Printing head assembly and three-dimensional printer
By introducing a nozzle unit and a limiting unit into the printhead assembly, the problems of nozzle collision and burns with the model are solved, achieving safety protection for the nozzle unit and improving print quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHENZHEN CREALITY 3D TECH CO LTD
- Filing Date
- 2025-05-13
- Publication Date
- 2026-04-21
AI Technical Summary
In fused deposition modeling, the nozzles of the printhead assembly are prone to collisions with the printed 3D object or being touched by the operator, resulting in model damage and burns. Furthermore, existing technologies cannot effectively protect the nozzle unit.
A printhead assembly is designed, comprising a nozzle unit and a limiting unit. The nozzle unit can move in a first direction, and the limiting unit restricts the nozzle unit to a first position when it receives a driving force. After printing is completed, the nozzle unit is released and reset to a second position to avoid collisions and accidental contact.
It effectively protects the model and nozzle unit, improves print quality, reduces safety risks to operators, ensures that the nozzle unit does not return to a non-working position during printing, and guarantees printing stability and safety.
Smart Images

Figure CN121893519A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of stereoscopic printing, and in particular to a printhead assembly and a stereoscopic printer. Background Technology
[0002] In fused deposition modeling (FDM), thermoplastic filament is melted through a heated nozzle and deposited layer by layer onto a printing platform to form a three-dimensional model.
[0003] In related technologies, the nozzles of the printhead assembly typically extend beyond the printhead assembly housing to facilitate the extrusion of filament from the nozzle outlet. After printing, the printhead assembly may collide with the printed three-dimensional object as it moves, potentially damaging the model and the nozzle. Furthermore, if the operator accidentally touches the freshly printed nozzle, they may be burned by it. Summary of the Invention
[0004] This application provides a printhead assembly and a 3D printer that can improve print quality, effectively protect the model and nozzle unit, and make it safer to use.
[0005] In a first aspect, the printhead assembly provided in the embodiments of this application includes:
[0006] The nozzle unit is movable in a first direction; and
[0007] Limiting unit;
[0008] The nozzle unit that receives the driving force can move to a first position along the first direction;
[0009] The limiting unit is used to restrict the nozzle unit, which receives the driving force and is in the first position, to the first position. The limiting unit is also used to release the nozzle unit, so that the nozzle unit, which does not receive the driving force and is in the first position, can move along the first direction to the second position.
[0010] In some embodiments, the nozzle unit includes a nozzle head, and the limiting unit includes a limiting member, the limiting member and the nozzle head being disposed correspondingly in the first direction;
[0011] The limiting member can move in a second direction perpendicular to the first direction to the moving path of the nozzle member, so as to prevent the nozzle member from moving along the first direction, thereby restricting the nozzle unit that receives the driving force and is in the first position to the first position.
[0012] The limiting member can also move in the second direction to a position not on the movement path, so as to release the nozzle member in the first direction, thereby allowing the nozzle unit, which is not receiving the driving force and is in the first position, to move to the second position.
[0013] In some embodiments, the printhead assembly further includes a drive unit and a material delivery unit, wherein the material delivery unit and the nozzle unit are arranged in a one-to-one correspondence in the first direction, and the drive unit is used to drive the corresponding material delivery unit to deliver consumables to the corresponding nozzle unit along the first direction;
[0014] Consumables conveyed along the first direction are used to provide the driving force.
[0015] In some embodiments, the material conveying unit includes a first conveying wheel and a second conveying wheel spaced apart to define a conveying channel for extruding consumables along the first direction, wherein the first conveying wheel is connected to the output end of the drive unit.
[0016] In some embodiments, the printhead assembly includes a plurality of nozzle units, which are arranged sequentially along a second direction perpendicular to the first direction;
[0017] During the movement of one of the nozzle units to the first position in the first direction, the nozzle unit can push the limiting unit to move in the second direction to release the nozzle unit.
[0018] In some embodiments, the nozzle unit includes a nozzle head and a first reset member, and the limiting unit includes a limiting member and a second reset member;
[0019] The nozzle component is used to receive the driving force, and the nozzle component is also used to push the limiting member to move to a third position along a second direction perpendicular to the first direction;
[0020] The limiting member in the third position is used to release the nozzle component, so that the nozzle component, which is not receiving the driving force and is in the first position, moves to the second position under the action of the first reset member;
[0021] The second reset member is used to drive the limiting member in the third position to move to the fourth position, so as to restrict the nozzle unit that receives the driving force and is in the first position to the first position.
[0022] In some embodiments, the nozzle assembly includes a delivery tube and a first limiting body fixed to the delivery tube;
[0023] The limiting member includes a second limiting body and a limiting groove, which are respectively provided in a one-to-one correspondence with the first limiting body in the first direction. The limiting groove is located on one side of the second limiting body in the second direction.
[0024] During the process of the nozzle component moving from the second position to the first position, the first limiting body can push the corresponding second limiting body to move along the second direction, so that the limiting component moves from the fourth position to the third position, thereby allowing the first limiting body to move in the first direction to align with the limiting groove. The second resetting member is used to push the limiting component from the third position to the fourth position, so that the second limiting body restricts the first limiting body within the limiting groove.
[0025] In some embodiments, the second limiting body includes a protrusion and a recess arranged sequentially in the first direction. The width of the protrusion gradually increases along the direction close to the recess. The protrusion and the recess together form the limiting groove. The limiting groove has a first groove surface perpendicular to the first direction and a second groove surface perpendicular to the second direction. The first groove surface is the interface between the protrusion and the recess in the first direction, and the second groove surface is one side surface of the recess in the second direction. The second limiting body also has a guide surface. The guide surface is the side surface of the protrusion away from the recess in the first direction, and the guide surface is set at an angle relative to the second direction.
[0026] During the process of the nozzle component moving from the second position to the first position, the first limiting body abuts against the guide surface and moves to be confined between the first groove surface and the second groove surface.
[0027] In some embodiments, each of the nozzle components includes two first limiting bodies, which are symmetrically arranged in a third direction perpendicular to the first direction and the second direction.
[0028] In some embodiments, the limiting member further includes a base, the second limiting body protrudes from the base in the first direction, the second limiting body and the base together form the limiting groove, and the first limiting body of the nozzle component in the first position abuts against the base.
[0029] In some embodiments, the printhead assembly further includes a heat dissipation unit, the nozzle unit is disposed through the heat dissipation unit along the first direction, the limiting unit is connected to the heat dissipation unit, and the heat dissipation unit has a feed hole that cooperates with the feed tube body, and a stepped surface is formed on the wall of the feed hole;
[0030] The nozzle assembly also includes a connector, which is fixedly sleeved on the outside of the delivery pipe. The first limiting body protrudes upward from the connector, and the first resetting member is sleeved on the delivery pipe and is restricted between the stepped surface and the connector.
[0031] In some embodiments, the printhead assembly further includes a connector having a mounting slot;
[0032] The base is confined within the assembly groove and is movable relative to the connector in the second direction. The second reset member is confined within the assembly groove, and one end of the second reset member abuts against the base and the other end abuts against the connector in the second direction.
[0033] In some embodiments, the limiting member further includes a first guide and a second guide respectively fixed to both ends of the base in the second direction, the first guide and the second guide respectively passing through the connector along the second direction, and the second reset member sleeved on the first guide.
[0034] In some embodiments, the end of the second guide away from the base protrudes outside the connector, and a reset body is fixed to the end of the second guide away from the base;
[0035] When the reset body is pressed along the second direction, the nozzle component, which is not receiving the driving force and is in the first position, can move to the second position under the action of the first reset body.
[0036] In some embodiments, the printhead assembly further includes a heating unit, and the nozzle unit passes through the heating unit along the first direction;
[0037] The printhead assembly also includes a shielding unit that corresponds to each of the nozzle units;
[0038] The shielding unit has a first end and a second end disposed opposite to each other in the first direction, and the first end of the shielding unit is connected to the heating unit;
[0039] When the nozzle unit is in the second position, the outlet of the nozzle unit is blocked by the second end of the corresponding blocking unit;
[0040] When the nozzle unit is in the first position, the outlet of the nozzle unit is exposed at the second end of the corresponding shielding unit.
[0041] In some embodiments, the blocking unit is elastic;
[0042] During the process of the corresponding nozzle unit moving to the first position, the nozzle unit pushes the second end of the blocking unit to move away from the discharge port of the nozzle unit;
[0043] During the process of the corresponding nozzle unit moving to the first position, the second end of the shielding unit moves towards the discharge port of the nozzle unit under its own elastic action.
[0044] In some embodiments, along the first end to the second end of the shielding unit, the shielding unit includes a first elastic arm, a second elastic arm, a third elastic arm and a fourth elastic arm connected in sequence, wherein the first elastic arm extends along the first direction, the second elastic arm extends obliquely along a direction away from the heating unit, the third elastic arm extends obliquely along a direction close to the heating unit, and the fourth elastic arm extends along a third direction perpendicular to the first direction and the second direction.
[0045] Secondly, the stereo printer provided in the embodiments of this application includes the printhead assembly provided in any of the above embodiments.
[0046] Compared with the prior art, the beneficial effects of the embodiments of this application are as follows: The printhead assembly and 3D printer include a nozzle unit and a limiting unit. The nozzle unit is movable in a first direction. The nozzle unit receiving driving force can move to a first position along the first direction. The limiting unit is used to restrict the nozzle unit receiving driving force and in the first position to the first position. The limiting unit is also used to release the nozzle unit, allowing the nozzle unit not receiving driving force and in the first position to move to a second position along the first direction. Through the embodiments of this application, when the nozzle unit receives driving force, the nozzle unit can move to the first position in the positive direction of the first direction. The nozzle unit, which is in the first position when receiving driving force, can restrict the nozzle unit to the first position during printing, preventing it from resetting to the second position and affecting continuous printing, thus ensuring print quality. When the nozzle unit finishes printing and no longer receives driving force, the limiting unit can release the nozzle unit, allowing it to reset, i.e., return to the second position in the opposite direction of the first direction. This can prevent the nozzle unit from colliding with the printed model and damaging the model and nozzle unit, thus effectively protecting the model and nozzle unit. It can also reduce the risk of operators accidentally touching the nozzle unit, making it safer. Attached Figure Description
[0047] Figure 1 This is a schematic diagram of the printhead assembly structure according to an embodiment of this application, wherein all nozzle units are in the second position;
[0048] Figure 2 for Figure 1 The diagram shows a partial structural representation of the printhead assembly.
[0049] Figure 3 for Figure 2 The front view;
[0050] Figure 4 for Figure 3 Top view;
[0051] Figure 5 for Figure 4 A partial structural schematic diagram of the AA cross-section;
[0052] Figure 6 for Figure 3 The right view;
[0053] Figure 7 This is a schematic diagram of the first state structure of the printhead assembly according to an embodiment of this application;
[0054] Figure 8 This is a schematic diagram of the second state structure of the printhead assembly according to an embodiment of this application;
[0055] Figure 9 This is a schematic diagram of the third state structure of the printhead assembly according to an embodiment of this application;
[0056] Figure 10 This is a schematic diagram of the fourth state structure of the printhead assembly according to an embodiment of this application;
[0057] Figure 11 This is a schematic diagram of the fifth state structure of the printhead assembly according to an embodiment of this application;
[0058] Figure 12 This is a schematic diagram of the sixth state structure of the printhead assembly according to an embodiment of this application;
[0059] Figure 13 This is a schematic diagram of the seventh state structure of the printhead assembly according to an embodiment of this application;
[0060] Figure 14 This is a schematic diagram of the eighth state structure of the printhead assembly according to an embodiment of this application;
[0061] Figure 15 This is a schematic diagram of the ninth state structure of the printhead assembly according to an embodiment of this application;
[0062] Figure 16 This is a schematic diagram of the nozzle unit structure in the printhead assembly of an embodiment of this application;
[0063] Figure 17 This is a schematic diagram of the limiting unit structure in the printhead assembly according to an embodiment of this application;
[0064] Wherein: 1- Nozzle unit (1a- Nozzle unit, 1b- Nozzle unit, 1c- Nozzle unit, 1d- Nozzle unit, 101- Nozzle head component (1011- Conveying pipe body (10111- Extrusion hole (101111- First hole section, 101112- First hole section, 101113- Inlet, 101114- Outlet)), 1012- First limiting body, 1013- Connecting body), 102- First resetting component), 2- Limiting unit (201- Limiting component (2011- Second limiting body (20111- Protrusion, 20112- Recess, 20113- Guide surface), 2012- Limiting groove (20121- First groove surface, 20122- Second groove surface, 20123- Third groove surface), 2013- Base (20131- Relief hole), 2014- First guide body) 1. 2015-Second guide body, 2016-Reset body, 202-Second reset component, 3-Consumables, 4-Drive unit, 5-Heat dissipation unit (501-Feeding hole, 502-Step surface, 503-Heat dissipation fin), 6-Connector (601-Assembly slot), 7-Heating unit (701-Temperature equalizer (7011-Knockout, 7012-Temperature equalizer (70121-Heating hole))), 8-Shielding unit (801-First end, 802-Second end, 803-First elastic arm, 804-Second elastic arm, 805-Third elastic arm, 806-Fourth elastic arm), 9-Heat insulation unit (901-Heat insulation gap, 902-Heat insulation plate), 10-Housing, 11-Material conveying unit (1101-First conveying wheel, 1102-Second conveying wheel, 1103-Conveying channel). Detailed Implementation
[0065] To facilitate understanding of this application, a more complete description will be provided below with reference to the accompanying drawings. Preferred embodiments of this application are shown in the drawings. However, this application can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a thorough and complete understanding of the disclosure of this application.
[0066] It should be noted that when a component is said to be "fixed to" another component, it can be directly attached to the other component or there may be an intervening component. When a component is said to be "connected to" another component, it can be directly connected to the other component or there may be an intervening component.
[0067] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the application.
[0068] Please refer to Figures 1 to 17The printhead assembly in this embodiment includes a nozzle unit 1 and a limiting unit 2. The nozzle unit 1 can move in the forward direction of a first direction to a first position, and the nozzle unit 1 can also move in the reverse direction of the first direction to a position such that... Figures 1 to 3 ,as well as Figures 6 to 7 The second position is shown. The nozzle unit 1, which receives the driving force, can move to the first position in the forward direction of the first direction. The nozzle unit 1 in the first position can be used to extrude consumable 3. The limiting unit 2 is used to restrict the nozzle unit 1, which receives the driving force and is in the first position, to the first position. The limiting unit 2 is also used to release the nozzle unit 1, so that the nozzle unit 1, which does not receive the driving force and is in the first position, can be reset to the second position in the reverse direction of the first direction. The nozzle unit 1 in the second position does not extrude consumable 3.
[0069] In this embodiment, when nozzle unit 1 receives driving force, it can move to a first position in the forward direction of the first direction and extrude consumable 3. Limiting unit 2 can restrict nozzle unit 1, which is in the first position and has received driving force, to remain in that position, preventing it from resetting to the second position during printing and affecting continuous printing, thus ensuring print quality. When nozzle unit 1 finishes printing and no longer receives driving force, limiting unit 2 can release nozzle unit 1, allowing it to reset, i.e., return to the second position in the reverse direction of the first direction. This prevents the nozzle unit 1 from colliding with the printed model, causing the model to adhere to the nozzle unit 1, and preventing damage to both the model and nozzle unit 1. This effectively protects both the model and nozzle unit 1 and reduces the risk of operators accidentally touching the heated nozzle unit 1, resulting in higher safety.
[0070] As an example, the printhead assembly also includes a housing 10. When the nozzle unit 1 is in the first position, the outlet 101114 of the nozzle unit 1 extends out of the housing 10, and the length of the outlet 101114 extending out of the housing 10 is L1. Please refer to... Figure 1 When the nozzle unit 1 is in the second position, the outlet 101114 of the nozzle unit 1 is housed in the housing 10, or the outlet 101114 of the nozzle unit 1 extends out of the housing 10 by a length of L2, where L2 is less than L1. This reduces the risk of operators accidentally touching the nozzle unit 1 and improves safety.
[0071] In some embodiments, the limiting unit 2 can move in the reverse direction of the second direction to the movement path of the nozzle unit 1, wherein the second direction is perpendicular to the first direction. The limiting unit 2 on the movement path of the nozzle unit 1 can block the nozzle unit 1, which is receiving driving force and is in the first position, in the reverse direction of the first direction, ensuring that the nozzle unit 1, receiving driving force and in the first position, cannot reset to the second position in the reverse direction of the first direction. In this embodiment, even if there is insufficient or lost driving force, as long as the limiting unit 2 remains on the movement path of the nozzle unit 1, the nozzle unit 1 cannot reset to the second position, improving the stability of the overall structure and preventing the nozzle unit 1, which has not yet completed printing, from accidentally returning to the second position, resulting in ineffective printing. The limiting unit 2 can also move in the forward direction of the second direction to a position not located on the movement path of the nozzle unit 1. It is understood that the limiting unit 2 not located on the movement path of the nozzle unit 1 will not obstruct the nozzle unit 1 from moving in the reverse direction of the first direction; therefore, the limiting unit 2 not located on the movement path of the nozzle unit 1 can release the nozzle unit 1. If nozzle unit 1 no longer receives driving force at this time, that is, nozzle unit 1 has completed the current printing work, nozzle unit 1 can return to the second position in the opposite direction of the first direction and wait for the next printing work.
[0072] As an example, the nozzle unit includes a nozzle head. The limiting unit includes a limiting member. The limiting member is disposed corresponding to the nozzle head in a first direction. The limiting member can move in a second direction to be located on the movement path of the nozzle head, thereby preventing the nozzle head from moving in the first direction, and thus restricting the nozzle unit, which receives driving force and is in a first position, to the first position. The limiting member can also move in the second direction to be not located on the movement path, releasing the nozzle head from the first direction, thereby allowing the nozzle unit, which does not receive driving force and is in the first position, to move to the second position.
[0073] In some implementations, the driving force is parallel to the first direction. For example, the driving force can be a thrust parallel to the first direction.
[0074] In one embodiment, the printhead assembly further includes a drive unit 4 and a material delivery unit 11, which are respectively configured in a one-to-one correspondence with the nozzle unit 1. The material delivery unit 11 is configured in a first direction corresponding to the nozzle unit 1, and is connected to the output end of the drive unit 4. The drive unit 4 drives the material delivery unit 11 to deliver the consumable 3 to the corresponding nozzle unit 1 in the forward direction of the first direction. When the consumable 3 is delivered to the nozzle unit 1 in the forward direction of the first direction, the consumable 3 moving in the forward direction of the first direction will press against the nozzle unit 1 in the forward direction of the first direction, thereby pushing the nozzle unit 1 to move to a first position in the forward direction of the first direction. That is, the consumable 3 delivered to the nozzle unit 1 in the forward direction of the first direction can be used to provide driving force. As an example, when the nozzle unit 1 moves to the first position, other structures or other environmental elements on the limiting unit 2 will block the nozzle unit 1, preventing the nozzle unit 1 from continuing to move in the forward direction of the first direction. However, since consumable 3 is continuously supplied to the nozzle unit 1 that is printing, consumable 3 always provides driving force to the nozzle unit 1 that is printing, thus ensuring that the nozzle unit 1 remains in the first position and does not return to the second position. Even if the limiting unit 2 suddenly malfunctions and moves to a position outside the movement path of the nozzle unit 1, the driving force provided by consumable 3 will keep the nozzle unit 1 in the first position for printing, ensuring printing stability and further preventing the nozzle unit 1 from accidentally returning to the second position during printing.
[0075] As an example, please refer to Figure 1 The drive unit 4 may include a motor. It is understood that the drive unit 4 may also have other structures, which can be set according to the actual situation, and will not be elaborated here.
[0076] As an example, the material conveying unit 11 may include a first conveying wheel 1101 and a second conveying wheel 1102 spaced apart in a second direction, with the first conveying wheel 1101 connected to the output end of the drive unit 4. The gap between the first conveying wheel 1101 and the second conveying wheel 1102 is configured as a conveying channel 1103, which is used to extrude the consumable 3 along the first direction. It is understood that the material conveying unit 11 may also have other structures, which can be configured according to actual conditions, and will not be described in detail here.
[0077] It should be noted that in other implementations, the driving force can be provided by other mechanisms or manually, which can be set according to the actual situation, and will not be elaborated here.
[0078] In some implementation methods, please refer to Figure 3 , Figure 4 , Figures 5 to 15The printhead assembly includes multiple nozzle units 1, which are arranged sequentially along a second direction. Each nozzle unit 1 is independent of the others and can receive a corresponding driving force. That is, each nozzle unit 1 is used to deliver its corresponding consumable 3. During the process of one of the nozzle units 1 receiving the driving force and moving towards the first position in the positive direction of the first direction, the nozzle unit 1 moving towards the first position in the positive direction of the first direction can push the limiting unit 2 to move in the positive direction of the second direction. This prevents the limiting unit 2 from being located on the movement path of the nozzle unit 1. This not only allows the nozzle unit 1 receiving the driving force to move smoothly to the first position, but also releases the nozzle unit 1 in the first direction. This allows the nozzle unit 1 that has completed the current printing work but is still restricted to the first position by the limiting unit 2 to return to the second position without interfering with other nozzle units 1 that are currently printing. This effectively protects the nozzle units 1 that are not currently printing and protects the model.
[0079] In this embodiment, each nozzle unit 1 delivers its corresponding consumable 3, meaning that each consumable 3 does not need to share a single nozzle unit 1. When switching consumable 3, there is no need to first cut off and retract the previously extruded consumable 3 before replacing it with a new one, saving material changing time, improving printing efficiency, and enabling high-speed printing. Furthermore, when switching consumable 3, there is no need to remove any residual consumable 3 from the nozzle unit 1, enabling waste-free printing.
[0080] As an example, the printhead assembly works as follows: In the initial state, please refer to... Figure 7 As shown, nozzle units 1a, 1b, 1c, and 1d are all located in the second position, and the limiting unit 2 is simultaneously located on the movement path of all nozzle units 1. It can be understood that the movement path of nozzle unit 1 refers to the path taken by each nozzle unit 1 in the first direction between the first and second positions. All movement paths of nozzle units 1 are along the first direction, and the movement paths of each nozzle unit 1 are parallel to each other and do not interfere with each other. When the drive unit 4 and material conveying unit 11 corresponding to nozzle unit 1a begin conveying consumable 3, please refer to... Figure 8 and Figure 9 As shown, nozzle unit 1a moves towards a first position in the positive direction of the first direction under the push of consumable 3. During the movement of nozzle unit 1a towards the first position in the positive direction of the first direction, nozzle unit 1a pushes limiting unit 2 to move in the positive direction of the second direction. Therefore, limiting unit 2 does not interfere with the movement of nozzle unit 1a to the first position in the positive direction of the first direction. When nozzle unit 1a moves to... Figure 10 After the first position shown, nozzle unit 1a no longer interferes with the limiting unit 2 in the second direction, allowing the limiting unit 2 to return along the reverse direction of the second direction to the movement path of all nozzle units 1. Please refer to... Figure 11 As shown. When nozzle unit 1a completes its current printing, that is, when the corresponding drive unit 4 stops feeding consumable 3, nozzle unit 1a cannot return to the second position due to the obstruction of the limiting unit 2. If at this time the drive unit 4 and material conveying unit 11 corresponding to nozzle unit 1b start feeding consumable 3, nozzle unit 1b moves towards the first position in the positive direction of the first direction under the push of consumable 3. During the process of nozzle unit 1b moving towards the first position in the positive direction of the first direction, nozzle unit 1b will push the limiting unit 2 to move in the positive direction of the second direction to a position that is not located on the movement path of all nozzle units 1. Please refer to [reference needed]. Figure 12 As shown, that is, under the action of nozzle unit 1b, limiting unit 2 can release nozzle unit 1a, so that nozzle unit 1a can return to the opposite direction in the first direction. Figure 13 The second position shown. When nozzle unit 1b moves to... Figure 14 After the first position shown, the limiting unit 2 returns to the moving path of all nozzle units 1 in the reverse direction of the second direction. Please refer to... Figure 15 As shown.
[0081] It should be noted that in other embodiments, the limiting unit 2 can also be pushed by other external forces to move in the positive direction of the second direction. This can be set according to the actual situation, and will not be elaborated here.
[0082] In one implementation, at most one nozzle unit 1 prints at any given time; for example, at most one nozzle unit 1 receives driving force at any given time. In another implementation, multiple nozzle units 1 can print simultaneously, enabling mixed printing of various consumables 3. For example, if the consumables 3 extruded by multiple nozzle units 1 are of different colors, mixed-color printing can be achieved. Furthermore, multiple nozzle units 1 can start extruding consumables 3 simultaneously or sequentially. It is understood that as long as nozzle unit 1 continues to receive driving force, even if other nozzle units 1 push the limiting unit 2 to move in the positive direction of the second direction to a position not located on the movement path of all nozzle units 1, the nozzle unit 1 that continues to receive driving force will not return to the second position.
[0083] In some implementation methods, please refer to Figures 7 to 15 As shown, the nozzle unit 1 includes a nozzle head 101 and a first reset member 102. Please refer to... Figure 11 In nozzle unit 1a, when nozzle head 101 is in the first position, first reset member 102 is in a compressed state. Please refer to... Figure 11 The nozzle unit 1b, nozzle unit 1b, and nozzle unit 1b, when the nozzle head 101 is in the second position, the first reset member 102 is in the initial state. Please refer to... Figures 7 to 15As shown, the limiting unit 2 includes a limiting member 201 and a second reset member 202. The limiting member 201 can move in the forward direction of the second direction to a third position, and the limiting member 201 can also move in the reverse direction of the second direction to a fourth position. The third position is not located on the movement path of the nozzle unit 1. When the limiting member 201 is in the third position, the second reset member 202 is in a compressed state. Please refer to [reference needed]. Figure 9 and Figure 10 The fourth position is located on the moving path of nozzle unit 1. When the limiting member 201 is in the fourth position, the second reset member 202 is in the initial state. Please refer to [reference needed]. Figure 7 and Figure 11 .
[0084] In this embodiment, the nozzle 101 is used to receive driving force, that is, the nozzle 101 can be used to extrude consumable 3 in the forward direction along the first direction. When the nozzle 101 receives driving force, the nozzle 101 moves towards the first position in the forward direction of the first direction. During this process, the nozzle 101 continuously presses the first reset member 102 in the forward direction of the first direction, so that the first reset member 102 is gradually compressed. Furthermore, the nozzle 101 is also used to push the limiting member 201 to move to the third position in the forward direction of the second direction. The limiting member 201 in the third position can be used to release the nozzle 101, so that the nozzle 101, which is not receiving driving force and is in the first position, is reset to the second position under the elastic force of the first reset member 102. During the process of the limiting member 201 moving to the third position in the forward direction of the second direction, the limiting member 201 continuously presses the second reset member 202 in the forward direction of the second direction, and the second reset member 202 is gradually compressed. When the nozzle 101 moves to the first position, meaning it no longer obstructs the limiting member 201 in the opposite direction of the second direction, the compressed second reset member 202, under its own elastic force, pushes the limiting member 201 to move towards the fourth position in the opposite direction of the second direction. This continues until the second reset member 202 returns to its initial state, at which point the limiting member 201 is in the fourth position. Since the limiting member 201 in the fourth position is located on the movement path of the nozzle unit 1, it ensures that the nozzle unit 1, receiving the driving force and in the first position, remains in the first position and will not accidentally return to the second position.
[0085] In some implementation methods, please refer to Figure 16 The nozzle assembly 101 includes a delivery pipe body 1011 and a first limiting body 1012, the first limiting body 1012 being fixed to the delivery pipe body 1011. Please refer to... Figure 17The limiting member 201 includes a second limiting body 2011 and a limiting groove 2012. The second limiting body 2011 and the limiting groove 2012 are respectively provided in a one-to-one correspondence with the first limiting body 1012 in the first direction, and the second limiting body 2011 defines the limiting groove 2012, which is located on the opposite side of the second limiting body 2011 in the second direction. During the process of the nozzle component 101 moving from the second position to the first position, the first limiting body 1012 can push the corresponding second limiting body 2011 to move in the positive direction of the second direction, thereby causing the limiting member 201 to move from the fourth position to the third position, and then causing the first limiting body 1012 to move in the positive direction of the first direction to align with the corresponding limiting groove 2012. When the nozzle component 101 moves to the first position, since the nozzle component 101 no longer abuts against the limiting member 201 in the opposite direction of the second direction, the compressed second reset member 202 can push the limiting member 201 to move from the third position to the fourth position in the opposite direction of the second direction. The second limiting body 2011 of the limiting member 201 in the fourth position just restricts the first limiting body 1012 in the limiting groove 2012. It is not only simple in structure, but also can effectively restrict the nozzle component.
[0086] As one implementation method, please refer to Figure 5 The conveying tube 1011 has an extrusion hole 10111 extending through it in a first direction. The extrusion hole 10111 has an inlet 101113 and an outlet 101114 arranged opposite each other in the first direction. The material conveying unit 11 can convey the consumable 3 from the inlet 101113 into the extrusion hole 10111 in the forward direction of the first direction, and then the conveying tube 1011 extrudes the molten consumable 3 from the outlet 101114. In some examples, along the forward direction of the first direction, the extrusion hole 10111 includes a first hole segment 101111 and a first hole segment 101112 arranged sequentially. The diameter of the first hole segment 101111 can be larger than the diameter of the consumable 3, facilitating the entry of the consumable 3 into the extrusion hole 10111. The second segment 101112 is a tapered hole with an inlet and an outlet opposite to each other. The inlet of the second segment 101112 is connected to the first segment 101111, and the diameter of the inlet of the second segment 101112 is larger than the diameter of the outlet. When the consumable 3 enters the second segment 101112 through the first segment 101111, the consumable 3 abuts against the wall of the second segment 101112, generating a positive force in the first direction on the delivery tube 1011. This force acts as a driving force, causing the nozzle 101 that has not reached the first position to move toward the first position, or causing the nozzle 101 that is in the first position to remain in the first position.
[0087] It should be noted that in other embodiments, the conveying pipe 1011 can also be other structures, which can be set according to the actual situation.
[0088] As one implementation method, please refer to Figure 16 The first limiting body 1012 can be a protrusion extending from the surface of the conveying pipe 1011 in a third direction, with the third direction perpendicular to the first and second directions. Please refer to... Figure 17 The second limiting body 2011 includes a protrusion 20111 and a recess 20112, which are sequentially arranged along the positive direction of a first direction. The protrusion 20111 protrudes from the recess 20112 on the opposite side of the second direction. The width of the protrusion 20111 gradually increases along the positive direction of the first direction. The protrusion 20111 and the recess 20112 together form a limiting groove 2012, which has an integral first groove surface 20121 and a second groove surface 20122. The first groove surface 20121 is the interface between the protrusion 20111 and the recess 20112 in the first direction and is perpendicular to the first direction. The second groove surface 20122 is the surface of the recess 20112 on the opposite side of the second direction and is perpendicular to the second direction. The second limiting body 2011 also has a guide surface 20113, which is the surface of the protrusion 20111 opposite to the first direction. The guide surface 20113 is set at an angle relative to the second direction. Therefore, during the movement of the nozzle 101 along the first direction, the nozzle 101 abutting against the guide surface 20113 can push the limiting body 201 to move along the second direction. During the movement of the nozzle 101 from the second position to the first position, the first limiting body 1012 abuts against the guide surface 20113 and moves to be confined between the first groove surface 20121 and the second groove surface 20122.
[0089] As an example, taking nozzle unit 1a as an example, the working principle of the printhead assembly is as follows: Please refer to Figure 7 In the initial state, the nozzle head 101 of the nozzle unit 1a is in the second position. At this time, the first limiting body 1012 can abut against the guide surface 20113, or the first limiting body 1012 can have a certain gap with the guide surface 20113. Please refer to... Figure 8 When the nozzle head 101 of the nozzle unit 1a moves towards the first position in the positive direction of the first direction under the push of the consumable 3, during the movement of the nozzle head 101 towards the first position in the positive direction of the first direction, the first limiting body 1012 of the nozzle unit 1a abuts against the guide surface 20113, pushing the limiting member 201 to move in the positive direction of the second direction. Figure 9 The third position shown. When the nozzle head 101 of nozzle unit 1a moves to... Figure 10When the nozzle unit 1a is in the first position, the first limiting body 1012 no longer abuts against the guide surface 20113. At this time, the nozzle head 101 of the nozzle unit 1a no longer interferes with the limiting member 201 in the opposite direction of the second direction. Therefore, the limiting member 201 can return to the opposite direction of the second direction under the action of the second reset member 202. Figure 11 The fourth position is shown. During the process of the limiting member 201 moving in the reverse direction along the second direction to the fourth position, the limiting groove 2012 of the limiting member 201 gradually coincides with the first limiting body 1012 of the nozzle unit 1a in the first direction. Until the limiting member 201 moves to the fourth position, the first limiting body 1012 of the nozzle unit 1a is precisely confined between the first groove surface 20121 and the second groove surface 20122. Please refer to... Figure 11 As shown.
[0090] Understandably, when the printhead 101 is printing normally, the first groove surface 20121 and the first limiting body 1012 can have a gap in the first direction to prevent the extended printhead 101 from accidentally interfering with the limiting body 201 moving in the opposite direction to the fourth position. Alternatively, when the printhead 101 is printing normally, the first groove surface 20121 and the first limiting body 1012 can be in contact in the first direction, thereby further improving the fitting accuracy between the printhead 101 and the limiting body 201 and improving the stability of the overall structure. Similarly, when the printhead 101 is printing normally, the second groove surface 20122 and the first limiting body 1012 can have a gap in the second direction, or the second groove surface 20122 and the first limiting body 1012 can be in contact in the second direction. This can be set according to the actual situation and will not be elaborated here.
[0091] As one implementation method, please refer to Figures 2 to 5The printhead assembly also includes a heat dissipation unit 5. Nozzle units 1 pass through the heat dissipation unit 5 along a first direction, and a limiting unit 2 is connected to the heat dissipation unit 5. The heat dissipation unit 5 has feed holes 501 corresponding to the nozzle units 1 one-to-one. The feed tubes 1011 of each nozzle unit 1 pass through the corresponding feed holes 501, resulting in better heat dissipation and effectively preventing mutual interference between adjacent nozzle units 1. An annular stepped surface 502 is formed on the wall of the feed hole 501, and the stepped surface 502 is arranged in the opposite direction to the first direction. The printhead assembly 101 also includes a connector 1013, which is fixedly sleeved outside the feed tube 1011 and protrudes from the feed tube 1011 around the first direction. A first limiting body 1012 is fixed to the connector 1013 and protrudes from the connector 1013 in a third direction. The first reset member 102 is sleeved on the conveying pipe 1011 and is confined between the stepped surface 502 and the connecting body 1013. When the nozzle 101 moves towards the first position in the positive direction of the first direction, the distance between the connecting body 1013 and the stepped surface 502 gradually decreases because the stepped surface 502 remains fixed, thereby gradually compressing the first reset member 102. Since the stepped surface 502 is formed within the conveying hole 501, that is, the first reset member 102 is at least partially housed within the conveying hole 501, which improves the stability of the first reset member 102.
[0092] As an example, please refer to Figures 2 to 5 The heat dissipation unit 5 may include a heat sink 503, and a feed hole 501 is formed on the heat sink 503. The heat dissipation unit 5 may also include a cooling fan (not shown in the figure) fixed to the heat sink 503, which can be set according to the actual situation, and will not be described in detail here.
[0093] In some implementation methods, please refer to Figure 17 The limiting member 201 also includes a base 2013, and a second limiting body 2011 is formed on the side of the base 2013 opposite to the first direction. The second limiting body 2011 and the base 2013 together form a limiting groove 2012, which also includes a third groove surface 20123. The surface of the base 2013 perpendicular to the first direction and facing the opposite side of the first direction is constructed as the third groove surface 20123. When the nozzle 101 moves to the first position, the third groove surface 20123 abuts against the first limiting body 1012 of the nozzle 101 in the positive direction of the first direction, preventing the nozzle 101 from continuing to move in the positive direction of the first direction under the action of the driving force, thus avoiding excessive extension of the nozzle.
[0094] As one implementation method, please refer to Figure 16Each nozzle component 101 may include two first limiting bodies 1012, which are symmetrically arranged in a third-order direction. That is, each nozzle component 101 corresponds to two second limiting bodies 2011, which are symmetrically arranged in a third-order direction. Please refer to [reference needed]. Figure 17 The second limiting body 2011 cooperates with the corresponding first limiting body 1012, which improves the fitting accuracy between the printhead 101 and the limiting body 201, making the printhead 101 more stable during the printing process, improving the printing quality, and also making the limiting body 201 move more stably along the second direction.
[0095] As an example, the substrate 2013 can be a hollow frame structure, with a clearance hole 20131 in the middle of the substrate 2013, and the nozzle 101 passing through the clearance hole 20131. Each nozzle 101 includes two first limiting bodies 1012 symmetrically arranged in the third direction, and two second limiting bodies 2011 corresponding to the same nozzle 101 are symmetrically arranged on both sides of the clearance hole 20131 in the third direction.
[0096] As one implementation method, please refer to Figure 2 The printhead assembly also includes a connector 6, which is fixed to the heat dissipation unit 5. The connector 6 has an assembly groove 601 that extends through the connector 6 along a first direction. A limiting unit 2 is connected to the heat dissipation unit 5 via the connector 6. The base 2013 is confined within the assembly groove 601 and is movable relative to the connector 6 along a second direction. A second reset member 202 is confined within the assembly groove 601, with its opposite end in the second direction abutting against the base 2013 and its positive end in the second direction abutting against the connector 6. When the limiting member 201 moves towards a third position along the positive direction of the second direction, the second reset member 202 is gradually compressed by the base 2013 because the connector 6 remains stationary.
[0097] As one implementation method, please refer to Figure 17The limiting member 201 also includes a first guide body 2014 and a second guide body 2015. The first guide body 2014 is fixed to one end of the base 2013 in the positive direction of the second direction, and the second guide body 2015 is fixed to one end of the base 2013 in the opposite direction of the second direction. Furthermore, the first guide body 2014 and the second guide body 2015 are respectively inserted through the connecting member 6 along the second direction. That is, during the movement of the limiting member 201 along the second direction, the connecting member 6 guides the limiting member 201, allowing it to move more stably along the second direction. The second reset member 202 is sleeved on the first guide body 2014. That is, during the compression of the second reset member 202 and during its return to its initial state, the first guide body 2014 guides the second reset member 202, improving its stability.
[0098] As an example, please refer to Figures 1 to 4 The limiting member 201 may further include a reset body 2016. One end of the second guide 2015, away from the base 2013, protrudes outside the connector 6, and the reset body 2016 is fixed to the end of the second guide 2015 away from the base 2013. Pushing the reset body 2016 in the positive direction along the second direction can move the limiting member 201 to a third position in the positive direction along the second direction, so that the printhead assembly 101, which is not receiving driving force and is in the first position, can move to the second position under the action of the first reset member 102. In some examples, the reset body 2016 can be pushed manually. Alternatively, the printhead assembly can be selectively brought close to the environmental element, causing the environmental element to push the reset body 2016 in the positive direction along the second direction.
[0099] In some implementation methods, please refer to Figure 2 , Figure 3 and Figure 5 The printhead assembly also includes a heating unit 7, and a nozzle unit 1 is disposed in the heating unit 7 along a first direction. The heating unit 7 can heat the consumable 3 passing through the nozzle unit 1 to a molten state, thereby enabling the nozzle unit 1 to extrude the molten consumable 3.
[0100] As an example, the heating unit 7 and the heat dissipation unit 5 are spaced apart in a first direction. In some examples, the heating unit 7 is fixed to the heat dissipation unit 5 by a heat insulation unit 9.
[0101] As one implementation method, please refer to Figure 3 and 6The printhead assembly includes a heating unit 7, which includes a temperature equalization element 701 and a heating element (not shown). The temperature equalization element 701 has several cutouts 7011, each of which penetrates the temperature equalization element 701 along a third direction. All cutouts 7011 are evenly spaced along a second direction to divide the temperature equalization element 701 into multiple temperature equalization bodies 7012. Each temperature equalization body 7012 corresponds to a nozzle unit 1, and the nozzle unit 1 is inserted into its corresponding temperature equalization body 7012. The heating element is fixed to the temperature equalization element 701, and the heating element corresponds to each nozzle unit 1. The temperature equalization body 7012 is used to evenly transfer the heat generated by the heating element to the corresponding nozzle unit 1, thereby evenly heating and melting the consumable 3 within the corresponding nozzle unit 1.
[0102] As an example, please refer to Figure 5 The temperature equalizer 7012 has heating holes 70121 that correspond one-to-one with the conveying pipe 1011.
[0103] As an example, the temperature equalization element 701 can be a block structure made of copper. The heating element can be a PTC (Positive Temperature Coefficient) heater. It is understood that in other embodiments, the temperature equalization element 701 can be made of other materials or have other shapes. The heating element can also be other heaters, which can be set according to the actual situation, and will not be elaborated here.
[0104] It is understood that in other embodiments, the heating unit 7 may also be configured in a one-to-one correspondence with the nozzle unit 1, which can be configured according to the actual situation, and will not be elaborated here.
[0105] In one embodiment, the heat insulation unit 9 includes a heat insulation gap 901 disposed in the first direction between the heating unit 7 and the heat dissipation unit 5, thereby effectively preventing the heat from the heating unit 7 from being transferred to the heat dissipation unit 5.
[0106] As an example, the heat insulation unit 9 also includes a heat insulation plate 902 disposed in the heat insulation gap 901, and the heat insulation plate 902 is connected between the heating unit 7 and the heat dissipation unit 5.
[0107] In some implementation methods, please refer to Figures 1 to 3 ,and Figure 6 and Figure 5 The printhead assembly also includes a blocking unit 8, which is configured in a one-to-one correspondence with the nozzle unit 1. The blocking unit 8 has a first end 801 and a second end 802 disposed opposite each other in a first direction. The first end 801 of the blocking unit 8 is connected to the heating unit 7. Please refer to [reference needed]. Figure 6 and Figure 5When the corresponding nozzle unit 1 is in the second position, the outlet 101114 of the nozzle unit 1 is blocked by the second end 802 of the blocking unit 8. After switching nozzle unit 1, the non-working nozzle unit 1 will still have heat and residual consumables that overflow, and the blocking unit 8 can block the overflowing waste. That is to say, the nozzle unit 1 that is not currently printing is blocked by the blocking unit 8, which not only protects the nozzle unit 1, but also prevents the consumables 3 in the non-printing nozzle unit 1 from accidentally overflowing onto the printing platform, thus preventing nozzle unit 1 from leaking glue. The outlet 101114 of the nozzle unit 1 in the first position is exposed at the second end 802 of the blocking unit 8, so the blocking unit 8 will not interfere with the normal printing of the nozzle unit 1.
[0108] In one implementation, the blocking unit 8 is elastic. During the movement of the corresponding nozzle unit 1 to the first position, the nozzle unit 1 can push the second end 802 of the corresponding blocking unit 8 towards the discharge port 101114 away from the nozzle unit 1, thereby allowing the discharge port 101114 of the nozzle unit 1 to protrude from the second end 802 of the blocking unit 8 to extrude the consumable 3. During the movement of the corresponding nozzle unit 1 to the first position, the second end 802 of the blocking unit 8 can move towards the discharge port 101114 of the nozzle unit 1 under its own elasticity, until the discharge port 101114 of the nozzle unit 1 is blocked in the positive upward direction of the first direction by the blocking unit 8. This not only has a simple structure but also effectively protects the nozzle unit 1.
[0109] As an example, the blocking unit 8 can be a spring clip. Please refer to... Figure 6 Along the first end 801 to the second end 802 of the shielding unit 8, the shielding unit 8 includes a first elastic arm 803, a second elastic arm 804, a third elastic arm 805 and a fourth elastic arm 806 connected in sequence. The first elastic arm 803 extends along a first direction, the second elastic arm 804 extends obliquely in a direction away from the heating unit 7, the third elastic arm 805 extends obliquely in a direction close to the heating unit 7, and the fourth elastic arm 806 extends along a third direction. This not only effectively shields the unprinted nozzle unit 1, but also effectively prevents the shielding unit 8 from breaking after repeated use, thus extending the service life of the shielding unit 8.
[0110] This application includes the printhead assembly provided in any of the above embodiments.
[0111] In this embodiment, when nozzle unit 1 receives driving force, it can move to a first position in the forward direction of the first direction and extrude consumable 3. Limiting unit 2 can restrict nozzle unit 1, which is in the first position and has received driving force, to remain in that position, preventing it from resetting to the second position during printing and affecting continuous printing, thus ensuring print quality. When nozzle unit 1 finishes printing and no longer receives driving force, limiting unit 2 can release nozzle unit 1, allowing it to reset, i.e., return to the second position in the reverse direction of the first direction. This prevents collision between nozzle unit 1 and the printed model, thus avoiding model adhesion to nozzle unit 1 and model damage, effectively protecting both the model and nozzle unit 1.
[0112] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0113] The above embodiments merely illustrate preferred implementations of this application, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the scope of protection of this application. Therefore, the scope of protection of this patent application should be determined by the appended claims.
Claims
1. A printhead assembly, characterized in that, include: The nozzle unit is movable in a first direction; and Limiting unit; The nozzle unit that receives the driving force can move to a first position along the first direction; The limiting unit is used to restrict the nozzle unit, which receives the driving force and is in the first position, to the first position. The limiting unit is also used to release the nozzle unit, so that the nozzle unit, which does not receive the driving force and is in the first position, can move along the first direction to the second position.
2. The printhead assembly as claimed in claim 1, characterized in that, The nozzle unit includes a nozzle component, and the limiting unit includes a limiting component, which is correspondingly disposed with the nozzle component in the first direction; The limiting member can move in a second direction perpendicular to the first direction to the moving path of the nozzle member, so as to prevent the nozzle member from moving along the first direction, thereby restricting the nozzle unit that receives the driving force and is in the first position to the first position. The limiting member can also move in the second direction to a position not on the movement path, so as to release the nozzle member in the first direction, thereby allowing the nozzle unit, which is not receiving the driving force and is in the first position, to move to the second position.
3. The printhead assembly as claimed in claim 1, characterized in that, The printhead assembly further includes a drive unit and a material delivery unit. The material delivery unit and the nozzle unit are arranged in a one-to-one correspondence in the first direction. The drive unit is used to drive the corresponding material delivery unit to deliver consumables to the corresponding nozzle unit along the first direction. Consumables conveyed along the first direction are used to provide the driving force.
4. The printhead assembly as claimed in claim 3, characterized in that, The material conveying unit includes a first conveying wheel and a second conveying wheel spaced apart to define a conveying channel for extruding consumables along the first direction, wherein the first conveying wheel is connected to the output end of the drive unit.
5. The printhead assembly as claimed in claim 1, characterized in that, The printhead assembly includes a plurality of nozzle units, which are arranged sequentially along a second direction perpendicular to the first direction; During the movement of one of the nozzle units to the first position in the first direction, the nozzle unit can push the limiting unit to move in the second direction to release the nozzle unit.
6. The printhead assembly as claimed in claim 5, characterized in that, The nozzle unit includes a nozzle head and a first reset member, and the limiting unit includes a limiting member and a second reset member; The nozzle component is used to receive the driving force, and the nozzle component is also used to push the limiting member to move to a third position along a second direction perpendicular to the first direction; The limiting member in the third position is used to release the nozzle component, so that the nozzle component, which is not receiving the driving force and is in the first position, moves to the second position under the action of the first reset member; The second reset member is used to drive the limiting member in the third position to move to the fourth position, so as to restrict the nozzle unit that receives the driving force and is in the first position to the first position.
7. The printhead assembly as claimed in claim 6, characterized in that, The nozzle assembly includes a delivery pipe body and a first limiting body fixed to the delivery pipe body; The limiting member includes a second limiting body and a limiting groove, which are respectively provided in a one-to-one correspondence with the first limiting body in the first direction. The limiting groove is located on one side of the second limiting body in the second direction. During the process of the nozzle component moving from the second position to the first position, the first limiting body can push the corresponding second limiting body to move along the second direction, so that the limiting component moves from the fourth position to the third position, thereby allowing the first limiting body to move in the first direction to align with the limiting groove. The second resetting member is used to push the limiting component from the third position to the fourth position, so that the second limiting body restricts the first limiting body within the limiting groove.
8. The printhead assembly as claimed in claim 7, characterized in that, The second limiting body includes a protrusion and a recess arranged sequentially in the first direction. The width of the protrusion gradually increases along the direction close to the recess. The protrusion and the recess together form the limiting groove. The limiting groove has a first groove surface perpendicular to the first direction and a second groove surface perpendicular to the second direction. The first groove surface is the interface between the protrusion and the recess in the first direction, and the second groove surface is one side surface of the recess in the second direction. The second limiting body also has a guide surface. The guide surface is the side surface of the protrusion away from the recess in the first direction, and the guide surface is set at an angle relative to the second direction. During the process of the nozzle component moving from the second position to the first position, the first limiting body abuts against the guide surface and moves to be confined between the first groove surface and the second groove surface.
9. The printhead assembly as claimed in claim 7, characterized in that, Each of the nozzle components includes two first limiting bodies, which are symmetrically arranged in a third direction perpendicular to the first direction and the second direction.
10. The printhead assembly as claimed in claim 9, characterized in that, The limiting member further includes a base, and the second limiting body protrudes from the base in the first direction. The second limiting body and the base together form the limiting groove, and the first limiting body of the nozzle component in the first position abuts against the base.
11. The printhead assembly as claimed in claim 10, characterized in that, The printhead assembly further includes a heat dissipation unit, the nozzle unit is disposed through the heat dissipation unit along the first direction, the limiting unit is connected to the heat dissipation unit, the heat dissipation unit has a feeding hole that cooperates with the conveying tube body, and a stepped surface is formed on the wall of the feeding hole; The nozzle assembly also includes a connector, which is fixedly sleeved on the outside of the delivery pipe. The first limiting body protrudes upward from the connector, and the first resetting member is sleeved on the delivery pipe and is restricted between the stepped surface and the connector.
12. The printhead assembly as claimed in claim 10, characterized in that, The printhead assembly also includes a connector, which has an assembly slot. The base is confined within the assembly groove and is movable relative to the connector in the second direction. The second reset member is confined within the assembly groove, and one end of the second reset member abuts against the base and the other end abuts against the connector in the second direction.
13. The printhead assembly as claimed in claim 12, characterized in that, The limiting member further includes a first guide and a second guide, which are respectively fixed to both ends of the base in the second direction. The first guide and the second guide are respectively inserted through the connector along the second direction, and the second reset member is sleeved on the first guide.
14. The printhead assembly as claimed in claim 13, characterized in that, The end of the second guide away from the base protrudes outside the connector, and a reset body is fixed to the end of the second guide away from the base; When the reset body is pressed along the second direction, the nozzle component, which is not receiving the driving force and is in the first position, can move to the second position under the action of the first reset body.
15. The printhead assembly as claimed in claim 1, characterized in that, The printhead assembly further includes a heating unit, and the nozzle unit passes through the heating unit along the first direction; The printhead assembly also includes a shielding unit that corresponds to each of the nozzle units; The shielding unit has a first end and a second end disposed opposite to each other in the first direction, and the first end of the shielding unit is connected to the heating unit; When the nozzle unit is in the second position, the outlet of the nozzle unit is blocked by the second end of the corresponding blocking unit; When the nozzle unit is in the first position, the outlet of the nozzle unit is exposed at the second end of the corresponding shielding unit.
16. The printhead assembly as claimed in claim 15, characterized in that, The shielding unit is elastic; During the process of the corresponding nozzle unit moving to the first position, the nozzle unit pushes the second end of the blocking unit to move away from the discharge port of the nozzle unit; During the process of the corresponding nozzle unit moving to the first position, the second end of the shielding unit moves towards the discharge port of the nozzle unit under its own elastic action.
17. The printhead assembly as claimed in claim 16, characterized in that, Along the first end to the second end of the shielding unit, the shielding unit includes a first elastic arm, a second elastic arm, a third elastic arm and a fourth elastic arm connected in sequence, wherein the first elastic arm extends along the first direction, the second elastic arm extends obliquely along a direction away from the heating unit, the third elastic arm extends obliquely along a direction close to the heating unit, and the fourth elastic arm extends along a third direction perpendicular to the first direction and the second direction.
18. A 3D printer, characterized in that, Includes the printhead assembly as described in any one of claims 1 to 17.