Rotatable pick-and-place piece and cooking utensil
By designing a rotatable pick-and-place mechanism and using a locking mechanism to lock the unfolded state, the problems of instability and large space occupation of existing cooking utensils pick-and-place structures are solved, achieving stable operation and space saving.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NINGBO BIYI ELECTRIC APPLIANCE
- Filing Date
- 2025-05-27
- Publication Date
- 2026-05-15
AI Technical Summary
Existing cooking utensils have unstable placement and retrieval mechanisms, and fixed settings result in large space occupation or unstable rotation.
A rotatable pick-and-place mechanism was designed, which connects to the cooking utensil via a connecting base. The pick-and-place handle can be rotated to the unfolded state for operation and locked in the unfolded state by a locking mechanism. When rotated to the folded state, it reduces space occupation.
It achieves stability in picking up and placing items and optimizes space utilization during use, ensuring stable operation in the unfolded state and reducing space occupation in the folded state.
Smart Images

Figure CN224235225U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cooking technology, and in particular to a rotatable pick-and-place component and a cooking utensil. Background Technology
[0002] As cooking needs increase, such as steaming, boiling, frying, or baking, different cooking utensils are needed to hold the ingredients. To facilitate the handling of these utensils, handles, grips, or other structures are usually provided on their sides for easy access.
[0003] However, existing cooking utensils typically have fixed handles for picking up and putting down utensils. To minimize the space occupied by these fixed handles, the size of the handles is usually kept small, which can lead to instability when holding the utensils. Alternatively, a rotating handle can be used to fold the utensils after picking up or putting down utensils, but rotating handles are prone to instability and can easily rotate under external force. Utility Model Content
[0004] The purpose of this utility model is to disclose a rotatable pick-and-place component and a cooking utensil. The pick-and-place component is connected to the cooking utensil via a connecting seat. The pick-and-place handle is rotated to the unfolded state to pick up and place the cooking utensil. The pick-and-place handle is rotated to the folded state to reduce the space occupied by the pick-and-place component when in use or when placed down. Furthermore, a locking component can lock at least the unfolded state, so that the pick-and-place component is stable when picking up and placing the cooking utensil when it is in the unfolded state.
[0005] To achieve the above objectives, this utility model discloses a rotatable pick-and-place component, which includes a connecting base, a pick-and-place handle, a locking component, and a rotating component. The pick-and-place handle has a rotating cavity, and the rotating component is rotatably connected to the rotating cavity and connected to the connecting base, so that the pick-and-place handle rotates relative to the connecting base. The pick-and-place handle is used to be in the folded state or the unfolded state after rotation. The rotating cavity has a first locking part.
[0006] The locking member is connected to the rotating member, and the locking member has a second locking part. The second locking part is used to move closer to or away from the first locking part when the locking member is subjected to force. After moving closer to the first locking part, the second locking part is used to lock at least the unfolded state.
[0007] In one optional embodiment, the rotating cavity is provided with a locking groove; the locking member includes a locking rod and a first elastic member, the locking rod is provided with a locking post, and the first elastic member is connected between the end of the locking rod and the interior of the rotating cavity; the first elastic member is used to provide a first elastic stress that drives the locking post to approach the locking groove and engage with the locking groove; the locking post is used to disengage from the locking groove when the locking rod is subjected to external force; the first locking part includes the locking groove; the second locking part includes the locking post.
[0008] As an optional implementation, the rotating cavity is further provided with a guide surface, which is used to slide with the locking rod after the locking rod exits the locking groove, so as to guide the locking rod to be misaligned with the locking groove.
[0009] As an optional implementation, the rotating component includes a rotating arm and a rotating seat. The rotating arm is connected to the connecting seat, and the rotating seat is rotatably connected to the rotating arm. The rotating seat is provided with a sliding groove. The rotating seat is provided with a movable cavity. The locking rod passes through the movable cavity, and the locking pin extends out through the movable cavity.
[0010] The locking component also includes a pressing cover, which is movably sealed at the end of the rotating cavity. The pressing cover is provided with a connecting buckle and a pressing rod. The connecting buckle is provided on the rotating base, passing through the end of the rotating arm and slidably engaged with the sliding slot. The pressing rod extends into the movable cavity and is used to press the locking rod when the pressing cover is subjected to external force.
[0011] As an optional implementation, the end of the rotating cavity is also covered with a connecting cover, the connecting cover having a first through-hole; the end of the rotating arm is provided with a mounting plate, the mounting plate having a second through-hole, the second through-hole corresponding to the first through-hole; the connecting buckle of the pressing cover passes through the first through-hole and the second through-hole and is movably engaged with the sliding slot; a second elastic element is provided between the pressing cover and the connecting cover.
[0012] As an optional implementation, the rotating seat is provided with a limiting rib on its exterior; the rotating cavity is circumferentially limited by a limiting groove, and the limiting rib slides into the limiting groove.
[0013] As an optional implementation, the rotating cavity is provided with two first locking parts and two second locking parts are distributed at intervals in the rotation direction of the pick-up and put-down handle. The first locking parts are used to lock the unfolded state or the folded state after moving close to different second locking parts.
[0014] As an optional implementation, the first locking part is provided.
[0015] A cooking utensil includes a cooking vessel and a rotatable loading and unloading component, wherein the connecting base is connected to the cooking vessel.
[0016] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0017] 1. The connector of this loading and unloading component can be attached to cooking utensils (such as baking pans, frying baskets, grill racks, etc.), or used in structures such as lids or doors. In use, the loading and unloading handle is rotated to the unfolded state, allowing the user to hold the handle and operate the cooking utensils to load or unload items, or to move the lid or door. Once the loading or unloading position is reached, or after the item has been moved into place, the handle can be rotated to fold it into a retracted state. This prevents the handle from being affected by external forces due to its protrusion, and the overall size of the loading and unloading component is minimized when folded.
[0018] 2. When the handle is rotated, force can be applied to the locking member first, so that the second locking part of the locking member moves away from the first locking part of the rotating cavity, allowing the handle to rotate relative to the rotating base, that is, to rotate relative to the connecting seat of the rotating base. When the handle is rotated to the unfolded state, the locking member can be driven by force to move the second locking part closer to the first locking part of the rotating cavity. At this time, the second locking part can lock with the first locking part, and the unfolded state can be locked. The user can hold the unfolded handle in the locked state to operate cooking utensils and other structures. In this way, the handle will not rotate and fall under its own weight, so the unfolded state can be maintained for stable operation of the handle, and the operation process is stable. Attached Figure Description
[0019] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0020] Figure 1 This is a structural schematic diagram of the unfolded state of the pick-and-place component of this utility model.
[0021] Figure 2 This is a structural schematic diagram of the folded state of the pick-and-place component of this utility model;
[0022] Figure 3 This is an exploded structural diagram of the picking and placing component of this utility model;
[0023] Figure 4 This is a partial sectional view of the pick-and-place component of this utility model;
[0024] Figure 5 This is a schematic diagram of the structure of the pick-up and put-down handle of this utility model;
[0025] Figure 6 This is a schematic diagram of the pick-up and put-down handle of this utility model from another perspective.
[0026] Figure 7 This is a structural schematic diagram of one state of the cooking utensil of this utility model;
[0027] Figure 8 This is a structural schematic diagram of another state of the cooking utensil of this utility model.
[0028] Key reference numerals: 10. Pick-up / place-on component; 11. Connecting seat; 12. Pick-up / place-on handle; 121. Rotating cavity; 1211. Guide surface; 1212. Locking groove; 1213. Limiting groove; 13. Locking rod; 131. Locking post; 14. Rotating seat; 141. Sliding slot; 142. Limiting rib; 15. First elastic element; 16. Pressing cover; 161. Top pressure rod; 162. Connecting buckle; 17. Connecting cover; 171. First through-hole; 18. Second elastic element; 19. Rotating arm; 191. Mounting piece; 192. Second through-hole; 20. Cooking vessel. Detailed Implementation
[0029] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0030] In this invention, the terms "upper," "lower," "left," "right," "front," "rear," "top," "bottom," "inner," "outer," "middle," "vertical," "horizontal," "lateral," and "longitudinal" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this invention and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.
[0031] Furthermore, in addition to indicating direction or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this utility model according to the specific circumstances.
[0032] Furthermore, the terms "installation," "setup," "equipped with," "connection," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this utility model based on the specific circumstances.
[0033] Furthermore, the terms "first," "second," etc., are primarily used to distinguish different devices, elements, or components (which may be the same or different in specific type and construction), and are not intended to indicate or imply the relative importance or quantity of the indicated devices, elements, or components. Unless otherwise stated, "a plurality of" means two or more.
[0034] The technical solution of this utility model will be further described below with reference to the embodiments and accompanying drawings.
[0035] Please see Figures 1 to 6 This application provides a rotatable pick-and-place component 10, including a connecting base 11, a pick-and-place handle 12, a locking component, and a rotating component. The pick-and-place handle 12 has a rotating cavity 121. The rotating component is rotatably connected to the rotating cavity 121 and to the connecting base 11. Because the rotating component is rotatably mounted in the rotating cavity 121 of the pick-and-place handle 12 and simultaneously connected to the connecting base 11, the pick-and-place handle 12 can rotate relative to the connecting base 11. Furthermore, the pick-and-place handle 12 can be in a folded or unfolded state during rotation.
[0036] Specifically, the rotating cavity 121 is provided with a first locking part; the locking member is connected to the rotating member, and the locking member has a second locking part. When the locking member is subjected to force, the second locking part can move closer to or away from the first locking part, and the second locking part can at least lock the unfolded state after moving closer to the first locking part.
[0037] Based on the above structure, when using the rotatable pick-and-place component 10 of this utility model, the connecting seat 11 of the pick-and-place component 10 can be connected to cooking utensils (such as baking pans, frying baskets, grill racks, etc.), or it can be used in structures such as lids or door panels. In use, by rotating the pick-and-place handle 12 of the pick-and-place component 10 to the unfolded state, a person can hold the pick-and-place handle 12 to operate the cooking utensils for picking and placing, or to move the lid or door panel. After the pick-and-place position is in place, or after the movement is in place, the pick-and-place handle 12 can be rotated to make the pick-and-place handle 12 folded. This prevents the pick-and-place handle 12 from being affected by external forces due to its protrusion, and the overall space occupied by the pick-and-place component 10 is small when folded.
[0038] Specifically, when the handle 12 rotates, force can be applied to the locking member first, so that the second locking part of the locking member moves away from the first locking part of the rotating cavity 121, allowing the handle 12 to rotate relative to the rotating seat 14, that is, to rotate relative to the connecting seat 11 of the rotating seat 14. When the handle 12 rotates to the unfolded state, the locking member can be driven by force to move the second locking part closer to the first locking part of the rotating cavity 121. At this time, the second locking part can lock with the first locking part, and the unfolded state can be locked. The user can hold the unfolded handle 12 in the locked state to operate the cooking utensils 20 and other structures. In this way, the handle 12 will not rotate and fall under its own weight, so the unfolded state can be maintained to operate the handle 10, and the operation process is stable.
[0039] As an optional implementation, the first locking part includes a locking groove 1212; the second locking part includes a locking pin 131. The locking groove 1212 is provided in the rotating cavity 121; additionally, the locking member includes a locking rod 13 and a first elastic member 15. The locking rod 13 has a locking pin 131, and the first elastic member 15 is connected between the end of the locking rod 13 and the interior of the rotating cavity 121. The first elastic member 15 can provide a first elastic stress, which, under the action of the first elastic stress, can drive the locking pin 131 closer to the locking groove 1212, so that the locking pin 131 engages with the first elastic stress in the locking groove 1212. The locking pin 131 can also disengage from the locking groove 1212 when the locking rod 13 is subjected to external force.
[0040] In this embodiment, one end of the locking rod 13 is the first pressure-bearing end, and the other end is the second pressure-bearing section. The first pressure-bearing end of the locking rod 13 can be pressed by an external force, while the first elastic stress applied by the first elastic element 15 can be applied to the second pressure-bearing end of the locking rod 13. Under the action of this first elastic stress, the locking pin 131 of the locking rod 13 can move close to the locking groove 1212 and engage with the locking groove 1212. At this time, the take-up handle 12 cannot rotate relative to the rotating seat 14, thus realizing the unfolded state or the folded state. Moreover, the locking pin 131 of the locking rod 13 can be kept close to the locking groove 1212 by the first elastic stress provided by the first elastic element 15, making the locking state more stable.
[0041] When it is necessary to rotate the pick-up and put-down handle 12 to switch between different usage states, an external force can be applied to the first pressure end of the locking rod 13. When the first pressure end is subjected to force, it can overcome the first elastic stress. At this time, the locking pin 131 of the locking rod 13 can move away from the locking groove 1212 until it is disengaged from the locking groove 1212. In this way, the rotating base 14 and the pick-up and put-down handle 12 have relative rotational freedom, so the pick-up and put-down handle 12 can rotate relative to the connecting base 11 to realize the switching.
[0042] As an optional implementation, a guide surface 1211 may be further provided in the rotating cavity 121. After the locking rod 13 exits the locking groove 1212, the guide surface 1211 can slide with the locking rod 13 to guide the locking rod 13 to be misaligned with the locking groove 1212.
[0043] When there are two or more locking slots 1212, the two locking slots 1212 are spaced apart in the rotation direction of the pick-up and put-down handle 12 and are connected by the guide surface 1211. In this way, when the first pressure end is subjected to force, the locking pin 131 of the locking rod 13 can be disengaged from one of the locking slots 1212. Then, when the pick-up and put-down handle 12 is rotated, the locking pin 131 can remain against the guide surface 1211 under the action of the first elastic stress. When the pick-up and put-down handle 12 is rotated, the locking pin 131 can slide along the guide surface 1211 to the adjacent locking slot 1212 for another locking state.
[0044] In this embodiment, two locking slots 1212 are provided. After the locking pin 131 slides into one of the locking slots 1212, the locking pin 131 can be engaged in the locking slot 1212. In this locked state, the take-up handle 12 and the connecting seat 11 are in a horizontally unfolded state. After unlocking, the locking pin 131 is guided by the guide surface 1211 to the other locking slot 1212 and engaged in the other locking slot 1212 for locking. At this time, the take-up handle 12 and the connecting seat 11 are in a vertically folded state. That is, the two locking slots 1212 enable the take-up handle 12 to be locked at two angles: horizontally unfolded or vertically folded.
[0045] Of course, three or more locking slots 1212 can also be provided. In this way, when the take-up handle 12 is rotated to different angle states, the locking pin 131 is guided by the guide surface 1211 to different locking slots 1212 to lock at different angle states. In this way, the take-up handle 12 can be locked in more usage states and at more usage angles.
[0046] It should also be noted that the aforementioned guide surface 1211 can be implemented using a structure that can slide and guide the staggered parts, such as an inclined surface, an arc surface, or a spiral surface, as in the prior art.
[0047] As an optional implementation, the rotating component includes a rotating arm 19 and a rotating base 14. The rotating arm 19 is connected to the connecting base 11, and the rotating base 14 is rotatably connected to the rotating arm 19. Specifically, the rotating base 14 is provided with a sliding groove 141, and the rotating base 14 is provided with a movable cavity; the locking rod 13 passes through the movable cavity, and the locking pin 131 extends out through the movable cavity.
[0048] In addition, the locking component also includes a pressing cover 16, which is movably covered at the end of the rotating cavity 121. The pressing cover 16 is provided with a connecting buckle 162 and a pressing rod 161. The connecting buckle 162 on the rotating base 14 passes through the end of the rotating arm 19 and is slidably engaged with the sliding slot 141. The pressing rod 161 extends into the movable cavity and is used to press the locking rod 13 when the pressing cover 16 is subjected to external force.
[0049] Based on the above structure, the rotating cavity 121 of the take-up handle 12 can extend to the side of the take-up handle 12. During assembly, the rotating arm 19 can extend into the rotating cavity 121, the rotating seat 14 can pass through the side of the rotating cavity 121, one end of the first elastic member 15 can abut against the inner wall of the rotating cavity 121, and the other end of the first elastic member 15 can extend into the movable cavity of the rotating seat 14 and abut against the second pressure end of the locking member. The connecting buckle 162 of the pressing cover 16 can extend into the rotating cavity 121 and engage with the sliding groove 141 of the rotating seat 14, while the top pressing rod 161 can extend into the movable cavity and abut against the first pressure end of the locking rod 13. Under the action of the first elastic member 15, the locking rod 13 and the top pressing rod 161 remain in abutting state.
[0050] When unlocking, an external force is applied to the pressing cover 16, and the connecting buckle 162 of the pressing cover 16 can slide in the sliding slot 141. At this time, the pressing rod 161 can press the first pressure end of the locking rod 13 in the movable cavity. In this way, the force on the first pressure end can drive the locking pin 131 extending out of the movable cavity to disengage from the locking groove 1212. Then the take-up handle 12 can be rotated. When the take-up handle 12 is rotated to the folded state, the first elastic element 15 is reset, and the locking rod 13 can return to its original position.
[0051] Furthermore, a connecting cover 17 can be provided at the end of the rotating cavity 121. The connecting cover 17 has a first through-hole 171, and a mounting piece 191 is provided at the end of the rotating arm 19. The mounting piece 191 has a second through-hole 192, and the second through-hole 192 of the mounting piece 191 is correspondingly provided with the first through-hole 171. The connecting buckle 162 of the pressing cover 16 passes through the first through-hole 171 and the second through-hole 192 and is movably engaged with the sliding slot 141. A second elastic element 18 is provided between the pressing cover 16 and the connecting cover 17.
[0052] In this embodiment, the rotating arm 19 includes two rotating plates and a connecting plate. The ends of the two rotating plates are connected by the connecting plate, and the two rotating plates form a rotation space for assembling the rotating seat 14. During assembly, the end of the take-up handle 12 is provided with a through hole for the rotating plates to pass through. The rotating seat 14 is installed through the side of the rotating cavity 121, and then the two rotating plates pass through the rotating cavity 121. The two rotating plates are located on both sides of the rotating seat 14. Then the connecting cover 17 is installed into the side of the rotating cavity 121, and then the pressing cover 16 is used to seal the rotating cavity 121. The connecting buckle 162 of the pressing cover 16 passes through the first through hole 171 and the second through hole 192 and is locked into the sliding slot 141. In this way, the connecting cover 17 can increase the damping between the rotating plates and the side of the rotating seat 14, and the take-up handle 12 is not easy to loosen after rotation.
[0053] Furthermore, a second elastic element 18 can be provided between the pressing cover 16 and the connecting cover 17, and the second elastic stress provided by the second elastic element 18 can drive the pressing cover 16 to reset in time.
[0054] It should be noted that both the first elastic element and the second elastic element can be selected as spring structures. Of course, in other embodiments, the first elastic element and the second elastic element can also be selected as elastic rubber blocks or other structures.
[0055] As an optional implementation, the turntable 14 is provided with a limiting rib 142 on the outside; the rotating cavity 121 is circumferentially limited by a limiting groove 1213, and the limiting rib 142 slides in cooperation with the limiting groove 1213. In this way, during the rotation, the limiting rib 142 on the outside of the turntable 14 can abut against the end wall of the limiting groove 1213, limiting the rotation angle of the pick-up and put-down handle 12 and preventing the pick-up and put-down handle 12 from rotating excessively.
[0056] As an optional implementation, the rotating cavity 121 is provided with two first locking parts and two second locking parts are distributed at intervals in the rotation direction of the pick-up and put-down handle 12. The first locking parts are used to lock the unfolded state or the folded state after moving close to different second locking parts.
[0057] Specifically, there are two first locking parts. After the second locking part slides to one of the first locking parts, it can be engaged with the first locking part. In this locked state, the take-up handle 12 and the connecting seat 11 are in a horizontally unfolded state. After unlocking, the second locking part is guided by the guide surface 1211 to the other first locking part and engages with the other first locking part. At this time, the take-up handle and the connecting seat 11 are in a vertically folded state. That is, the two first locking parts enable the take-up handle 12 to be locked at two angles: horizontally unfolded or vertically folded.
[0058] Of course, three or more first locking parts can be provided. In this way, when the pick-up and put-down handle 12 is rotated to different angle states, the second locking part is guided by the guide surface 1211 to different first locking parts to lock at different angle states. In this way, the pick-up and put-down handle 12 can be locked in more usage states and at more usage angles.
[0059] As an optional implementation, the first locking part is provided.
[0060] In actual use, since the take-up handle 12 rotates relative to the connecting seat 11 through the rotating member, if the take-up handle 12 is not locked when it rotates to the unfolded state, the take-up handle 12 may rotate relative to the connecting seat 11 under its own weight and fall off. In this case, the take-up member 10 in the unfolded state will inevitably be unstable when held. Therefore, in this embodiment, a first locking part can be provided in the above-mentioned rotating cavity 121. When the take-up handle 12 rotates to the unfolded state, the second locking part can be driven by the locking rod 13 to approach the first locking part for locking.
[0061] When the handle 12 needs to be rotated to fold, simply apply force to the locking rod 13, causing the second locking part to move away from the first locking part and unlock. Then, rotate the handle 12 to displace the second locking part from the first locking part, allowing the handle 12 to rotate to the folded state. In the folded state, the handle 12 can remain folded under its own weight. Alternatively, a groove structure can be provided on the cooking vessel 20, allowing the handle 12 to be stored in the groove and maintain a stable folded state. Another option is to provide a magnetic structure on the cooking vessel 20, allowing the handle 12 to magnetically attract and maintain a stable folded state. In other words, when the handle 12 rotates relative to the connecting seat 11 to the folded state, no locking element is required; in this case, only one first locking part is needed.
[0062] Example 2,
[0063] See Figures 1-8 This embodiment provides a cooking utensil, including a cooking dish 20 and a rotatable pick-and-place component 10 as described in Embodiment 1, with a connecting seat 11 connected to the cooking dish 20. The connecting seat 11 of the pick-and-place component 10 can be connected to the cooking dish 20 (e.g., a baking pan, a frying basket, a grill rack, etc.). In use, the pick-and-place handle 12 of the pick-and-place component 10 is rotated to an unfolded state, allowing the user to hold the handle 12 and operate the cooking utensil for picking and placing items. When the pick-and-place position is reached, the handle 12 can be rotated to a folded state. This prevents the handle 12 from being affected by external forces due to its protrusion, ensuring stable cooking. Furthermore, when folded, the pick-and-place component 10 occupies less space in the cooking utensil.
[0064] Specifically, when the handle 12 rotates, force can be applied to the locking member first, so that the second locking part of the locking member moves away from the first locking part of the rotating cavity 121, allowing the handle 12 to rotate relative to the rotating seat 14, that is, to rotate relative to the connecting seat 11 of the rotating seat 14. When the handle 12 rotates to the unfolded state, the locking member can be driven by force to move the second locking part closer to the first locking part of the rotating cavity 121. At this time, the second locking part can lock with the first locking part, and the unfolded state can be locked. The user can hold the unfolded handle 12 in the locked state to operate the cooking utensils 20 and other structures. In this way, the handle 12 will not rotate and fall under its own weight, so the unfolded state can be maintained to operate the handle 10, and the operation process is stable.
[0065] In addition, the other structures of the pick-and-place member 10 in this embodiment and the working principle of the member acting on the cooking utensil are the same as those in Embodiment 1, and will not be described in detail here.
[0066] Of course, other structures of the cooking vessel 20 can be existing technologies, and their specific structures will not be described in detail here.
[0067] This document uses specific examples to illustrate the principles and implementation methods of this utility model. The description of the above embodiments is only for the purpose of helping to understand the core idea of this utility model. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the idea of this utility model. Therefore, the content of this specification should not be construed as a limitation of this utility model.
Claims
1. A rotatable pick-and-place component, characterized in that, The pick-and-place component includes a connecting base, a pick-and-place handle, a locking component, and a rotating component; the pick-and-place handle has a rotating cavity, the rotating component is rotatably connected to the rotating cavity and connected to the connecting base, so that the pick-and-place handle rotates relative to the connecting base; the pick-and-place handle is used to be in a folded state or an unfolded state after rotation; the rotating cavity has a first locking part; The locking member is connected to the rotating member, and the locking member has a second locking part. The second locking part is used to move closer to or away from the first locking part when the locking member is subjected to force. After moving closer to the first locking part, the second locking part is used to lock at least the unfolded state.
2. The rotatable pick-and-place component according to claim 1, characterized in that, The rotating cavity is provided with a locking groove; the locking member includes a locking rod and a first elastic member, the locking rod is provided with a locking post, and the first elastic member is connected between the end of the locking rod and the interior of the rotating cavity; the first elastic member is used to provide a first elastic stress that drives the locking post to approach the locking groove and engage with the locking groove; the locking post is used to disengage from the locking groove when the locking rod is subjected to external force; the first locking part includes the locking groove; the second locking part includes the locking post.
3. The rotatable pick-and-place component according to claim 2, characterized in that, The rotating cavity is also provided with a guide surface, which is used to slide with the locking rod after the locking rod exits the locking groove, so as to guide the locking rod to be misaligned with the locking groove.
4. The rotatable pick-and-place component according to claim 2, characterized in that, The rotating component includes a rotating arm and a rotating base. The rotating arm is connected to the connecting base, and the rotating base is rotatably connected to the rotating arm. The rotating base is provided with a sliding groove. The rotating base is provided with a movable cavity. The locking rod passes through the movable cavity, and the locking pin extends out through the movable cavity. The locking component also includes a pressing cover, which is movably sealed at the end of the rotating cavity. The pressing cover is provided with a connecting buckle and a pressing rod. The connecting buckle is provided on the rotating base, passing through the end of the rotating arm and slidably engaged with the sliding slot. The pressing rod extends into the movable cavity and is used to press the locking rod when the pressing cover is subjected to external force.
5. The rotatable pick-and-place component according to claim 4, characterized in that, The end of the rotating cavity is also covered with a connecting cover, which has a first through-hole; the end of the rotating arm is provided with a mounting plate, which has a second through-hole, and the second through-hole is corresponding to the first through-hole; the connecting buckle of the pressing cover passes through the first through-hole and the second through-hole and is movably engaged with the sliding slot; a second elastic element is provided between the pressing cover and the connecting cover.
6. The rotatable pick-and-place component according to claim 5, characterized in that, Both the first elastic element and the second elastic element are springs.
7. The rotatable pick-and-place component according to claim 4, characterized in that, The rotating base is provided with a limiting rib on its outside; the rotating cavity is provided with a limiting groove in the circumference, and the limiting rib and the limiting groove are slidably engaged.
8. The rotatable pick-and-place member according to any one of claims 1-7, characterized in that, The rotating cavity is provided with two first locking parts and two second locking parts are distributed at intervals in the rotation direction of the pick-up and put-down handle. The first locking parts are used to lock the unfolded state or the folded state after moving close to different second locking parts.
9. The rotatable pick-and-place member according to any one of claims 1-7, characterized in that, The first locking part is provided.
10. A cooking utensil, characterized in that, It includes a cooking vessel and a rotatable loading and unloading device according to any one of claims 1-9, wherein the connecting base is connected to the cooking vessel.