Vibrating type feeding tool and full-automatic pearl grinding equipment
By using a vibratory feeding fixture and a fully automatic pearl grinding equipment, the problems of manual placement and stacking in pearl grinding equipment are solved by utilizing vibration units and shielding units, thus achieving fully automatic feeding and efficient pearl conveying.
Patent Information
- Application Number
- CN202422627935.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-29
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2034-10-29
AI Technical Summary
Existing pearl grinding equipment requires manual placement of pearls, resulting in low feeding efficiency and pearl accumulation.
The vibratory feeding fixture uses a vibrating unit to make the pearls move continuously within the storage unit. Combined with a shielding unit and a longitudinal movement unit, it achieves fully automatic feeding and avoids pearl accumulation and spillage.
It enables rapid pearl feeding, reduces manual operation steps, lowers labor costs, avoids safety hazards, and improves feeding efficiency.
Smart Images

Figure CN223519412U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to pearl grinding technical field especially, relate to a vibration type loading frock and full -automatic pearl grinding equipment. BACKGROUND
[0002] The existing pearl grinding equipment is the upper and lower imitation sand wheel grinding tool, which utilizes the motor to drive the upper imitation mold to rotate, and utilizes the lever principle to exert a certain force on the upper imitation mold, and the pearl is ground in the sliding groove of the imitation mold, and when grinding to a certain time, the pearl is taken out for measurement and classification.
[0003] However, the grinding equipment has the following defects:
[0004] 1) manual placement of the pearl is required, and the pearl needs to be placed in the mold groove before the mold is closed, otherwise the pearl will be crushed, causing loss;
[0005] 2) when the material groove is used to assist the pearl loading, the pearl is placed in the material groove, and the pearl is prone to accumulate at the bottom of the material groove, resulting in slow loading speed and low loading efficiency.
[0006] At present, there is no effective solution to the problems of manual placement, pearl accumulation and low loading efficiency in the related art. INVENTION CONTENTS
[0007] The purpose of the present application is to provide a vibration type loading frock and full -automatic pearl grinding equipment to at least solve the problems of manual placement, pearl accumulation and low loading efficiency in the related art.
[0008] To achieve the above-mentioned purpose, the technical scheme adopted by the present application is:
[0009] In a first aspect, the utility model provides a vibration type loading frock for full -automatic pearl loading process, comprising:
[0010] The storage unit is arranged at the pearl loading position and is used for accommodating the pearl;
[0011] The vibration unit is arranged at the side of the storage unit and is used for vibrating the storage unit to make the pearl move constantly in the storage unit.
[0012] In some embodiments, the storage unit comprises:
[0013] The storage element is arranged at the pearl loading position and is used for accommodating the pearl;
[0014] An ejection element arranged at the bottom of the storage element for ejecting the pearls.
[0015] In some embodiments, the storage unit further comprises:
[0016] A first shielding element arranged at the end of the ejection element for shielding the ejection element.
[0017] In some embodiments, the storage unit further comprises:
[0018] A plurality of first supporting elements arranged at the side of the storage element for supporting the storage element.
[0019] In some embodiments, the storage unit further comprises:
[0020] A shielding unit arranged at the bottom of the storage unit and reciprocating between a pearl shielding position and a pearl exposing position for shielding the ejection element of the storage unit to prevent the ejection of the pearls and exposing the ejection element of the storage unit to allow the ejection of the pearls.
[0021] In some embodiments, the shielding unit comprises:
[0022] A second shielding element arranged at the bottom of the storage unit and reciprocating between a pearl shielding position and a pearl exposing position for shielding the ejection element of the storage unit to prevent the ejection of the pearls and exposing the ejection element of the storage unit to allow the ejection of the pearls.
[0023] A shielding driving element connected with the second shielding element for driving the second shielding element to reciprocate in the horizontal direction.
[0024] In some embodiments, the shielding unit further comprises:
[0025] A limiting element arranged between the storage unit and the second shielding element for limiting the ejection path of the pearls.
[0026] In some embodiments, the shielding unit further comprises:
[0027] A first connecting element arranged at the shielding driving element and connected with the storage unit.
[0028] In some embodiments, the shielding unit further comprises:
[0029] A third shielding element is arranged at the bottom of the second shielding element, and is used to avoid the pearls from separating from the pearl receiving tool when the pearl feeding process is performed.
[0030] A second connecting element is arranged at the third shielding element, and is connected with the storage unit.
[0031] In some embodiments, the device further comprises:
[0032] A longitudinal moving unit is connected with the storage unit, and is used to drive the storage unit to reciprocate in the vertical direction.
[0033] In some embodiments, the longitudinal moving unit comprises:
[0034] A plurality of second supporting elements are symmetrically arranged;
[0035] A plurality of longitudinal driving elements are arranged at the corresponding second supporting elements;
[0036] A plurality of third connecting elements are respectively connected with the corresponding longitudinal driving elements and the storage unit, and are used to drive the storage unit to reciprocate in the vertical direction under the action of the corresponding longitudinal driving elements.
[0037] In some embodiments, the device further comprises:
[0038] An angle adjusting unit is arranged at the side of the storage unit, and is used to adjust the inclination angle of the storage unit.
[0039] In some embodiments, the angle adjusting unit comprises:
[0040] A plurality of angle adjusting elements are symmetrically arranged at the bottom of the storage unit, and are used to adjust the inclination angle of the storage unit.
[0041] In some embodiments, the device further comprises:
[0042] A base unit is arranged at the lower part of the storage unit, and is connected with the storage unit, and is used to support the storage unit.
[0043] In some embodiments, the base unit comprises:
[0044] A base element is arranged at the lower part of the storage unit, and is connected with the storage unit;
[0045] A through slot element is arranged through the base element for the storage unit to discharge the pearls outward.
[0046] In a second aspect, the utility model also provides a full-automatic pearl grinding equipment, including:
[0047] The vibration type feeding tool as claimed in the first aspect.
[0048] In some embodiments, further comprising:
[0049] A central control tool is in communication connection with the vibration type feeding tool, and is used for controlling the vibration type feeding tool to carry out a feeding process.
[0050] Compared with the related art, the vibration type feeding tool and the full-automatic pearl grinding equipment provided by the application vibrate the storage unit by using a vibration unit, so that the pearls move in the storage unit, so that the pearls do not gather at the bottom of the storage unit, and the pearls can be quickly discharged outward; the full-automatic operation only needs the staff to inject the pearls into the storage unit, reduces the manual operation steps, reduces the labor cost, and improves the efficiency; there is no safety hazard, and the staff does not need to worry about finger injury; the discharge structure of the storage unit is shielded by using the shielding unit, so that the pearls can be placed in the storage unit, and the pearls can be prevented from being spilled; when the feeding process is carried out, the discharge structure of the storage unit is exposed by the shielding unit, so that the pearls can be discharged outward. BRIEF DESCRIPTION OF DRAWINGS
[0051] The drawings described herein are used to provide further understanding of the application, and form a part of the application, the illustrative embodiments of the application and the description thereof are used to explain the application, and do not constitute an improper limitation on the application. In the drawings:
[0052] Figure 1 It is a schematic view of the vibration type feeding tool according to the embodiment of the utility model (one);
[0053] Figure 2 It is a schematic view of the vibration type feeding tool according to the embodiment of the utility model (two);
[0054] Figure 3 It is a schematic view of the storage unit according to the embodiment of the utility model (one);
[0055] Figure 4 It is a schematic view of the storage unit according to the embodiment of the utility model (two);
[0056] Figure 5 It is a schematic view of the shielding unit according to the embodiment of the utility model (one);
[0057] Figure 6is a schematic view of a shielding unit according to an embodiment of the present utility model;
[0058] Figure 7 is a schematic view of a longitudinal movement unit according to an embodiment of the present utility model;
[0059] Figure 8 is a schematic view of an angle adjusting unit according to an embodiment of the present utility model;
[0060] Figure 9 is a schematic view of a base unit according to an embodiment of the present utility model;
[0061] Figure 10 is a schematic view of a full-automatic pearl grinding device according to an embodiment of the present utility model.
[0062] The figure marks in it are: 100, vibration type feeding tool; 110, storage unit; 111, storage element; 112, discharge element; 113, first shielding element; 114, first supporting element; 120, vibration unit; 130, shielding unit; 131, second shielding element; 132, shielding driving element; 133, limiting element; 134, first connecting element; 135, third shielding element; 136, second connecting element; 140, longitudinal movement unit; 141, second supporting element; 142, longitudinal driving element; 143, third connecting element; 150, angle adjusting unit; 151, angle adjusting element; 160, base unit; 161, base element; 162, through slot element;
[0063] 200, central control tool. DETAILED DESCRIPTION
[0064] In order to make the purpose, technical scheme and advantages of the present application more clear, the present application is described and explained below in combination with the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and not to limit the present application. Based on the embodiments provided in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the present application.
[0065] Obviously, the drawings in the following description are only some examples or embodiments of the present application, and for those skilled in the art, the present application can also be applied to other similar scenarios without creative labor. In addition, it can be understood that although the efforts made in this development process may be complex and lengthy, for those skilled in the art related to the content disclosed in the present application, some design, manufacture or production changes based on the technical content disclosed in the present application are only routine technical means and should not be understood as insufficient disclosure of the present application.
[0066] Reference to an "embodiment" in this application means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the application. The appearances of the phrase in various places in the specification are not necessarily all referring to the same embodiment, nor are they necessarily mutually exclusive of one another. It is expressly understood that that the embodiments described in this application are open to be combined with each other in their pertinent fashions without conflicts being implied or suggested unless it is explicitly stated otherwise.
[0067] Unless otherwise defined, technical terms or scientific terms used in the present application shall have the ordinary meanings as understood by one of ordinary skill in the art to which this application pertains. The terms "a", "an", "one", "this", and the like, as used in the present application, are not intended to be singular or to limit the number of entities to one unless otherwise expressly so defined in the application. The terms "comprises", "comprising", "includes", "including", "has", "having" and the like, are not intended to be limiting, whether or not the terms are used in the specification. For example, a process, method, article, or apparatus that comprises a list of steps or components who not be limited to only those steps or components but can include other not expressly listed steps or components, and vice versa. The term "coupled" and other similar terms, as used in the present application, are intended to encompass a mechanical coupling or electrical coupling whether direct or indirect. The term "a plurality" means two or more. The term "and / or" describes association between or among multiple options, and indicates that there are three possibilities - either alone, or in some combination. The term "and / or" is used in the present application to indicate that there are three possibilities - either alone, or in some combination. The terms "first", "second", "third", and the like, merely denote different instances of a similar object without necessarily requiring or implying any specific order or sequence. The terms "comprises", "comprising", "includes", "including", "has", "having", and the like, are not intended to be limiting, whether or not the terms are used in the specification. For example, a process, method, article, or apparatus that comprises a list of steps or components who not be limited to only those steps or components but can include other not expressly listed steps or components, and vice versa. The term "coupled" and other similar terms, as used in the present application, are intended to encompass a mechanical coupling or electrical coupling whether direct or indirect. The term "a plurality" means two or more. The term "and / or" describes association between or among multiple options, and indicates that there are three possibilities - either alone, or in some combination. The term "and / or" is used in the present application to indicate that there are three possibilities - either alone, or in some combination. The terms "first", "second", "third", and the like, merely denote different instances of a similar object without necessarily requiring or implying any specific order or sequence.
[0068] Embodiment 1
[0069] The present embodiment relates to the vibration type feeding tool of the utility model.
[0070] As shown in a schematic embodiment of the present utility model, Figures 1-2 As shown in a schematic embodiment of the present utility model,
[0071] As shown in a schematic embodiment of the present utility model, Figures 3-4As shown, the storage unit 110 comprises a storage element 111 and a discharge element 112. The storage element 111 is arranged at the pearl feeding position and is used to accommodate the pearls. The discharge element 112 is arranged at the bottom of the storage element 111 and is used to discharge the pearls.
[0072] The storage element 111 can be of an open structure or a closed structure. Specifically, the storage element 111 can be of an open structure at the upper end and the lower end, or of a closed structure at the upper end and an open structure at the lower end.
[0073] The longitudinal section of the storage element 111 is in the shape of a rectangle or a funnel. That is, the radial dimension (such as the inner diameter, length, or width) of the storage element 111 remains unchanged from the upper end to the lower end or decreases from the upper end to the lower end.
[0074] Generally, the longitudinal section of the inner edge surface of the storage element 111 is in the shape of a funnel.
[0075] In some embodiments, the storage element 111 is a pearl feeding groove.
[0076] The discharge element 112 is arranged along the radial direction of the storage element 111. Specifically, the length direction of the discharge element 112 is the radial direction (such as the diameter direction) of the storage element 111.
[0077] Generally, the discharge element 112 can accommodate only one row of pearls.
[0078] The size of the discharge element 112 matches the size of the mold of the pearl receiving tooling. Generally, the length of the discharge element 112 is not greater than the radial dimension (such as the radius) of the mold. The purpose of this design is that the one row of pearls accommodated by the discharge element 112 can exactly fall into the grooves of the mold. That is, the number of the one row of pearls is equal to the number of the grooves of the mold.
[0079] In some embodiments, the position where the discharge element 112 is arranged is protruded from the bottom of the storage element 111.
[0080] In some embodiments, the discharge element 112 comprises a discharge groove.
[0081] Further, the storage unit 110 further comprises a first shielding element 113. The first shielding element 113 is arranged at the end of the discharge element 112 and is used to shield the discharge element 112.
[0082] The purpose of arranging the first shielding element 113 is to shield the end of the discharge element 112, so as to avoid the pearls being discharged from the end of the discharge element 112 along the length direction of the discharge element 112 and ensure that the pearls are dropped downward at the end of the discharge element 112.
[0083] In some embodiments, the first shielding element 113 includes, but is not limited to, a shielding plate.
[0084] Further, the storage unit 110 further includes a plurality of first supporting elements 114. The plurality of first supporting elements 114 are arranged on the side of the storage element 111 to support the storage element 111.
[0085] The plurality of first supporting elements 114 are arranged around the storage element 111 with the storage element 111 as the center. Generally, the top end of the plurality of first supporting elements 114 is connected with the side wall of the storage element 111 (which can be the upper end of the side wall of the storage element 111 or the lower end of the side wall of the storage element 111), and the bottom end of the plurality of first supporting elements 114 is connected with the horizontal plane.
[0086] In some embodiments, the first supporting element 114 is arranged obliquely.
[0087] The first supporting element 114 is fixedly connected with the storage element 111, including but not limited to welding.
[0088] In some embodiments, the first supporting element 114 is three.
[0089] In some embodiments, the first supporting element 114 is a supporting rod.
[0090] The vibration unit 120 is arranged on the top of the storage element 111.
[0091] In some embodiments, the vibration unit 120 is a plurality of. The plurality of vibration units 120 are arranged on the top of the storage element 111.
[0092] In some embodiments, the vibration unit 120 includes, but is not limited to, a motor and the like.
[0093] The use method of the utility model is as follows:
[0094] (I) placing pearls
[0095] The pearls are placed in the inside of the storage element 111;
[0096] (II) pearl feeding
[0097] The pearl receiving tooling moves to the lower part of the storage element 111;
[0098] The vibration unit 120 works, so that the pearls in the storage element 111 continuously vibrate and are continuously discharged from the discharge element 112 to the pearl receiving tooling;
[0099] The pearl receiving tooling carrying the pearls of the preset specification and the preset quantity moves to the pearl grinding position;
[0100] At this time, the pearl feeding process is completed.
[0101] Step (two) is repeatedly performed until all the pearls inside the storage element 111 are transferred to the pearl receiving tool.
[0102] The technical effects of the utility model are as follows:
[0103] 1) The vibration unit is used to vibrate the storage unit, so that the pearls move in the storage unit, thereby preventing the pearls from gathering at the bottom of the storage unit and facilitating the rapid discharge of the pearls;
[0104] 2) Full-automatic operation, only the staff needs to perform the pearl injection operation on the storage unit, which reduces the manual operation steps, reduces the labor cost, and improves the efficiency;
[0105] 3) There is no safety hazard, and the staff does not need to worry about finger injury.
[0106] Embodiment 2
[0107] This embodiment is a variant of embodiment 1.
[0108] As shown in Figures 1-2 , the vibration type feeding tool 100 further includes a shielding unit 130. The shielding unit 130 is arranged at the bottom of the storage unit 110 and reciprocates between the pearl shielding position and the pearl exposing position, and is used to shield the discharge element 112 of the storage unit 110 to prevent the pearls from being discharged outward, and expose the discharge element 112 of the storage unit 110 to make the pearls discharged outward.
[0109] As shown in Figures 5-6 , the shielding unit 130 includes a second shielding element 131 and a shielding driving element 132. The second shielding element 131 is arranged at the bottom of the storage unit 110 and reciprocates between the pearl shielding position and the pearl exposing position, and is used to shield the discharge element of the storage unit 110 to prevent the pearls from being discharged outward, and expose the discharge element of the storage unit 110 to make the pearls discharged outward; the shielding driving element 132 is connected with the second shielding element 131 and is used to drive the second shielding element 131 to reciprocate in the horizontal direction.
[0110] Specifically, the second shielding element 131 is movably arranged at the bottom of the discharge element 112 and shields or exposes the discharge element 112.
[0111] The second shielding element 131 completely shields or partially shields the discharge element 112, so that the pearls are not discharged outward from the discharge element 112.
[0112] In some embodiments, the second shielding element 131 has an L-shaped longitudinal section. Specifically, the second shielding element 131 comprises a shielding vertical plate and a shielding horizontal plate. The shielding vertical plate is connected to the shielding driving element 132 and is located at the side of the discharging element 112, and is configured to reciprocate in the horizontal direction under the action of the shielding driving element 132; the end of the shielding horizontal plate is connected to the bottom of the shielding vertical plate and is located at the bottom of the discharging element 112, and is configured to reciprocate in the horizontal direction under the action of the shielding vertical plate to shield or expose the discharging element 112.
[0113] In some embodiments, the shielding driving element 132 comprises, but is not limited to, a cylinder and a driving motor.
[0114] Further, the shielding unit 130 further comprises a limiting element 133. The limiting element 133 is arranged between the storage unit 110 and the second shielding element 131, and is configured to limit the discharging path of the pearls.
[0115] Specifically, the limiting element 133 is arranged between the discharging element 112 and the second shielding element 131.
[0116] In some embodiments, the limiting element 133 comprises a limiting plate and a limiting groove. The limiting plate is arranged between the discharging element 112 and the shielding horizontal plate; the limiting groove is arranged through the limiting plate and is aligned with the discharging element 112.
[0117] Further, the limiting element 133 further comprises a sliding groove. The sliding groove is arranged at the bottom of the limiting plate, is in communication with the limiting groove, and is in sliding connection with the shielding horizontal plate, and is configured to limit the movement range of the shielding horizontal plate.
[0118] The size of the sliding groove matches the size of the limiting plate. Generally, the width of the sliding groove is smaller than the width of the limiting plate, the length of the sliding groove is equal to the length of the limiting plate, and the depth of the sliding groove is smaller than the thickness of the limiting plate.
[0119] Further, the shielding unit 130 further comprises a first connecting element 134. The first connecting element 134 is arranged on the shielding driving element 132 and is connected to the storage unit 110.
[0120] Specifically, the first connecting element 134 is connected to the storage element 111.
[0121] The first connecting element 134 is arranged at the upper part of the shielding driving element 132.
[0122] The first connecting element 134 is detachably connected to the storage element 111, including but not limited to bolt connection.
[0123] The first connecting element 134 is detachably connected to the shielding driving element 132, including but not limited to bolt connection.
[0124] In some embodiments, the first connecting element 134 includes, but is not limited to, a connecting plate, a connecting bracket.
[0125] Further, the shielding unit 130 further includes a third shielding element 135 and a second connecting element 136. The third shielding element 135 is arranged at the bottom of the second shielding element 131, and is used to avoid the pearls falling from the pearl receiving tool during the pearl feeding process. The second connecting element 136 is arranged on the third shielding element 135 and is connected with the storage unit 110.
[0126] Specifically, the second connecting element 136 is connected with the storage element 111.
[0127] In some embodiments, the third shielding element 135 includes a shielding plate and a discharge groove. The shielding plate is arranged at the bottom of the second shielding element 131, and the discharge groove is arranged through the shielding plate and is aligned with the discharge element 112 and the limiting groove.
[0128] The size of the shielding plate matches the size of the storage element 111. Generally, the radial size of the shielding plate is not less than the radial size of the bottom of the storage element 111.
[0129] The size of the shielding plate matches the size of the mold of the pearl receiving tool. Generally, the radial size of the shielding plate is not less than the radial size of the mold.
[0130] The second connecting element 136 is detachably connected with the storage element 111, including but not limited to bolt connection.
[0131] The second connecting element 136 is detachably connected with the third shielding element 135, including but not limited to bolt connection.
[0132] In some embodiments, the second connecting element 136 includes, but is not limited to, a connecting plate, a connecting bracket.
[0133] The use method of the present embodiment is as follows:
[0134] (I) Placing pearls
[0135] The shielding driving element 132 works, so that the second shielding element 131 shields the discharge element 112;
[0136] The pearls are placed in the inside of the storage element 111;
[0137] (II) Pearl feeding
[0138] The pearl receiving tool moves to the lower part of the storage element 111;
[0139] The shielding driving element 132 works, so that the second shielding element 131 exposes the discharging element 112;
[0140] The vibration unit 120 works, so that the pearls in the storage element 111 are constantly vibrated and discharged from the discharging element 112 and the limiting element 133 to the pearl receiving tooling;
[0141] The pearl receiving tooling carrying the preset specification and the preset number of pearls moves to the pearl grinding position;
[0142] At this time, the pearl feeding process is completed.
[0143] Step (two) is repeatedly performed until all the pearls in the interior of the storage element 111 are transferred to the pearl receiving tooling.
[0144] The technical effects of the embodiment are as follows:
[0145] The discharge structure of the storage unit is shielded by the shielding unit, which facilitates the placement of pearls in the storage unit and avoids the spilling of pearls. When the feeding process is performed, the discharge structure of the storage unit is exposed by the shielding unit, which facilitates the outward discharge of the pearls.
[0146] Embodiment 3
[0147] This embodiment is a variant of embodiments 1-2.
[0148] As shown in Figures 1-2 , the vibration type feeding tooling 100 further comprises a longitudinal movement unit 140. The longitudinal movement unit 140 is connected with the storage unit 110 and is used to drive the storage unit 110 to reciprocate along the vertical direction.
[0149] As shown in Figure 7 , the longitudinal movement unit 140 comprises a plurality of second support elements 141, a plurality of longitudinal driving elements 142 and a plurality of third connecting elements 143. The plurality of second support elements 141 are symmetrically arranged; the plurality of longitudinal driving elements 142 are arranged on the corresponding second support elements 141; and the plurality of third connecting elements 143 are respectively connected with the corresponding longitudinal driving elements 142 and the storage unit 110, and are used to drive the storage unit 110 to reciprocate along the vertical direction under the action of the corresponding longitudinal driving elements 142.
[0150] Specifically, the plurality of second support elements 141 are symmetrically arranged on the side of the storage element 111; and the plurality of third connecting elements 143 are respectively connected with the storage element 111.
[0151] Generally, the plurality of second support elements 141 are symmetrically arranged on both sides of the storage element 111. That is, at least one second support element 141 is arranged on each side of the storage element 111.
[0152] Preferably, the second support element 141 is two. The two second support elements 141 are symmetrically arranged on both sides of the storage element 111.
[0153] In some embodiments, the cross section of the second support element 141 is convex. Specifically, the second support element 141 includes a first support plate and a second support plate. The first support plate is arranged in the horizontal plane; the second support plate is arranged on the upper part of the first support plate and connected with the corresponding longitudinal driving element 142.
[0154] The size of the second support plate matches the size of the first support plate. Generally, the radial size (such as length, width) of the second support plate is smaller than the radial size (such as length, width) of the first support plate, and the axial size (such as height) of the second support plate is larger than the axial size of the first support plate.
[0155] The number of longitudinal driving elements 142 matches the number of second support elements 141. Generally, the number of longitudinal driving elements 142 is equal to the number of driving second support elements 141.
[0156] In some embodiments, the longitudinal driving element 142 includes but is not limited to a longitudinal cylinder, a longitudinal driving motor.
[0157] The third connecting element 143 is arranged at the output end of the longitudinal driving element 142.
[0158] The connection mode of the third connecting element 143 with the storage element 111 includes but is not limited to bolt connection.
[0159] The number of third connecting elements 143 matches the number of longitudinal driving elements 142. Generally, the number of third connecting elements 143 is equal to the number of driving longitudinal driving elements 142.
[0160] In some embodiments, the third connecting element 143 includes but is not limited to a connecting plate, a connecting bracket.
[0161] The use method of the embodiment is as follows:
[0162] (I) Place pearls
[0163] Shield the driving element 132 to work, so that the second shielding element 131 shields the discharge element 112;
[0164] Place the pearls in the inside of the storage element 111;
[0165] (II) Pearl feeding
[0166] The longitudinal driving element 142 works, and drives the storage element 111 to move upward to the first preset position through the third connecting element 143;
[0167] The pearl receiving tooling moves to the lower part of the storage element 111;
[0168] The longitudinal driving element 142 works to drive the storage element 111 to move downwards to the second preset position through the third connecting element 143;
[0169] The shielding driving element 132 works to expose the second shielding element 131 to the discharge element 112;
[0170] The vibration unit 120 works to make the pearls in the storage element 111 vibrate continuously and be discharged from the discharge element 112 and the limiting element 133 to the pearl receiving tooling;
[0171] The longitudinal driving element 142 works to drive the storage element 111 to move upwards to the first preset position through the third connecting element 143;
[0172] The pearl receiving tooling carrying the preset specifications and the preset number of pearls moves to the pearl grinding position;
[0173] At this time, the pearl feeding process is completed.
[0174] The step (two) is repeatedly performed until all the pearls in the interior of the storage element 111 are transferred to the pearl receiving tooling.
[0175] The technical effects of the embodiment are as follows:
[0176] 1) The vibration type feeding tooling is driven by the longitudinal movement unit to move up and down, which can facilitate the pearl receiving tooling to receive the pearls and avoid the problem that the distance between the storage unit and the pearl receiving tooling is too far to cause the pearls to be spilled during the feeding process;
[0177] 2) The vibration type feeding tooling is driven by the longitudinal movement unit to move up and down, which can facilitate the pearl receiving tooling to enter or leave, and avoid the problem that the distance between the storage unit and the pearl receiving tooling is too close to cause the pearls to be damaged when the pearl receiving tooling carrying the pearls leaves.
[0178] Embodiment 4
[0179] The embodiment is a variant of the embodiments 1-3.
[0180] As shown in Figures 1-2 The vibration type feeding tooling 100 further includes an angle adjusting unit 150. The angle adjusting unit 150 is arranged at the side of the storage unit 110 and is used to adjust the inclination angle of the storage unit 110.
[0181] Further, the angle adjusting unit 150 is arranged between the storage unit 110 and the longitudinal movement unit 140.
[0182] As shown in Figure 8 The angle adjusting unit 150 includes a plurality of angle adjusting elements 151 symmetrically arranged at the bottom of the storage unit 110 for adjusting the inclination angle of the storage unit 110.
[0183] Specifically, the plurality of angle adjusting elements 151 are symmetrically arranged at the bottom of the storage element 111.
[0184] More specifically, the plurality of angle adjusting elements 151 are respectively arranged at the top of the corresponding third connecting element 143.
[0185] The number of angle adjusting elements 151 matches the number of third connecting elements 143. Generally, the number of angle adjusting elements 151 is equal to the number of third connecting elements 143.
[0186] The longitudinal section of the angle adjusting element 151 is triangular, trapezoidal, wedge-shaped, etc. The angle adjusting element 151 has an inclined surface arranged towards the upper portion and abutting against the bottom of the storage element 111.
[0187] In some embodiments, the angle adjusting element 151 includes but is not limited to an angle adjusting pad.
[0188] The use method of the present embodiment is as follows:
[0189] (I) Install the angle adjusting element 151
[0190] According to the pre-set inclination angle, select the angle adjusting element 151 with the appropriate shape;
[0191] (II) Place the pearls
[0192] Block the work of the driving element 132, so that the second blocking element 131 blocks the discharge element 112;
[0193] Place the pearls inside the storage element 111;
[0194] (III) Pearl feeding
[0195] The longitudinal driving element 142 works to drive the storage element 111 upward to the first pre-set position through the third connecting element 143;
[0196] The pearl feeding tool moves to the lower portion of the storage element 111;
[0197] The longitudinal driving element 142 works to drive the storage element 111 downward to the second pre-set position through the third connecting element 143;
[0198] The blocking driving element 132 works to expose the discharge element 112.
[0199] The vibration unit 120 works, so that the pearls of the storage element 111 are constantly vibrated and constantly discharged from the discharge element 112, the limiting element 133 to the pearl receiving tooling;
[0200] The longitudinal driving element 142 works, and drives the storage element 111 to move upward to the first preset position through the third connecting element 143;
[0201] The pearl receiving tooling carries the preset specification and preset number of pearls to the pearl grinding position;
[0202] At this time, the pearl feeding process is completed.
[0203] Step (three) is repeatedly performed until all the pearls inside the storage element 111 are transferred to the pearl receiving tooling.
[0204] The technical effects of the embodiment are as follows:
[0205] The angle adjusting unit is used to adjust the inclination angle of the storage unit, so that the storage unit is attached to the pearl receiving tooling; due to the inclined arrangement of the storage unit, the vibration unit is used to make the pearls quickly fall downward from the storage unit.
[0206] Embodiment 5
[0207] This embodiment is a variant of embodiments 1-4.
[0208] As shown in Figures 1-2 , the vibration type feeding tooling 100 further comprises a base unit 160. Among them, the base unit 160 is arranged at the lower part of the storage unit 110 and connected with the storage unit 110, used to support the storage unit 110.
[0209] Further, the base unit 160 is also connected with the shielding unit 130.
[0210] Further, the base unit 160 is also connected with the longitudinal moving unit 140.
[0211] Further, the base unit 160 is also connected with the angle adjusting unit 150.
[0212] As shown in Figure 9 , the base unit 160 comprises a base element 161 and a through slot element 162. Among them, the base element 161 is arranged at the lower part of the storage unit 110 and connected with the storage unit 110; the through slot element 162 is arranged through the base element 161, used to discharge the pearls outside the storage unit 110.
[0213] Specifically, the base element 161 is arranged at the lower part of the storage element 111 and connected with the first support elements 114 respectively; the through-slot element 162 is located right below the storage element 111.
[0214] More specifically, the base element 161 is also connected with the first connecting element 134 and the second connecting element 136.
[0215] More specifically, the base element 161 is also connected with the third connecting element 143.
[0216] More specifically, the base element 161 is also connected with the angle adjusting element 151.
[0217] The connection between the base element 161 and the first support elements 114 is detachable, including but not limited to bolt connection.
[0218] The connection between the base element 161 and the first connecting element 134 is detachable, including but not limited to bolt connection.
[0219] The connection between the base element 161 and the second connecting element 136 is detachable, including but not limited to bolt connection.
[0220] The connection between the base element 161 and the third connecting element 143 is detachable, including but not limited to bolt connection.
[0221] The connection between the base element 161 and the angle adjusting element 151 is detachable, including but not limited to bolt connection.
[0222] In some embodiments, the base element 161 includes but is not limited to support base.
[0223] The size of the through-slot element 162 matches the size of the storage element 111. Generally, the radial dimension (such as length, width, diameter) of the through-slot element 162 is not less than the radial dimension (such as length, width, diameter) of the storage element 111.
[0224] The size of the through-slot element 162 matches the size of the third shielding element 135. Generally, the radial dimension (such as length, width, diameter) of the through-slot element 162 is not less than the radial dimension (such as length, width, diameter) of the third shielding element 135.
[0225] In some embodiments, the through-slot element 162 includes but is not limited to mounting slot.
[0226] The use method of the present embodiment is as follows:
[0227] (I) Install the angle adjusting element 151
[0228] According to the pre-set inclination angle, select the angle adjusting element 151 with a suitable shape;
[0229] The angle adjusting element 151 is connected with the third connecting element 143 and the base element 161 respectively;
[0230] (II) placing pearls
[0231] The shielding driving element 132 works, so that the second shielding element 131 shields the discharging element 112;
[0232] The pearls are placed in the inside of the storage element 111;
[0233] (III) pearl feeding
[0234] The longitudinal driving element 142 works, and drives the storage element 111 to move upwards to the first preset position through the base element 161;
[0235] The pearl feeding tool moves to the lower part of the storage element 111;
[0236] The longitudinal driving element 142 works, and drives the storage element 111 to move downwards to the second preset position through the third connecting element 143 and the base element 161;
[0237] The shielding driving element 132 works, so that the second shielding element 131 exposes the discharging element 112;
[0238] The vibration unit 120 works, so that the pearls in the storage element 111 are continuously vibrated and discharged from the discharging element 112 and the limiting element 133 to the pearl feeding tool;
[0239] The longitudinal driving element 142 works, and drives the storage element 111 to move upwards to the first preset position through the base element 161;
[0240] The pearl feeding tool carries the pearls with a preset specification and a preset quantity to the pearl grinding position;
[0241] At this time, the pearl feeding process is completed.
[0242] The step (III) is repeatedly performed until all the pearls in the inside of the storage element 111 are transferred to the pearl feeding tool.
[0243] The technical effect of the utility model is basically the same as that of the embodiments 1-4, which will not be repeated here.
[0244] Embodiment 6
[0245] This embodiment relates to the full-automatic pearl grinding equipment.
[0246] In one illustrative embodiment of the utility model,Figure 10 As shown in the drawings, the full-automatic pearl grinding device comprises the vibrating feeding tool 100 as described in Embodiments 1-5.
[0247] Further, the full-automatic pearl grinding device further comprises a central control tool 200.
[0248] Specifically, the central control tool 200 is in communication connection with the vibrating unit 120, the shielding unit 130 and the longitudinal moving unit 140 respectively.
[0249] More specifically, the central control tool 200 is in communication connection with the shielding driving element 132 and the longitudinal driving element 142 respectively.
[0250] In some of the embodiments, the central control tool 200 comprises a PLC control cabinet, a display device, a control device, a power supply device, etc.
[0251] The use method of the full-automatic pearl grinding device is basically the same as that of Embodiments 1-5, and thus will not be described herein.
[0252] The technical effect of the full-automatic pearl grinding device is basically the same as that of Embodiments 1-5, and thus will not be described herein.
[0253] The above-described embodiments only express several implementation manners of the present application, and the description is relatively specific and detailed, but it should not be understood as a limitation on the scope of the utility model patent. It should be pointed out that, for ordinary skilled persons in the art, several modifications and improvements can be made without departing from the concept of the present application, and these all belong to the protection scope of the present application. Therefore, the protection scope of the present application patent should be subject to the appended claims.
Claims
1. A vibratory feeding fixture for fully automated pearl feeding process, characterized in that, The application relates to a pearl feeding device. The application comprises: a storage unit arranged at a pearl feeding position and used for accommodating pearls; 2. The vibrating feed apparatus of claim 1, wherein, a vibration unit arranged at the side of the storage unit and used for vibrating the storage unit to make the pearls move constantly inside the storage unit. The storage unit comprises: a storage element arranged at a pearl feeding position and used for accommodating pearls; 3. The vibratory loading tool of claim 2, wherein, a discharge element arranged at the bottom of the storage element and used for discharging the pearls. The storage unit further comprises: a first shielding element arranged at the end of the discharge element and used for shielding the discharge element; and / or 4. The vibrating feed apparatus according to any one of claims 1 to 3, wherein a plurality of first supporting elements distributed and arranged at the side of the storage element and used for supporting the storage element. The application further comprises: a shielding unit arranged at the bottom of the storage unit and reciprocally moving between a pearl shielding position and a pearl exposing position, used for shielding the discharge element of the storage unit to avoid the discharge of the pearls and exposing the discharge element of the storage unit to make the pearls discharge; and / or a longitudinal moving unit connected with the storage unit and used for driving the storage unit to reciprocally move in the vertical direction; and / or an angle adjusting unit arranged at the side of the storage unit and used for adjusting the inclination angle of the storage unit; and / or 5. The vibratory loading tool of claim 4, wherein, a base unit arranged at the lower part of the storage unit and connected with the storage unit and used for supporting the storage unit. The shielding unit comprises: a second shielding element arranged at the bottom of the storage unit and reciprocally moving between a pearl shielding position and a pearl exposing position, used for shielding the discharge element of the storage unit to avoid the discharge of the pearls and exposing the discharge element of the storage unit to make the pearls discharge; 6. The vibratory loading tool of claim 5, wherein, a shielding driving element connected with the second shielding element and used for driving the second shielding element to reciprocally move in the horizontal direction. The shielding unit further comprises: a limiting element arranged between the storage unit and the second shielding element and used for limiting the discharge path of the pearls; and / or a first connecting element arranged at the shielding driving element and connected with the storage unit; and / or a third shielding element arranged at the bottom of the second shielding element and used for avoiding the pearls falling from the pearl receiving tool in the pearl feeding process; 7. The vibratory loading tool of claim 4, wherein, a second connecting element arranged at the third shielding element and connected with the storage unit. The longitudinal moving unit comprises: a plurality of second supporting elements symmetrically arranged; a plurality of longitudinal driving elements arranged at the corresponding second supporting elements. A plurality of third connecting elements, each of which is connected with a corresponding longitudinal driving element and the storage unit, and is used to drive the storage unit to reciprocate along the vertical direction under the action of the corresponding longitudinal driving element.
8. The vibratory loading tool of claim 4, wherein, The angle adjusting unit comprises: A plurality of angle adjusting elements, which are symmetrically arranged at the bottom of the storage unit, and are used to adjust the inclination angle of the storage unit.
9. The vibratory loading tool of claim 4, wherein, The base unit comprises: A base element, which is arranged at the lower part of the storage unit, and is connected with the storage unit; A through slot element, which is arranged through the base element, and is used to discharge the pearls outward from the storage unit.
10. A fully automatic pearl grinding apparatus, characterized by, Comprise: The vibration type feeding tool according to any one of claims 1-9.