SANDING TOOL
20230084672 · 2023-03-16
Inventors
- Zhongquan Xu (Nanjing, CN)
- Lingjian Shi (Nanjing, CN)
- Tianliang Liu (Nanjing, CN)
- Mingtan Fu (Nanjing, CN)
- Lisong Zhang (Nanjing, CN)
- Li Xing (Nanjing, CN)
Cpc classification
B24B23/04
PERFORMING OPERATIONS; TRANSPORTING
B24B41/047
PERFORMING OPERATIONS; TRANSPORTING
International classification
B24B55/10
PERFORMING OPERATIONS; TRANSPORTING
B24B23/04
PERFORMING OPERATIONS; TRANSPORTING
B24B41/047
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A sanding tool includes a baseplate assembly, a housing assembly, a drive mechanism, and a fan assembly. The baseplate assembly includes a baseplate. The housing assembly includes a body housing. The housing assembly further includes a functional housing, where a hollow cavity is formed in the functional housing, the functional housing is provided with an inlet and an outlet that communicate with the hollow cavity, the inlet communicates with a dust removal channel of the sanding tool, the outlet is configured to discharge gas in the cavity, and the fan assembly is used for forming a dust removal air path moving towards the inlet. A ratio of an area of a projection of the functional housing on the baseplate to an area of the baseplate is greater than or equal to 0.15 and less than or equal to 0.95.
Claims
1. A sanding tool, comprising: a baseplate assembly comprising a baseplate for mounting a sanding member; a housing assembly comprising a body housing; a drive mechanism disposed in the body housing, wherein the drive mechanism drives the baseplate assembly to move; a fan assembly mounted to the drive mechanism; and a support bracket disposed between the body housing and the baseplate; wherein the housing assembly further comprises a functional housing, a hollow cavity is formed in the functional housing, the functional housing is provided with an inlet and an outlet that communicate with the hollow cavity, the inlet communicates with a dust removal channel of the sanding tool, the outlet is configured to discharge gas in the hollow cavity, the fan assembly is used for forming a dust removal air path moving towards the inlet, a projection of the functional housing on a plane where the baseplate is located is located within the baseplate, and a ratio of an area of a projection of the functional housing on the baseplate to an area of the baseplate is greater than or equal to 0.15 and less than or equal to 0.95.
2. The sanding tool of claim 1, wherein the ratio of the area of the projection of the functional housing on the baseplate to the area of the baseplate is greater than or equal to 0.5 and less than or equal to 0.95.
3. The sanding tool of claim 1, wherein a ratio of an axial height of the functional housing to an axial height of the sanding tool is greater than or equal to 0.3 and less than or equal to 0.85.
4. The sanding tool of claim 2, wherein the functional housing comprises an auxiliary grip at a top end of the functional housing and the auxiliary grip is an inwardly indented recess on the functional housing.
5. The sanding tool of claim 1, wherein the functional housing is snap-fit with the body housing, and the functional housing is further provided with an auxiliary fastener that mates with the baseplate.
6. The sanding tool of claim 1, wherein the functional housing comprises an outer housing disposed on a periphery of the body housing and mating with the body housing to form the hollow cavity.
7. The sanding tool of claim 1, wherein the functional housing comprises an outer housing and an inner housing, the outer housing encloses the inner housing, the hollow cavity is formed between the outer housing and the inner housing, and the inner housing is disposed outside the body housing.
8. The sanding tool of claim 7, wherein an opening is formed between the outer housing and the inner housing, and the functional housing further comprises an end cover covering the opening.
9. The sanding tool of claim 1, wherein a filter and a filter holder for mounting the filter are disposed in the functional housing and the filter is disposed on a moving path of the dust removal air path.
10. The sanding tool of claim 1, further comprising a dust removal assembly disposed at least partially between the baseplate assembly and the functional housing, wherein the dust removal channel is provided with the dust removal assembly.
11. The sanding tool of claim 10, wherein the dust removal assembly comprises a guide portion and a conveying support, the guide portion is provided with a dust inlet, the guide portion is disposed on the baseplate assembly and communicates with a baseplate dust suction opening on the baseplate assembly, the conveying support communicates with the dust inlet of the guide portion, the conveying support is provided with a dust outlet, and the dust outlet interfaces with the inlet.
12. The sanding tool of claim 11, wherein the conveying support is at least partially disposed in the body housing, the conveying support is detachably connected to the body housing, and the conveying support is detachable from the body housing.
13. The sanding tool of claim 1, further comprising a direct current power supply, wherein the drive mechanism is disposed between the direct current power supply and the functional housing.
14. The sanding tool of claim 1, wherein the drive mechanism comprises an electric motor, the sanding tool further comprises a control mechanism for controlling the electric motor and a direct current power supply for powering the electric motor, and the control mechanism is arranged vertically between the electric motor and the direct current power supply.
15. The sanding tool of claim 1, wherein an axial height of the functional housing is greater than or equal to 25 mm and less than or equal to 70 mm.
16. A sanding tool, comprising: a baseplate assembly comprising a baseplate for mounting a sanding member; a housing assembly comprising a body housing; a drive mechanism disposed in the body housing, wherein the drive mechanism drives the baseplate assembly to move; a fan assembly mounted to the drive mechanism; and a support bracket disposed between the body housing and the baseplate; wherein the housing assembly further comprises a functional housing, a hollow cavity is formed in the functional housing, the functional housing is provided with an inlet and an outlet that communicate with the hollow cavity, the inlet communicates with a dust removal channel of the sanding tool, the outlet is configured to discharge gas in the hollow cavity, the fan assembly is used for forming a dust removal air path moving towards the inlet, and a ratio of an axial height of the functional housing to an axial height of the sanding tool is greater than or equal to 0.3 and less than or equal to 0.85.
17. The sanding tool of claim 16, wherein the functional housing comprises an auxiliary grip at a top end of the functional housing and the auxiliary grip is an inwardly indented recess on the functional housing.
18. The sanding tool of claim 16, wherein the functional housing is snap-fit with the body housing, and the functional housing is further provided with an auxiliary fastener that mates with the baseplate.
19. The sanding tool of claim 16, wherein the functional housing comprises an outer housing and an inner housing, the outer housing encloses the inner housing, the hollow cavity is formed between the outer housing and the inner housing, the inner housing is disposed outside the body housing, an opening is formed between the outer housing and the inner housing, and the functional housing further comprises an end cover covering the opening.
20. The sanding tool of claim 16, wherein the drive mechanism comprises an electric motor, the sanding tool further comprises a control mechanism for controlling the electric motor and a direct current power supply for powering the electric motor, and the control mechanism is arranged vertically between the electric motor and the direct current power supply.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
[0069]
[0070] As shown in
[0071] Referring to
[0072] The drive mechanism 400 is configured to drive the baseplate assembly 200 to move. As shown in
[0073] As shown in
[0074] In the example of the present application, the support 420 is moved backwards (moved to a right side in
[0075] Therefore, as shown in
[0076] The axis of rotation 421 in the example of the present application is farther away from the functional housing 320 than the initial center of mass line 211, that is, the axis of rotation 421 in the present application is moved backwards relative to the initial center of mass line 211 (the right side in
[0077] As shown in
[0078] In the present application, the support 420 and the drive mechanism 400 are integrally moved backwards on the baseplate 210, thereby reserving more space for the functional housing 320 and increasing the volume of the functional housing 320. At the same time, the center of mass mover 430 is provided to compensate for a deviation between the axis of rotation 421 and the center of mass line of the baseplate 210 so that it is ensured that the corrected center of mass line 212 of the baseplate 210 coincides with the axis of rotation 421, and the baseplate 210 is supported to move on the center of mass of the baseplate 210, thereby ensuring the even movement of the baseplate 210 and avoiding the bouncing, vibration, and the like of the baseplate 210.
[0079] As shown in
[0080] The projection of the functional housing 320 on the baseplate assembly 200 is located within the baseplate 210 so that the disharmony of the overall shape due to too large a volume of the functional housing 320 is avoided, the operation inconvenience of the user caused by too large a volume is avoided, and the functional housing can be better integrated into the housing of the whole machine, thereby improving the operation experience of the user on the basis of ensuring the harmony of appearance.
[0081] As shown in
[0082] As shown in
[0083] Referring to
[0084] As shown in
[0085] In this example, referring to
[0086] In this example, a ratio of an area of a projection of the functional housing 320 on the baseplate 210 to an area of the baseplate 210 is greater than or equal to 0.15 and less than or equal to 0.95. In this example, the ratio of the area of the projection of the functional housing 320 on the baseplate to the area of the baseplate 210 is about 0.7, or the ratio of the area of the projection of the functional housing 320 on the baseplate 210 to the area of the baseplate 210 may be set to 0.6, 0.5, or 0.4.
[0087] In the present application, an axial height of the functional housing 320 is greater than or equal to 15 mm and less than or equal to 125 mm, or the axial height of the functional housing 320 is greater than or equal to 25 mm and less than or equal to 70 mm. At the same time, a ratio of the axial height of the functional housing 320 to an axial height of the whole machine is greater than or equal to 0.3 and less than or equal to 0.85. In this example, the ratio of the axial height of the functional housing 320 to the axial height of the whole machine is about 0.5, or the ratio of the axial height of the functional housing 320 to the axial height of the whole machine may be set to 0.6 or 0.7, where the axial height refers to a height in a vertical direction perpendicular to the baseplate 210.
[0088] Through the preceding layout and design, the volume of the functional housing 320 can be increased, thereby ensuring the volume of the functional housing 320 on the basis of ensuring that the whole sanding tool 100 has a compact structure and relatively small dimensions, avoiding frequent dust dumping due to too small a volume, and improving the user experience.
[0089] As shown in
[0090] With reference to
[0091] As shown in
[0092] In this example, to be convenient to mount and replace the filter 330, a filter holder 327 for mounting the filter 330 is further provided, and correspondingly, a limiting member mating with the filter holder 327 is provided in the functional housing 320. The filter holder 327 includes a support seat and blocking arms. The support seat is provided with a hollow opening allowing the dust removal airflow to enter the filter. On the one hand, the dust removal airflow is allowed to smoothly enter the filter 330. On the other hand, it is convenient for the user to smoothly remove the filter holder 327 through the hollow opening. The blocking arms are disposed on a periphery of the filter 330 and used for supporting and shaping the filter 330, and at the same time, the blocking arms of the filter holder 327 abut against an inner wall of an upper housing of the functional housing 320 to achieve the upper limit of the filter holder 327. The limiting member may be a rib plate provided on an inner wall of the functional housing 320, where the rib plate is engaged with the support seat of the filter holder 327 to achieve the lower limit of the filter holder 327. In this manner, the filter holder 327 is fixedly supported in the functional housing 320.
[0093] During installation, the filter 330 is clamped in the filter holder 327, and then the filter holder 327 together with the filter 330 is inserted upwards into the top of the functional housing 320 through the opening 325 at a lower end of the functional housing 320 and is engaged with the limiting member in the functional housing 320. During disassembly, the filter holder 327 is pulled downwards and taken out through the opening 325 of the functional housing 320.
[0094] In this example, referring to
[0095] In the example of the present application, as shown in
[0096] During assembly, the functional housing 320 is inserted onto the body housing 310 from a side of the body housing 310, the pair of snap-catches 329 of the functional housing 320 are inserted into the snap-grooves 3121, and the boss 3131 on the base 313 is clamped into the groove of the end cover 326. Therefore, the functional housing 320 more stably mates with the body housing 310.
[0097] With reference to
[0098] As an alternative example, the inner housing 3212 and the end cover 326 may not be provided. The outer housing 3211 directly surrounds the outer side of the electric motor chamber 3122 of the main barrel 312, and the outer housing 3211 encloses the cavity 321 with an outer wall of the electric motor chamber 3122. In this case, the opening enclosed by the outer housing 3211 and the electric motor chamber 3122 may be configured to be either the inlet or the outlet.
[0099] In this example, the functional housing 320 is a hollow structure shown in
[0100] As shown in
[0101] Referring to
[0102] As shown in
[0103] As shown in
[0104] The fan assembly 800 is connected to the drive mechanism 400 and driven by the electric motor 400a to rotate. The fan assembly 800 rotates and forms a negative pressure state in the body housing 310, dust generated during the sanding of the baseplate assembly 200 is sucked, the dust is driven by a rotating airflow generated by the rotation of the fan assembly 800 to enter the functional housing 320 from the baseplate dust suction opening 210a via the dust removal assembly 600, and finally, the airflow is discharged from the outlet 323 after filtered by the filter 330 in the functional housing 320 and the dust is left in the functional housing 320.
[0105] In the sanding tool 100 in the present application, the cavity 321 for collecting dust is provided in the housing assembly 300, thereby simplifying the structure of the whole machine, and the collection of dust can be achieved without a dust collection bag or a dust collection device additionally connected, thereby avoiding the installation and removal of an external dust collection device, simplifying an operation manner, and improving the use experience of the user. At the same time, the functional housing 320 and the body housing 310 together form a main machine housing, and the functional housing 320 is integrated into the main machine housing so that the appearance of the main machine is beautiful and prevented from being changed due to a dust collection requirement, and the dust collection function is satisfied on the basis that the original function is not affected. At the same time, since the housing assembly 300 is provided with the cavity 321, the inconvenience to operate the main machine due to the installation or connection of a relatively bulky dust container is avoided.
[0106] As shown in
[0107] Referring to
[0108] A mounting space for mounting the support bracket 700 is provided on the baseplate 210, the mounting seat 720 is fixedly disposed in the mounting space of the baseplate 210, the top of the support seat 710 abuts against the bottom of the base 313 of the body housing 310, screw holes 760 are provided on two sides of the mounting seat 720, and the mounting seat 720 is fixedly connected to the baseplate 210 through screws. The fixed connection is not limited to a screw connection. The mounting seat may be fixedly connected to the baseplate by means of clamping, plugging, or the like, and the fixed connection between the mounting seat and the baseplate is not limited here.
[0109] The central release member 730 is fixedly connected to the support seat 710 directly or indirectly. In this example, the central release member 730 is connected to the support seat 710 or the mounting seat 720 through the floating arm.
[0110] The support bracket 700 in the example of the present application further includes a relief portion, where the relief portion includes a first through hole 711 disposed on the support seat 710 and a second through hole 721 disposed on the mounting seat 720, an axis of the second through hole 721 is parallel to an axis of the first through hole 711 or the second through hole 721 is disposed coaxially with the first through hole 711, and the relief portion provides space for the movement of the central release member 730 and the floating arm. Alternatively, no relief portion may be provided. In this case, the floating arm and the central release member are disposed between axial end surfaces of the mounting seat 720 and the support seat 710.
[0111] The floating arm allows the support seat 710 and the central release member 730 to move relative to each other when the support bracket 700 receives an axial and/or radial force. In other words, the floating arm also allows the support seat 710 and the mounting seat 720 to move relative to each other when the support bracket 700 receives the axial and/or radial force so that the baseplate 210 twists relative to the body housing 310 through the support bracket 700 and the support bracket 700 can withstand axial and radial forces.
[0112] The floating arm in this example includes a floating connecting arm 740 and a floating support arm 750. The floating connecting arm 740 connects the central release member 730 to the support seat 710 and the floating support arm 750 connects the central release member 730 to the mounting seat 720.
[0113] The central release member 730 is a cylinder extending along an axial direction of the first through hole 711 and the second through hole 721 and is substantially disposed vertically in a space extending vertically between the first through hole 711 and the second through hole 721. The central release member 730 may be disposed obliquely to the axis of the first through hole 711 or the second through hole 721.
[0114] In the example of the present application, the central release member 730 is connected to the support seat 710 through the floating connecting arm 740 and connected to the mounting seat 720 through the floating support arm 750. The central release member 730 is connected to the mounting seat 720 through the floating support arm 750 so that the central release member 730 is indirectly fixed to the baseplate 210. At the same time, the central release member 730 is windingly connected to the support seat 710 through the floating connecting arm 740 so that the support seat 710 is indirectly connected to the mounting seat 720, and the support bracket 700 is configured to be a floating structure in which a lower end is fixed and an upper end is floatingly connected to the lower end.
[0115] The support bracket 700 is configured to be the preceding floating structure so that on the one hand, the support bracket 700 can withstand the axial force of the body housing 310 relative to the baseplate assembly 200 so as to eliminate or reduce the axial vibration of the whole machine, and on the other hand, the support bracket 700 can withstand the radial force generated when the baseplate assembly 200 rotates relative to the body housing 310 so as to reduce the wiggles of the whole machine, thereby reducing the vibration and wiggles of the whole machine and improving the user's tactile feeling.
[0116] In the example of the present application, the floating connecting arm 740 is connected to the support seat 710 and a lower end of the central release member 730, and the floating support arm 750 is connected to the mounting seat 720 and an upper end of the central release member 730. As shown in
[0117] In this example, the floating connecting arm 740 includes multiple bent sections extending radially towards the center of the first through hole 711, and similarly, the floating support arm 750 includes multiple bent sections extending along a radial direction of the first through hole.
[0118] Referring to
[0119] The floating support arm 750 has substantially the same structure as the floating connecting arm 740, and their difference only lies in different connection positions of two ends of the floating support arm 750, which is not described in detail herein.
[0120] In the example of the present application, three floating connecting arms 740 and three floating support arms 750 are provided and staggeredly spaced, that is, one floating connecting arm 740 and one floating support arm 750 are spaced apart from each other. The number of floating connecting arms 740 and the number of floating support arms 750 each are not limited to three.
[0121] As an alternative example, the floating connecting arm and the floating support arm each include multiple overlapping sections overlapping along the radial direction of the first through hole, or the floating connecting arm and the floating support arm each include multiple extending sections extending along the radial direction of the first through hole, which is conducive to improving the deformation paths of the floating connecting arm and the floating support arm, thereby improving the vibration resistance and wiggle resistance effects.
[0122] As an alternative example, the floating connecting arm may be configured to be a straight arm directly connected between the central release member and the support seat and the floating support arm may be configured to be a straight arm directly connected between the central release member and the mounting seat, that is, no curved section is included.
[0123] The floating connecting arm 740 and the floating support arm 750 connected between the mounting seat 720 and the support seat 710 are provided so that an axial distance between the mounting seat 720 and the support seat 710 is reduced without reducing effective deformation paths, and an axial stiffness and a radial stiffness of the support bracket 700 are not reduced on the basis of reducing a height of the support bracket 700, thereby ensuring the vibration resistance and torsion resistance of the whole machine.
[0124] Meanwhile, the whole machine has a reduced height and reduced dimensions, which is conducive to the compactness and miniaturization of the whole machine, and the center of gravity of the whole machine is lowered after the height is reduced, which is more conducive to improving the user's feeling of manipulation. In this manner, the whole machine is easier and more convenient for the user to operate.
[0125] In this example, an axial height of the support bracket 700 is H, where 6 mm≤H≤20 mm. In this example, the axial height H of the support bracket 700 is about 15 mm.
[0126] The axial stiffness of the support bracket 700 is K1 and the radial stiffness of the support bracket 700 is K2, where the axial stiffness K1 refers to an ability of the support bracket 700 to resist elastic deformation when the support bracket 700 receives an axial force, and the radial stiffness K2 refers to an ability of the support bracket 700 to resist elastic deformation when the support bracket 700 receives a radial force. In the example of the present application, 20 N/mm≤K1≤500 N/mm. For example, it is also feasible that 80 N/mm≤K1≤300 N/mm or 100 N/mm≤K1≤130 N/mm. 5 N/mm≤K2≤30 N/mm, and optionally, 6 N/mm≤K2≤15 N/mm. Therefore, 0.67≤K1/K2≤100, and optionally, 5.3≤K1/K2≤50.
[0127] If a unit axial stiffness is K which is a ratio of the axial stiffness K1 of the support bracket 700 to the axial height H of the support bracket 700, that is, K=K1/H, 1 N/mm.sup.2≤K≤83.3 N/mm.sup.2, where optionally, 5.3 N/mm.sup.2≤K≤25 N/mm.sup.2.
[0128] In the example of the present application, the support bracket 700 is an integrally formed member, such as an integrally formed plastic member.
[0129]
[0130] In this example, the central release member 730′ is directly connected to the baseplate assembly 200. The central release member 730′ is provided with a screw hole 760′, where the screw hole 760′ is disposed substantially along an axial direction of the first through hole 711′, and the central release member 730′ is fixedly connected to the baseplate 210 through a screw.
[0131] In this example, the floating connecting arm 740′ is a curved arm, where an arm length of the floating connecting arm 740′ is greater than an axial height of the support seat 710′. The floating connecting arm 740′ may include multiple overlapping sections overlapping along an axial direction of the central release member 730′ and/or multiple overlapping sections overlapping along a radial direction of the central release member 730′. In this example, the floating connecting arm 740′ includes axially overlapping sections overlapping along the axial direction of the first through hole 711′. An end of the floating connecting arm 740′ is connected to an upper end of the central release member 730′ and the other end of the floating connecting arm 740′ is connected to the support seat 710′.
[0132] In other words, in this example, the floating connecting arm 740′ also includes multiple radially extending sections and multiple axially extending sections that are connected to form the curved floating connecting arm 740′, where the radially extending sections may overlap along the radial direction and the axially extending sections may overlap along the axial direction. The radially overlapping sections and the axially overlapping sections may not be included as long as the floating connecting arm 740′ is windingly connected between the central release member 730′ and the support seat 710′.
[0133] As an alternative example, the support seat 710′ may not be provided with the relief portion. In this case, the central release member and the floating connecting arm are disposed at the bottom of the support seat 710′.
[0134]
[0135] In this example, a dust removal assembly 91 is at least partially disposed in a body housing 92, and the dust removal assembly 91 is formed with or connected to a dust removal channel so as to guide an airflow from a dust suction opening of the baseplate assembly to a functional housing.
[0136] As shown in
[0137] In this example, the conveying support 912 is detachably connected to the body housing 92. Optionally, the body housing 92 is further provided with an accommodation cavity 921 into which the conveying support 912 is insertable. In this example, in order to ensure the overall sealing property of a dust channel, the conveying support 912 is an integral structure inserted from a single side of the accommodation cavity 921. In other examples, the conveying support 912 may be a combined structure inserted from multiple sides of the accommodation cavity 921.
[0138] The accommodation cavity 921 communicates with the guide portion 911, and when the conveying support 912 is mounted to the accommodation cavity 921, the conveying support 912 communicates with the dust inlet 911a of the guide portion 911. The conveying support 912 includes a mating opening 912a mating with the dust inlet 911a and further includes a first dust outlet 912b and a second dust outlet 912c that mate with inlets of the functional housing 93. Optionally, the functional housing 93 includes a first dust inlet mating with the first dust outlet 912b and a second dust inlet mating with the second dust outlet 912c. The mating opening 912a of the conveying support 912 communicates with the first dust outlet 912b and the second dust outlet 912c separately. In fact, the conveying support 912 can form two channels, and dust removal channels communicating with the first dust outlet 912b and the second dust outlet 912c are converged to the mating opening 912a.
[0139] In an example, the conveying support 912 is configured to extend basically along a direction of a first straight line. The conveying support 912 includes a limiting portion 912d capable of being clamped to the body housing 92, and the limiting portion 912d protrudes along an extension direction of the conveying support 912. Exemplarily, a limiting member mating with the limiting portion 912d is formed in or connected to the body housing 92. The limiting member is configured to be displaced along a direction perpendicular to the extension direction of the conveying support 912 to mate with the limiting portion 912d so as to clamp the conveying support 912. The first dust outlet 912b extends to a preset distance along a second direction perpendicular to the direction of the first straight line to directly mate with the first dust inlet. A sealing device is further provided at a position where the first dust outlet 912b mates with the first dust inlet, so as to prevent dust from escaping from the position where the first dust outlet 912b mates with the first dust inlet. The second dust outlet 912c opens along a third direction perpendicular to the direction of the first straight line. The second direction is parallel to the third direction. The body housing 92 is formed with a connecting end mating with the second dust outlet 912c, that is, a second dust inlet. The second dust inlet extends along the third direction, extends inwardly to be connected to the second dust outlet 912c, and extends outwardly to mate with the second dust inlet. In this example, the second dust inlet abuts against or is clamped with the second dust outlet 912c and is clamped with the second dust inlet at the same time. The second dust inlet is provided so that the second dust outlet 912c can have a flat structure and be disposed in the same plane as the conveying support 912, thereby facilitating the removal of the conveying support 912. Sealing devices are provided at a position where the second dust inlet is connected to the second dust outlet 912c and a position where the second dust inlet is connected to the second dust inlet, where the sealing devices may be soft rubber-coated structures and used for sealing the connection positions so as to avoid the escape of dust and reduce the wear caused by vibration.
[0140] As shown in