 Male thread 83, 84, 85 Female thread

Claims

1. A printer device that exposes an image onto an instant film having a developer pod containing a developer, and that spreads the developer, a conveying roller for conveying the instant film toward an outlet; a developer pod spreader disposed downstream of the transport roller in the transport direction, the developer pod spreader configured to spread the developer by sandwiching the instant film therebetween and squeezing the developer pod; a device housing containing a conveying roller and a spreading roller; a roller drive mechanism attached to the device housing and having a drive transmission gear train that drives the conveying roller and the spreading roller; a cover member that covers the roller drive mechanism, the roller drive mechanism includes a plate-shaped gear plate that is separate from the cover member, is fixed to the device housing at at least two locations, and supports at least one of a rotation shaft of the conveying roller, a rotation shaft of the unfolding roller, and a rotation shaft of the drive transmission gear train; the roller drive mechanism includes a motor serving as a drive source and the drive transmission gear train; The drive transmission gear train includes: a first sub-gear train that transmits a rotational driving force from the motor; a second sub-gear train that receives the rotational driving force from the first sub-gear train and transmits the rotational driving force to the conveying roller; a third sub-gear train that receives the rotational driving force from the first sub-gear train and transmits the rotational driving force to the unfolding roller; A printer device in which the rotation shaft of the second sub-gear train is supported by the device housing, and the rotation shaft of the third sub-gear train is supported by a gear plate.

2. The printer device according to claim 1, wherein the gear plate has a fixed portion for fixing to the device housing and a bearing portion for supporting at least one of the rotating shafts, and the portions connecting the fixed portions, the bearing portions, or the fixed portions and the bearing portions are formed in a straight line.

3. 3. A printer device according to claim 1, wherein the gear provided on the rotation shaft of the conveying roller, the gear provided on the rotation shaft of the unfolding roller, and the drive transmission gear train are arranged on the device housing side and on the opposite side of the device housing relative to the gear plate.

4. A printer device that exposes an image onto an instant film having a developer pod containing a developer, and that spreads the developer, a conveying roller for conveying the instant film toward an outlet; a developer pod spreader disposed downstream of the transport roller in the transport direction, the developer pod spreader configured to spread the developer by sandwiching the instant film therebetween and squeezing the developer pod; a device housing containing a conveying roller and a spreading roller; a roller drive mechanism attached to the device housing and having a drive transmission gear train that drives the conveying roller and the spreading roller; a cover member that covers the roller drive mechanism, the roller drive mechanism includes a plate-shaped gear plate that is separate from the cover member, is fixed to the device housing at at least two locations, and supports at least one of a rotation shaft of the conveying roller, a rotation shaft of the unfolding roller, and a rotation shaft of the drive transmission gear train; the roller drive mechanism includes a motor serving as a drive source and the drive transmission gear train; The drive transmission gear train includes: a first sub-gear train that transmits a rotational driving force from the motor; a second sub-gear train that receives the rotational driving force from the first sub-gear train and transmits the rotational driving force to the conveying roller; a third sub-gear train that receives the rotational driving force from the first sub-gear train and transmits the rotational driving force to the unfolding roller; the second sub-gear train is disposed on the device housing side with respect to the gear plate, The third sub-gear train is disposed on the opposite side of the device housing with respect to the gear plate.

5. 5. A digital camera with a printer, comprising: a printer device according to claim 1; and an imaging unit having an imaging optical system, capturing an image of a subject, and outputting image data to the printer device.

Citation Information

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