Developing apparatus having a frame portion with varied thickness, and process cartridge thereof
09791826 · 2017-10-17
Assignee
Inventors
Cpc classification
G03G21/181
PHYSICS
International classification
Abstract
A process cartridge including a first frame member molded by pouring a resin from a gate; a conductive sheet adhered integrally to a sheet adhering portion of the first frame member by molding of the resin; and a second frame member configured to define a toner storage portion by being coupled with the first frame member, wherein, the first frame member includes a bent portion at the sheet adhering portion, and a portion of the first frame member different in thickness is provided at an adjacent position to the adhering portion.
Claims
1. A developing apparatus comprising: a first frame member molded by pouring resin from a gate, with a conductive sheet integrally adhered by the resin; and a second frame member configured to define a toner storage portion by being coupled with the first frame member, wherein the first frame member includes a bent portion to which the conductive sheet is adhered, and a thickness varied portion and wherein the thickness varied portion is formed adjacent to the conductive sheet and between the conductive sheet and the gate.
2. The developing apparatus according to claim 1 wherein an amount of variation in thickness of the thickness varied portion having a reduced thickness falls within a range from 0.2 mm to 0.5 mm with respect to a standard thickness.
3. The developing apparatus according to claim 1, wherein the thickness varied portion having the reduced thickness is on a line connecting the gate trace and the bent portion closest to the gate trace.
4. The developing apparatus according to claim 1 wherein a width of the thickness varied portion having a reduced thickness is at least 20 mm.
5. The developing apparatus according to claim 1, wherein the thickness varied portion includes a portion having a thickness larger than a standard thickness adjacently to the depression having a thickness smaller than the standard thickness.
6. The developing apparatus according to claim 5, wherein the thickness varied portion having an increased thickness is on a line connecting the bent portion at an end of the conductive sheet and the gate trace closest to the bent portion at the end of the conductive sheet.
7. The developing apparatus according to claim 6 wherein a width of the thickness varied portion having the increased thickness is at least 30 mm.
8. A process cartridge comprising: a first frame member molded by pouring resin from a gate, with a conductive sheet integrally adhered by the resin; and a second frame member configured to define a toner storage portion by being coupled with the first frame member, wherein the first frame member includes a bent portion to which the conductive sheet is adhered and a thickness varied portion, and wherein the thickness varied portion is formed adjacent to the conductive sheet and between the conductive sheet and the gate.
9. The process cartridge according to claim 8, wherein the thickness varied portion having a reduced thickness is on a line connecting the gate trace and the bent portion closest to the gate trace.
10. The process cartridge according to claim 8, wherein the thickness varied portion is a portion adjacent to the depression having the reduced thickness and having an increased thickness.
11. The process cartridge according to claim 10, wherein the thickness varied portion having the increased thickness is on a line connecting the bent portion at an end of the conductive sheet and the gate trace closest to the bent portion at the end of the conductive sheet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE EMBODIMENTS
(18) An embodiment of this disclosure will be described below with reference to the drawings in detail.
(19) A direction of an axis of rotation of an electrophotographic photosensitive drum is defined as a longitudinal direction.
(20) In the longitudinal direction, a side where the electrophotographic photosensitive drum receives a driving force from the main body of the image forming apparatus is defined as a driven side, and a side opposite thereto is defined as a non-driven side.
(21) A general configuration and an image forming process will be described with reference to
(22)
(23)
(24) Here, the apparatus main body A of the electrophotographic image forming apparatus is a portion of the electrophotographic image forming apparatus from which the cartridge B is removed.
(25) General Configuration of Electrophotographic Image Forming Apparatus
(26) In
(27) Also, a sheet tray 4 in which a recording medium (hereinafter, referred to as a sheet material P) which is a target of image formation is stored is arranged on a lower side of the cartridge B.
(28) In addition, the apparatus main body A includes a pickup roller 5a, a feed roller pair 5b, a conveyance roller pair 5c, a transfer guide 6, a transfer roller 7, a transfer guide 8, a fixing unit 9, a discharge roller pair 10, and a discharge tray 11 arranged in sequence along a direction of conveyance D of the sheet material P. The fixing unit 9 includes a heat roller 9a and a pressurizing roller 9b.
(29) Image Formation Process
(30) Subsequently, the image forming process is described schematically. On the basis of a print start signal, the electrophotographic photosensitive drum (hereinafter, referred to as a drum 62) is driven to rotate at a predetermined circumferential velocity (process speed) in a direction indicated by an arrow R.
(31) A charging roller 66 to which a bias voltage is applied, comes into contact with an outer peripheral surface of the drum 62, and charges an outer peripheral surface of the drum 62 uniformly and evenly.
(32) The exposure unit 3 outputs a laser beam L in accordance with image information. The laser beam L passes through an exposure window portion 74 on an upper surface of the cartridge B, and scans and exposes the outer peripheral surface of the drum 62.
(33) Accordingly, an electrostatic latent image corresponding to the image information is formed on the outer peripheral surface of the drum 62.
(34) In contrast, as illustrated in
(35) The toner T is born on a surface of a developing roller 32 by a magnetic force of a magnet roller 34 (fixed magnet).
(36) The toner T is controlled in layer thickness on the peripheral surface of the developing roller 32 while being charged by friction by a developing blade 42.
(37) The toner T is transferred to the drum 62 in accordance with the electrostatic latent image, and is visualized as a toner image.
(38) As illustrated in
(39) Then, the sheet material P passes through the transfer guide 6, and is fed to a transfer position between the drum 62 and the transfer roller 7. At this transfer position, toner images are transferred in sequence from the drum 62 to the sheet material P.
(40) The sheet material P to which the toner image is transferred is separated from the drum 62 and conveyed to the fixing unit 9 along the transfer guide 8. The sheet material P then passes through a nip portion between the heat roller 9a and the pressurizing roller 9b which constitute the fixing unit 9.
(41) At the nip portion, pressurization and heat-fixation is performed, so that the toner image is fixed to the sheet material P. The sheet material P subjected to the fixation of the toner image is conveyed to the discharge roller pair 10, and is discharged to the discharge tray 11.
(42) In contrast, as illustrated in
(43) In the above-described description, the charging roller 66, the developing roller 32, and the cleaning blade 77 are process devices acting on the drum 62.
(44) Configuration of Mounting and Demounting of Cartridge
(45) Subsequently, mounting and demounting of the cartridge B with respect to the apparatus main body A will be described with reference to
(46)
(47) The opening and closing door 13 is rotatably mounted on the apparatus main body A. When the opening and closing door 13 is opened, a guide rail 12 is provided, and the cartridge B is mounted in the apparatus main body A along the guide rail 12.
(48) Subsequently, a drive shaft 14 driven by a motor (not illustrated) of the apparatus main body A engages a driving force receiving portion provided on the cartridge B.
(49) Accordingly, the drum 62 coupled to the driving force receiving portion receives a driving force from the apparatus main body A and rotates.
(50) General Configuration of Cartridge
(51) Subsequently, a general configuration of the cartridge B will be described with reference to
(52)
(53) The cartridge B includes the cleaning unit 60 and the developing device unit 20 combined with each other.
(54) The cleaning unit 60 includes a cleaning frame member 71, the drum 62, the charging roller 66, and the cleaning blade 77.
(55) In contrast, the developing device unit 20 includes a lid member 122, a toner storage container 23, a first side member 26L, a second side member 26R, the developing blade 42, the developing roller 32, the magnet roller 34, the conveyance member 43, the toner T and biasing members 46.
(56) The cartridge B is formed by coupling the cleaning unit 60 and the developing device unit 20 with a coupling member 75 so as to be rotatable with each other.
(57) Specifically, rotation holes 26bL and 26bR, extending in parallel with the developing roller 32, are formed at distal ends of arm portions 26aL and 26aR formed on the first side member 26L and the second side member 26R provided on the developing device unit 20 at both ends thereof in the longitudinal direction.
(58) Fitting holes 71a for fitting coupling members 75 are formed at both ends of the cleaning frame member 71 in the longitudinal direction.
(59) The cleaning unit 60 and the developing device unit 20 are coupled so as to be capable of rotating about the coupling members 75 by aligning the arm portions 26aL and 26aR to predetermined positions of the cleaning frame member 71 and inserting the coupling members 75 into the rotation holes 26bL and 26bR and the fitting holes 71a.
(60) At this time, the biasing members 46 mounted at roots of the arm portions 26aL and 26aR abut against the cleaning frame member 71, thereby biasing the developing device unit 20 toward the cleaning unit 60 about the coupling members 75 as a center of rotation.
(61) Accordingly, the developing roller 32 is reliably pressed in the direction of the drum 62.
(62) Developing Device Unit
(63) Subsequently, a configuration of the developing device unit 20 of this disclosure will be described with reference to
(64) When molding the first frame member, the conductive sheet 24 is preferably molded by inserting the conductive sheet 24 into the mold in advance so that the conductive sheet is molded in a state of being adhered to (being molded integrally with) a molded article at the time of molding of the first frame member.
(65) As illustrated in
(66) The conductive sheet 24 may be a conductive sheet having a three-layer structure including a PS resin sandwiched between conductive layers of PS resin mixed with carbon black, or may be a conductive sheet having a single-layer structure formed of an EVA resin mixed with carbon black. The conductive sheet 24 may also be a conductive sheet having a two-layer structure formed of PS resin printed with carbon black. The entire thickness of the conductive sheet 24 preferably falls within a range from 0.05 mm to 0.3 mm. The conductive sheet 24 is not limited to those described above, and any conductive sheet may be used as long as it follows the molding by the application of resin pressure, and is fixed to the first frame member (lid member) 122 at least with a certain level of strength after molding.
(67)
(68) A portion where the conductive sheet 24 is adhered to includes a bent portion 44 at an arcuate angle between a R-shape 441 for allowing the rotation of a toner stirring conveyance member 43 (see
(69) Most part of the first frame member (lid member) 122 is formed at a uniform thickness (M). The uniform thickness (M) is referred to as a basic thickness here. The basic thickness preferably falls within a range from 1.0 mm to 3.0 mm.
(70) Subsequently, an amount-of-remaining-toner sensing system will be described with reference to
(71) As described above, the first frame member (lid member) 122 adhered to the conductive sheet 24 is fixed by means such as welding to the toner storage container 23, which corresponds to a second frame member, as illustrated in
(72) The developing roller 32 having a conductivity arranged so as to oppose the conductive sheet 24 is supported by bearing members 37 and 38 as illustrated in
(73) In this embodiment, hollow aluminum is used for the developing roller 32 and conductive resin is used for a bearing member 38 on the non-driven side as materials, and an outer periphery 38a of the bearing member 38 supports an inner periphery of the non-driven side of the developing roller 32.
(74) When the cartridge B is inserted into the apparatus main body A, a development contact spring, which is not illustrated, electrically connected to the circuit in the apparatus main body A comes into abutment with a lower surface c of the bearing member 38 (
(75) The contact portion b of the conductive sheet 24 (see
(76)
(77) The cartridge includes a first chamber 9001 configured to store the toner therein, a second chamber 9002 in which the developing roller 32 is mounted, and an opening portion 9003 formed between the first chamber and the second chamber, and is configured in such a manner that the toner T is supplied from the first chamber 9001 through the opening portion 9003 to the second chamber 9002 to cause the toner T adhered to the developing roller 32.
(78) The first chamber 9001 is defined by a frame member formed with the conductive sheet 24 adhered to a portion adjacent to the opening portion 9003.
(79) The portion adjacent to the opening portion 9003 needs to be provided with the upright wall 442 so as to extend along a wall between the R-shape 441 for allowing the toner stirring conveyance member 43 to rotate and the second chamber 9002, and hence the bent portion 44 at an acute angle is included between the curved shape (R-shape) 441 and the upright wall 442.
(80) Since the shape is abruptly varied from a highest portion of the acute angled bent portion, the amount of remaining toner may be measured effectively by adhering the conductive sheet 24 to the bent portion 44 between the curved surface shape (R-shape) 441 and the upright wall 442.
(81) When molding the first frame member (lid member) 122, a thickness varied portion 45 is formed between a gate (or a trace of the gate (gate trace)) 102 for allowing the resin to flow into a space (cavity) having the shape of the first frame member and a portion to which the conductive sheet 24 is adhered. The gate trace for allowing the resin into the cavity for molding the first frame member (molded article) may remain on the first frame member (molded article). In this specification, the gate and the gate trace remaining on the molded article are collectively referred to as “gate”.
(82) When an AC voltage is applied to the developing roller 32, a current corresponding to the electrostatic capacitance between the developing roller 32 and the conductive sheet 24 is induced therebetween. The electrostatic capacitance changes in accordance with the amount of the toner T between the developing roller 32 and the conductive sheet 24. Therefore, by measuring the current value with the amount-of-remaining-toner sensing unit (not illustrated), the toner remaining amount T between the developing roller 32 and the conductive sheet 24 may be sensed successively.
(83) Description about Thickness Varied Portion (Portion where the Thickness is Different
(84)
(85) The adjacent portion to the sheet adhering portion 446 corresponds to an area Z ranging from the gates 102 and 103 for allowing the resin to flow into the space (cavity) having the shape of the first frame member when molding the first frame member (lid member) 122 to the sheet adhering portion.
(86) The thickness varied portion preferably includes a portion 45a reduced in thickness from the thickness of the first frame member on a line N connecting the gate 102 and a bent portion closest to the gate 102. A depressed amount (amount of thickness variation) t1 of a portion having a reduced thickness preferably falls within a range from 0.2 mm to 0.5 mm. A width w1 is preferably at least 20 mm. A portion 45b having a larger thickness may be provided adjacently to the portion having a reduced thickness. The portion having a larger thickness is preferably on a line F connecting the bent portion at an end of the conductive sheet 24 and the gate 102 closest to the bent portion at the end of the conductive sheet 24. A width w2 of the portion 45b is preferably at least 30 mm.
(87) Method of Manufacturing Molded Article (First Frame Member (Lid Member))
(88) Subsequently, a method of manufacturing the molded article (first frame member (lid member)) 122 will be described. The first frame member (lid member) 122 is molded by inserting the conductive sheet in a cavity in the molding in advance, then pouring resin into the cavity. Accordingly, the first frame member (lid member) 122 provided with the conductive sheet adhered thereto (adhered integrally thereto) is manufactured.
(89)
(90) Reference numeral 35 denotes a first molding, reference numeral 36 denotes a second molding, and reference numeral 1002 denotes a gate. The first molding 35 and the second molding 36 have a shape which forms a surface shape of the first frame member (lid member) 122 when being transferred. The conductive sheet 24 is inserted into the molding in advance when the molding is in an opened state. The conductive sheet 24 may be fixed to the first molding 35 by forming a fine air hole at a portion S and coupling the fine air hole to a suction unit, which is not illustrated. Here, the conductive sheet 24 is fixed to the first molding 35 for shortening a molding cycle by enabling the conductive sheet 24 to be set to the first molding 35 after infusion of the resin has been completed and while the second molding 36 is opened. Therefore, it is not necessarily required to fix the conductive sheet 24 to the first molding 35, and may be fixed to the second molding 36. A known method may also be used instead of the methods described above.
(91) Subsequently, the first molding 35 and the second molding 36 are mated (the moldings is closed). Fused resin is poured into a cavity 1001 defined by mating the moldings is filled with the fused resin from a gate 1002 to mold the first frame member (lid member) 122. When the first molding 35 and the second molding 36 are mated, the first molding 35 and the second molding 36 oppose each other at a distance M. Accordingly, the first frame member (lid member) 122 having a thickness M can be molded.
(92) In the embodiment disclosed here, the second molding 36 includes a shape 110 for forming a portion which changes the interval of the distance M (the portion where the thickness is varied (thickness varied portion) formed in the adjacent portion to a portion in which the conductive sheet 24 is inserted, which corresponds to a part between the portion and the gate 1002.
(93) Subsequently, an effect achieved by providing the shape for differentiating the distance of the cavity (thickness) (the shape for differentiating the thickness) will be described.
(94) When the conductive sheet without having the shape for differentiating the thickness is integrally molded, the difference in resistance value within the conductive sheet is significant, whereby sensed values of the amount of the residual toner may vary accordingly. As a result of research, the following causes are found.
(95)
(96) Reference numeral 244g denotes a portion having a shape for transferring the bent portion 44 of the first frame member (lid member) 122 in the first molding at a shortest distance from the gate 2002, which is at the closest position from a sheet end. Reference numeral 237g denotes a portion having a shape for transferring the bent portion 44 of the first frame member (lid member) 122 in the second molding.
(97) Reference numeral 244e denotes a portion having a shape for transferring the bent portion 44 of the first frame member (lid member) 122 in the first molding at the end of the conductive sheet, and reference numeral 237e denotes a portion having a shape for transferring the bent portion 44 of the first frame member (lid member) 122 in the second molding.
(98) In a case where the thickness from the gate 2002 to a portion having a shape for transferring a bent portion is uniform, the fused resin flows concentrically. Subsequently, the resin first reaches the portions 244g and 237g having a shape for transferring the bent portion closest to the gate 2002. At this time, a conductive sheet 224 is located on the second molding side 237g (
(99) The surface resistance value of the conductive sheet 224 at a bent portion 244 of the first frame member (lid member) taken out from the molding was measured. The result is shown by a dot line 136 in
(100) Therefore, in the embodiment, a shape for varying (differentiating) the thickness is provided between the gate and the portion having a shape for transferring a bent portion so as to reduce the difference in times of resin reaching the portion having a shape for transferring a bent portion.
(101) The shape for varying (differentiating) the thickness for forming the thickness varied portion will be described in detail below.
(102)
(103) Reference numeral 110 denotes a shape for differentiating the thickness formed in the molding, which is provided adjacent to the portion where the conductive sheet 24 is integrally adhered by the resin. The term “adjacent” means an area MW from an end of the portion where the conductive sheet is adhered to the gate.
(104) In the embodiment disclosed here, an example in which a shape 110a for differentiating the thickness by a projecting shape having a projecting shape is formed in the second molding will be described. The shape 110a is formed on a line MN connecting a portion 44g having a shape for transferring the bent portion 44 of the first frame member (lid member) 122 in the second molding at the shortest distance from the gate 1002, which is located at the closest position from the sheet end, and the gate 1002. A projecting amount of the shape for differentiating the thickness by the projecting shape is preferably set to fall within a range from 0.2 mm to 0.5 mm. A width mw1 of the shape for differentiating the thickness by the projecting shape is preferably set to 20 mm or more.
(105) In addition, a shape 110b for differentiating the thickness by a depressed shape, which is formed by depressing the second molding, may be formed at the end of the conductive sheet and the gate 1002 on a line MF connecting a portion 44e having a shape for transferring the bent portion 44 of the first frame member (lid member) 122 in the second molding. A width mw2 of a shape for differentiating the thickness by the depressed shape is preferably set to 30 mm or more.
(106) The flow of the resin is differentiated by the shape for differentiating the thickness. Specifically by forming the shape for differentiating the thickness by the projecting shape in the second molding, the flow of the resin may be restrained. Specifically by forming the shape for differentiating the thickness by the depressed shape in the second molding, the flow of the resin may be accelerated. The shape for differentiating the thickness may be formed in the first molding. By forming the shape for differentiating the thickness by the projecting shape in the first molding, the flow of the resin may be restrained. By forming the shape for differentiating the thickness by the depressed shape in the first molding, the flow of the resin may be accelerated.
(107) By forming the shape 110 for differentiating the thickness in the molding as described above in the mold, the difference at a distal end 2010 of the resin toward a portion 441 having a shape for transferring the bent portion is reduced in comparison with
(108) The first frame member (lid member) was molded with the molding in which the shape 110 for differentiating the thickness illustrated in
(109) Subsequently, a method of molding the contact portion 24b of the conductive sheet 24 will be described. A holding pin is arranged in the first molding in order to press the contact portion 24b of the conductive sheet reliably against the second molding. The holding pin is configured to be fixed at the contact portion 24b to the second molding by a spring force in a step in which the molding is closed. With a configuration in which a cavity is filled with resin so as to cause the holding pin to be retracted by a resin pressure in the step in which the molding is closed, the contact portion 24b is exposed to the surface b on the back when molding.
(110) Although the first frame member (lid member) is molded and manufactured by the method of manufacturing the molded article of the embodiment disclosed here, the method is not limited thereto.
EXAMPLE
(111) Subsequently, Examples will be described. A simulation was performed by varying the shape of the shape 110 for differentiating the thickness illustrated in
Example 1 to Example 5, Comparative Example
(112) A simulation using a molding shape having the shape 110a for differentiating the thickness by the projecting shape illustrated in
(113) TABLE-US-00001 TABLE 1 difference 44g reaching 44e reaching in reaching mt1(mm) time (s) time (s) time (s) Example 1 0.1 1.196 1.679 0.483 Example 2 0.2 1.26 1.659 0.399 Example 3 0.3 1.323 1.659 0.336 Example 4 0.4 1.365 1.66 0.295 Example 5 0.5 1.367 1.661 0.294 Comparative 0 1.154 1.7 0.546 Example
(114) From Table 1, in comparison with a case where the shape for differentiating the thickness is not provided, it was found that the difference in reaching time to 44g and the reaching time to 44e was reduced when the shape for differentiating the thickness is provided. Accordingly, the change in thickness of the sheet by solidification of the resin is restrained. Also, in order to achieve a better effect, it was found that the projecting amount (amount of thickness variation) mt1 of the shape for differentiating the thickness is preferably set to fall within a range from 0.2 mm to 0.5 mm.
Example 6 to Example 10
(115) A simulation using a molding shape having the shape 110a for differentiating the thickness by the projecting shape illustrated in
(116) TABLE-US-00002 TABLE 2 difference 44g reaching 44e reaching in reaching mt1(mm) time (s) time (s) time (s) Example 6 10 1.183 1.7 0.517 Example 7 20 1.28 1.679 0.399 Example 8 30 1.323 1.659 0.336 Example 9 40 1.386 1.658 0.272 Example 10 50 1.364 1.658 0.294
(117) From Table 2, in comparison with a case where the shape for differentiating the thickness was not provided (see Comparative Example in Table 1), it was found that the difference in reaching time to 44g and the reaching time to 44e was reduced when the shape for differentiating the thickness was provided. Accordingly, the change in thickness of the sheet by solidification of the resin is restrained. Also, in order to achieve a better effect, it was found that the width mw1 of the shape for differentiating the thickness was preferably set to be not smaller than 20 mm.
Example 11 to Example 13
(118) A simulation using a molding shape having the shape 110a for differentiating the thickness by the projecting shape illustrated in
(119) TABLE-US-00003 TABLE 3 difference 44g reaching 44e reaching in reaching mt1(mm) time (s) time (s) time (s) Example 11 6 1.218 1.68 0.462 Example 12 12 1.323 1.659 0.336 Example 13 15 1.346 1.661 0.315
(120) From Table 3, in comparison with a case where the shape for differentiating the thickness was not provided (see Comparative Example in Table 1), it was found that the difference in reaching time to 44g and the reaching time to 44e was reduced. Accordingly, the change in thickness of the sheet by solidification of the resin is restrained.
Example 14 to Example 16
(121) A simulation using a molding shape having the shape 110a for differentiating the thickness by the projecting shape illustrated in
(122) The time from a moment when the resin started to fill a cavity from the gate to a moment when the distal end of the resin (flow front) reaches the portion 44g having a shape for transferring the bent portion closest from the gate was obtained by the simulation. Also, the time from a moment when the resin started to fill a cavity from the gate to a moment when the resin reaches the portion 44e having a shape for transferring the bent portion at the sheet end was obtained by the simulation. Subsequently, the difference in reaching time was obtained. The result is shown in Table 4
(123) TABLE-US-00004 TABLE 4 Mt1(mm) difference *Number 44g reaching 44e reaching in reaching of Pieces time (s) time (s) time (s) Example 14 □6*30*2 1.324 1.66 0.336 Example 15 □20*7*3 1.238 1.679 0.441 Example 16 ◯7*3 1.239 1.68 0.441
(124) From Table 4, in comparison with a case where the shape for differentiating the thickness was not provided (see Comparative Example in Table 1), it was found that the difference in reaching time to 44g and the reaching time to 44e was reduced. Accordingly, the change in thickness of the sheet by solidification of the resin is restrained.
Example 17 to Example 20
(125) A simulation with a molding shape having a shape for differentiating the thickness provided with the shape 110b for differentiating the thickness by the depressed shape adjacently to the shape 110a for differentiating the thickness by the projecting shape illustrated in
(126) TABLE-US-00005 TABLE 5 difference 44g reaching 44e reaching in reaching mw2 time (s) time (s) time (s) Example 17 10 1.24 1.661 0.421 Example 18 20 1.261 1.619 0.358 Example 19 30 1.284 1.578 0.294 Example 20 40 1.284 1.558 0.274
(127) From Table 5, in comparison with a case where the shape for differentiating the thickness was not provided (see Comparative Example in Table 1), it was found that the difference in reaching time to 44g and the reaching time to 44e was reduced. In Embodiment 19 and Embodiment 20, it was found that the difference in reaching time is reduced in comparison with a case where the shape 110b for differentiating the thickness is not provided (see Example 12). From these reasons, a width of a shape for differentiating the thickness by the depressed shape is preferably 30 mm or more.
Example 21 to Example 23
(128) A simulation with a molding shape having a shape for differentiating the thickness provided with the shape 110b for differentiating the thickness by the depressed shape adjacently to the shape 110a for differentiating the thickness by the projecting shape illustrated in
(129) TABLE-US-00006 TABLE 6 difference 44g reaching 44e reaching in reaching mt2 time (s) time (s) time (s) Example 21 0.2 1.282 1.64 0.358 Example 22 0.3 1.261 1.619 0.358 Example 23 0.5 1.242 1.599 0.357
(130) From Table 6, in comparison with a case where the shape for differentiating the thickness was not provided (see Comparative Example in Table 1), it was found that the difference in reaching time to 44g and the reaching time to 44e was reduced when the shape for differentiating the thickness is provided. Variations on the basis of the projecting amount were not much observed.
Example 24
(131) A simulation with a molding shape having a shape for differentiating the thickness provided with the shape 110b for differentiating the thickness by the depressed shape adjacently to the shape 110a for differentiating the thickness by the projecting shape illustrated in
(132) TABLE-US-00007 TABLE 7 difference 44g reaching 44e reaching in reaching ml2 time (s) time (s) time (s) Example 24 20 1.22 1.578 0.358
(133) From Table 7, in comparison with a case where the shape for differentiating the thickness was not provided (see Comparative Example in Table 1), it was found that the difference in reaching time to 44g and the reaching time to 44e was reduced when the shape for differentiating the thickness was provided. Variations on the basis of the length were not much observed.
Example 25
(134) A simulation with a molding shape having a shape for differentiating the thickness only by the shape 110b for differentiating the thickness by the depressed shape was performed without providing the shape 110a for differentiating the thickness illustrated in
(135) TABLE-US-00008 TABLE 8 difference 44g reaching 44e reaching in reaching mt2 time (s) time (s) time (s) Example 25 0.3 1.155 1.639 0.484
(136) From Table 8, in comparison with a case where the shape for differentiating the thickness was not provided (see Comparative Example in Table 1), it was found that the difference in reaching time to 44g and the reaching time to 44e was reduced when the shape for differentiating the thickness was provided. Accordingly, the change in thickness of the sheet by solidification of the resin is restrained.
Advantageous Effects of the Invention
(137) According to this disclosure, the conductive sheet may be molded integrally with the first frame member (lid member), and hence space saving of the image forming apparatus and improvement of reliability of sensing of the amount of remaining toner are realized in a simple configuration.
(138) While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.
(139) This application claims the benefit of Japanese Patent Application No. 2013-146303, filed Jul. 12, 2013 which is hereby incorporated by reference herein in its entirety.