A surfboard

CN224810872UActive Publication Date: 2026-09-29GUANGZHOU CAO MING TECH CO LTD
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Patent Information

Application Number
CN202521988232.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-15
Publication Date
2026-09-29
Estimated Expiration
2035-09-15

AI Technical Summary

Technical Problem

[0004]本实用新型要解决的技术问题是:解决在使用动力件驱动冲浪板转弯时,俯卧状态下的使用者躯干容易滑落问题

Benefits of technology

[0015]本实用新型实施例提供的冲浪板与现有技术相比,其有益效果在于:通过将把手设置在条形凸起远离俯卧区域的一侧,且位于板体首部上方,能够使把手相对抬高,便于使用者在俯卧状态下进行稳定的抓握操作,减少因低位控制导致的操作不便或姿势不稳定,通过将条形凸起设置在俯卧区域两侧,条形凸起会对处于俯卧区域的使用者躯干进行有效限位,能减少使用者受到的冲击干扰,有助于防止使用者从俯卧区域滑出。

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Abstract

The utility model discloses a kind of surfboards, including: board body, the board body top surface is equipped with prone area, the board body has head and tail portion;Two strip protrusions, the first end of the strip protrusion is set on the head, the second end of the strip protrusion extends to the tail direction, two the strip protrusion is located in prone area both sides;Power piece, the power piece is arranged on the board body for with water action to push the board body moves on water;Handle, the handle is set on the side of the strip protrusion away from prone area, the handle is located above the head, the handle is equipped with control element, and the control element is used to control power piece output.The utility model is by being arranged in prone area both sides with strip protrusion, strip protrusion can effectively limit the user torso in prone area, can reduce the impact interference received by user, help to prevent user from prone area sliding out.
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Description

Technical Field

[0001] This utility model relates to the field of sports equipment technology, and in particular to a surfboard. Background Technology

[0002] Surfboards are a common recreational device, widely used in bodies of water with suitable waves, such as beaches, lakes, and swimming pools. In traditional surfing, surfers typically lie prone on the surfboard. As a suitable wave approaches, they adjust the surfboard's direction and use their hands to paddle and accelerate, gaining enough speed to stay ahead of the wave. As the wave propels the surfboard, the surfer quickly stands up, legs naturally apart with knees slightly bent, controlling the surfboard's direction by adjusting their center of gravity, shoulders, and back leg strength.

[0003] With technological advancements, existing surfboards have gradually incorporated power units into their traditional unpowered structure, enabling them to propel themselves forward even in calm water or small waves, thus enhancing their enjoyment and versatility. However, the introduction of power units has also brought some new problems. Especially when surfers are using a prone position to control the surfboard, the thrust generated by the power unit can cause some impact and interference to the user's body. Particularly when using the power unit to drive the surfboard to turn or change direction, the user's torso in the prone position is prone to slipping due to a lack of effective support, affecting safety and the user experience. Utility Model Content

[0004] The technical problem this invention aims to solve is: to address the issue that the user's torso is prone to slipping off when using a power component to drive the surfboard to turn.

[0005] To solve the above-mentioned technical problems, this utility model provides a surfboard, comprising: a board body, the top surface of which has a prone area, the board body having a head and a tail; two strip-shaped protrusions, the first end of which is disposed on the head, the second end of which extends toward the tail, the two strip-shaped protrusions being located on both sides of the prone area; a power component, the power component being disposed on the board body for interacting with water to propel the board body to move on the water; and a handle, the handle being disposed on the side of the strip-shaped protrusions away from the prone area, the handle being located above the head, the handle having a control element for controlling the output of the power component.

[0006] Furthermore, gripping holes are provided on both sides of the plate, and the gripping holes are located on the side of the strip protrusion away from the prone area.

[0007] Furthermore, the strip-shaped protrusion is an arc-shaped protrusion, with the center of the arc-shaped protrusion recessed towards the prone area, and the gripping hole is located on the side of the center of the arc-shaped protrusion away from the prone area.

[0008] Furthermore, the first end of the handle is connected to the strip-shaped protrusion, the second end of the handle is connected to the plate, and the handle is inclined upward towards the front end of the plate.

[0009] Furthermore, the plate body is provided with a flow channel extending from the inlet to the outlet. The inlet is located at the bottom of the plate body, and the outlet is located at the tail end of the plate body. The power component is disposed within the flow channel.

[0010] Furthermore, the power component includes a motor, a first propeller, and a second propeller. The first propeller and the second propeller are disposed within the flow channel and correspond to the water outlet. There are two handles, and the control elements of the two handles control the output power of the first propeller and the second propeller, respectively. The motor is used to provide power to the first propeller and the second propeller.

[0011] Furthermore, the plate body is provided with a water injection cavity, a water injection hole, and an air outlet. The water injection hole and the air outlet are both connected to the water injection cavity, and the height of the water injection hole is lower than the height of the waterline of the plate body.

[0012] Furthermore, the plate body is provided with a cover, the water injection hole is located at the first end of the plate body, the cover is detachably mounted on the water injection hole, and the cover is used to block the water injection hole.

[0013] Furthermore, the plate is composed of an upper shell and a lower shell, the upper shell being composed of an outer shell and an inner liner shell, the outer surface of the outer shell being smooth, and the material of the outer shell being one or more of polycarbonate, acrylonitrile, butadiene, and styrene copolymer, and the material of the inner liner shell being one or more of cross-linked polyethylene foam, expanded polystyrene, and expanded polypropylene.

[0014] Furthermore, the top surface of the strip-shaped protrusion is chamfered, and the cross-sectional area of ​​the strip-shaped protrusion gradually decreases from the bottom surface to the top surface.

[0015] Compared with the prior art, the surfboard provided by this utility model has the following advantages: by setting the handle on the side of the strip protrusion away from the prone area and above the head of the board, the handle can be raised relatively, which makes it easier for the user to make stable gripping operations in the prone position, reducing the inconvenience of operation or unstable posture caused by low position control. By setting the strip protrusion on both sides of the prone area, the strip protrusion will effectively limit the user's torso in the prone area, which can reduce the impact interference to the user and help prevent the user from sliding out of the prone area. Attached Figure Description

[0016] Figure 1 This is a first perspective view of the surfboard provided by this utility model;

[0017] Figure 2 This is a right view of the surfboard provided by this utility model;

[0018] Figure 3 This is a second perspective view of the surfboard provided by this utility model;

[0019] Figure 4 This is an exploded view of the surfboard provided by this utility model;

[0020] Figure 5 This is a rear view of the surfboard provided by this utility model;

[0021] Figure 6 yes Figure 5 Cross-sectional view.

[0022] The correspondence between the reference numerals and the component names is as follows:

[0023] 1. Plate body; 11. Head; 12. Tail; 13. Cover; 101. Prone area; 102. Grip hole; 103. Flow channel; 104. Inlet; 105. Outlet; 106. Water injection chamber; 107. Water injection hole; 108. Air outlet; 2. Strip-shaped protrusion; 3. Power component; 31. Motor; 32. First propeller; 33. Second propeller; 4. Handle; 41. Control element; 5. Display screen; 6. Camera. Detailed Implementation

[0024] The specific embodiments of this utility model will be further described in detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope. It should be noted that, unless otherwise specifically stated, the relative arrangement and numerical values ​​of the components and steps described in these examples do not limit the scope of this utility model.

[0025] The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit the invention or its application or use.

[0026] Techniques, methods, and equipment known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and equipment should be considered part of the specification.

[0027] In all the examples shown and discussed herein, any specific values ​​should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values.

[0028] It should be noted that similar labels and letters in the following figures indicate similar items; therefore, once an item is defined in one figure, it does not need to be discussed further in subsequent figures.

[0029] like Figures 1 to 6 As shown, this utility model embodiment discloses a surfboard, including: a board body 1, with a prone area 101 on the top surface of the board body 1, the board body 1 having a head 11 and a tail 12; two strip-shaped protrusions 2, the first end of the strip-shaped protrusions 2 being disposed on the head 11, and the second end of the strip-shaped protrusions 2 extending towards the tail 12, the two strip-shaped protrusions 2 being located on both sides of the prone area 101; a power component 3, the power component 3 being disposed on the board body 1 for interacting with water to propel the board body 1 to move on the water; and a handle 4, the handle 4 being disposed on the side of the strip-shaped protrusions 2 away from the prone area 101, the handle 4 being located above the head 11, the handle 4 having a control element 41, the control element 41 being used to control the output of the power component 3.

[0030] The surfboard of this application, by placing the handle 4 on the side of the strip protrusion 2 away from the prone area 101 and above the head 11 of the board body 1, can raise the handle 4 relatively, making it easier for the user to perform stable gripping operations in the prone position, reducing the inconvenience of operation or unstable posture caused by low-position control. By placing the strip protrusion 2 on both sides of the prone area 101, the strip protrusion 2 can effectively limit the user's torso in the prone area 101, reduce the impact interference to the user, and help prevent the user from sliding out of the prone area 101.

[0031] By providing strip-shaped protrusions 2 on both sides of the prone area 101 of the board body 1, the user's torso can be effectively limited and protected when in a prone position, helping to prevent the user from slipping off the board due to impact or inertia under the drive of the power component 3, thus improving body stability and safety during use. The handle 4 is equipped with a control element 41, which allows the user to conveniently control the start, stop or output intensity of the power component 3 while gripping the handle 4, achieving precise control during the surfboard's propulsion process and enhancing the user experience.

[0032] Specifically, the control element 41 is either a control button or a throttle lever, to meet the operating habits and needs of different users. The control button is designed as a waterproof button and is located in an easily accessible position on the handle 4. Users can start or stop the power unit 3 or switch gears by lightly touching the button. The operation is simple and the response is sensitive. The throttle lever adopts a rotary design. The output power of the power unit 3 is adjusted by rotating the lever. It has the advantages of wide adjustment range and intuitive operation, which is suitable for users who are used to traditional mechanical control methods.

[0033] To enhance the comfort of the prone area 101, this embodiment includes a highly elastic sponge pad on the top surface of the prone area 101 of the board 1. This sponge pad is made of waterproof and UV-resistant material, with a moderate thickness, ensuring cushioning for the user while reducing pressure on the body from prolonged contact, while also maintaining the overall lightness and durability of the board 1. The sponge pad is firmly fixed to the surface of the board 1 with a special adhesive, and its edges are sealed to prevent moisture from seeping into the internal structure.

[0034] In addition, to avoid sharp edges on the top surface of the strip protrusion 2 and improve safety and tactile experience, the top surface of the strip protrusion 2 is chamfered. The chamfer size is reasonable, which can effectively reduce the risk of scratches from sharp edges without affecting the restraining function of the strip protrusion 2 for the torso of the prone user. The chamfered surface is polished, with a smooth and rounded feel, enhancing the overall aesthetics of the structure.

[0035] Specifically, the two strip-shaped protrusions 2 of the surfboard have a cross-sectional area that gradually decreases from the bottom to the top. The portion of the strip-shaped protrusion 2 near the bottom of the board body 1 has a larger cross-sectional area to ensure a stable connection with the board body 1 and sufficient structural strength to effectively withstand the pressure and external impact generated when the user is prone. As the strip-shaped protrusion 2 extends towards the top, its cross-sectional area gradually decreases, forming a cross-sectional profile that narrows from wide to narrow. This tapering structure not only reduces the overall weight of the strip-shaped protrusion 2 and improves the lightness of the board body 1, but also optimizes the hydrodynamic performance of water flow around the protrusion, reduces water resistance, and improves the surfboard's movement efficiency. In addition, the gradual reduction in size of the strip-shaped protrusion 2 also enhances the comfort of the top of the strip-shaped protrusion 2, preventing the top structure from being too bulky or occupying too much space, facilitating the placement of the handle 4 and control elements 41, and allowing the user to grip the handle 4 more naturally and flexibly for power control while prone.

[0036] Specifically, plate 1 is composed of an upper shell and a lower shell. The upper shell consists of an outer shell and an inner liner. The outer shell is made of a smooth material with high impact resistance, such as polycarbonate or acrylonitrile-butadiene-styrene copolymer. The inner liner is made of a rigid material with buoyancy, such as cross-linked polyethylene foam, expanded polystyrene, or expanded polypropylene. After injection molding, the outer shell has a relatively smooth surface, resulting in less resistance to water flow on the side in contact with the water. The inner liner is pressed to achieve a strong and stable structure. Both the outer shell and the inner liner are relatively rigid shells. The injection molding and pressing process for the upper shell is as follows: During the plastic molding of the outer shell and the inner liner, the outer shell is pressed first, creating specific pores. Then, the material for the inner liner is injected into the outer shell. During pressing, the material of the inner liner fills into some of the pre-drilled pores in the outer shell, making the inner liner and the outer shell more secure. An adhesive material is also placed between the inner liner and the outer shell during pressing to further stabilize the upper shell. When the inner shell and the outer shell are pressed and fastened, the inner shell will have a certain number of holes that are pre-drilled to mate with the lower shell, so that the upper and lower shells of the surfboard are relatively stable.

[0037] like Figure 1 and Figure 2 As shown, in an optional embodiment of the utility model, gripping holes 102 are provided on both sides of the plate body 1, and the gripping holes 102 are located on the side of the strip protrusion 2 away from the prone area 101.

[0038] The surfboard features grip holes 102 along both sides of its body, allowing users to easily grip the edges with both hands. This makes it easy to lift or move the surfboard when not in use, especially suitable for carrying it from the shore to the water or from the water to shore. The grip holes 102 not only facilitate transport after surfing but also simplify storage, placement, and loading / unloading, enhancing overall convenience and user-friendliness. The grip holes 102 are located on the side of the raised strip 2 furthest from the prone area 101, avoiding interference with normal use in the prone position and ensuring the surfboard's stability and comfort in the water. The design is rational, and the functions do not conflict.

[0039] like Figure 3 Figure 4 As shown, in an optional embodiment of the utility model, the strip protrusion 2 is an arc protrusion, the middle of the arc protrusion is recessed towards the prone area 101, and the gripping hole 102 is located on the side of the middle of the arc protrusion away from the prone area 101.

[0040] The arc-shaped protrusion 2, with its center recessed into the prone area 101, creates a natural clearance space while ensuring the user's body is restrained and supported. This provides structural space for the gripping hole 102, avoiding structural stacking or interference. The integrated layout of the arc-shaped protrusion and the gripping hole 102 highly integrates restraint, gripping, and space utilization functions, balancing stable support in water and convenient operation during onshore transport, thus improving the overall structural functionality and practicality.

[0041] like Figure 1 and Figure 2 As shown, in an optional embodiment of the utility model, the first end of the handle 4 is connected to the strip protrusion 2, the second end of the handle 4 is connected to the plate 1, and the handle 4 is inclined upward towards the front end of the plate 1.

[0042] By tilting the handle 4 upwards, its position better matches the natural arm extension angle of a user in a prone position, allowing for easy gripping and control of the power unit 3 without changing posture, reducing fatigue and improving operational flexibility. The handle 4 is fixedly connected at both ends to the strip protrusion 2 and the board body 1, forming a three-point support structure. Compared to a suspended or single-point connected handle 4, this structure offers stronger torsional resistance and structural strength, preventing wobbling or deformation during power operation and enhancing safety. The tilted handle 4, positioned near the front of the board body 1, allows for quick reactions to wave conditions, enabling timely control of the power unit 3's start / stop or output adjustment, facilitating more precise control in complex water environments. Compared to a horizontal orientation, the upward tilt avoids interference between the handle 4 and the prone area 101, while raising the operating area, effectively improving overall space utilization and resulting in a more compact and rationally designed surfboard structure.

[0043] like Figure 5 and Figure 6 As shown, in an optional embodiment of the utility model, a flow channel 103 is provided inside the plate body 1. The flow channel 103 extends from the inlet 104 to the outlet 105. The inlet 104 is located at the bottom of the plate body 1, and the outlet 105 is located at the tail end of the plate body 1. The power component 3 is arranged inside the flow channel 103.

[0044] By allowing the flow channel 103 to penetrate the interior of the board body 1, a stable water flow path can be formed. Combined with the power unit 3, this achieves a more efficient water propulsion effect, reduces external water flow interference, and improves the surfboard's forward speed and maneuverability on the water surface. Placing the power unit 3 within the flow channel 103 inside the board body 1 effectively conceals the power structure, preventing exposed structures from affecting the streamlined shape of the board body 1. It also reduces the risk of damage to the power unit 3 during use, extending the device's lifespan. The layout of placing the inlet 104 at the bottom of the board body 1 and the outlet 105 at the tail end facilitates the generation of thrust along the central axis of the board body 1, improving directional stability during propulsion and preventing yaw or instability caused by thrust deviation.

[0045] like Figure 5 and Figure 6 As shown, in an optional embodiment of the utility model, the power component 3 includes a motor 31, a first propeller 32 and a second propeller 33. The first propeller 32 and the second propeller 33 are disposed in the flow channel 103 and correspond to the water outlet 105. There are two handles 4. The control elements 41 of the two handles 4 control the output power of the first propeller 32 and the second propeller 33 respectively. The motor 31 is used to provide power to the first propeller 32 and the second propeller 33.

[0046] By having the first propeller 32 and the second propeller 33 each controlled by two independent control elements 41, the user can flexibly adjust the left and right propulsion according to the heading requirements, achieving precise steering, assisted drifting, or rapid change of direction, significantly improving the surfboard's maneuverability and performance. The two propellers are distributed within the flow channel 103, corresponding to the water outlet 105, and under the drive of the motor 31, form a balanced dual-channel propulsion structure, ensuring stable operation of the board 1 during straight-line acceleration and reducing yaw and swaying. The two handles 4 control the output power of the two propellers separately, making power adjustment no longer a unified control, but rather a refined, multi-level independent control capability, allowing the user to adjust the propulsion mode in real time according to different water conditions, postures, or action requirements. Dual motors 31 can be used to easily drive the first propeller 32 and the second propeller 33, or a single motor 31 can be used to drive the dual propellers. The dual propeller structure driven by a single motor 31 can reduce the arrangement of redundant power units and reduce energy loss. At the same time, the propulsion efficiency can be improved by utilizing the water flow direction characteristics inside the flow channel 103, so as to achieve a faster and more sensitive response.

[0047] The surfboard of this application can be used underwater and has a diving function. When underwater, the user is in a prone position within the prone area 101, gripping the handles 4 on both sides of the head with both hands. By changing the output direction of the power component 3, the surfboard moves underwater. The handles 4 are connected to the strip-shaped protrusions 2 and are tilted upwards towards the head of the board body 1, ensuring that even when the user's face is close to the water surface or underwater, they can still smoothly and naturally perform gripping and control actions. Both handles 4 are equipped with control elements 41, specifically control buttons or throttle levers, which are connected to the motor output power of the first propeller 32 and the second propeller 33, respectively.

[0048] When moving in a straight line underwater, the user can simultaneously push the control elements 41 on both handles 4 to drive the first propeller 32 and the second propeller 33 to rotate at the same speed, thereby forming a symmetrical high-speed water flow in the flow channel 103. This water is then ejected through the outlet 105 to propel the surfboard forward stably. When turning underwater, the user can control one side of the handle 4 individually. For example, by increasing the power of the first propeller 32 while keeping the second propeller 33 at a low power, the surfboard will deflect, causing the entire board to make a flexible underwater turn in the opposite direction; conversely, the same applies, thus achieving precise directional control.

[0049] When the surfboard is submerged or surfaced, the user can achieve flexible control of its attitude and direction in two ways: First, through differential propulsion, the user uses the control element 41 on the handle to adjust the power output of the first propeller 32 and the second propeller 33 respectively. When the two propellers generate different thrusts, the surfboard will be subjected to a lateral torque, thereby achieving maneuvers such as rapid circling and sharp turns. Second, through body swaying, the user adjusts their center of gravity within the prone area 101, and with the restraining effect of the strip protrusion 2, the board 1 generates additional lateral force in the water, thus creating dynamic effects such as serpentine forward movement and curved gliding. These two methods can be used individually or in combination, giving the surfboard extremely high maneuverability and flexibility during submersion or surface movement. It can not only achieve stable straight-line forward movement but also execute complex maneuvers, significantly enhancing the user's control experience and the fun of underwater sports.

[0050] Furthermore, because the water inlet of the flow channel 103 is located at the bottom of the board, it ensures a continuous flow of water during diving, avoiding insufficient water intake due to changes in posture. By creating a continuous high-pressure water flow within the flow channel, the surfboard can not only maintain stable movement underwater but also provide greater thrust when needed, helping the user to quickly dive or surface, thus improving the controllability and safety of the activity.

[0051] In submerged mode, the user holds two handles 4 located on the top of the head with both hands and adjusts the output power and direction of the first propeller 32 and the second propeller 33 using control elements 41 on the handles 4. By controlling the output direction of the first propeller 32 and the second propeller 33 with the two handles 4, the surfboard can not only move forward at high speed on the water surface but also travel underwater. It provides stable and controllable propulsion in submerged mode, allowing the user to perform short-distance dives and maneuvers underwater, enhancing the surfboard's entertainment and sportiness. It also makes applications such as underwater exploration or recreational diving possible, giving the surfboard the dual functions of surface sports and underwater travel. Compared to traditional surfboards that can only glide on the water surface, the design of this utility model significantly improves entertainment and applicability, meeting the diverse needs of users for both surface and underwater sports.

[0052] Specifically, the surfboard's tail end (1) features a charging port for charging the battery pack of the power unit (3). The charging port employs a waterproof, sealed structure, covered by a waterproof cap to effectively prevent water ingress during water sports, ensuring electrical safety and port durability. The waterproof cap is secured with a snap-on or rotating locking mechanism, allowing for easy opening during use and secure closing after charging. The charging port conforms to common DC power standards, supporting both fast and safe charging modes to meet the high-efficiency charging needs of the power unit's battery pack. The charging port connects to the power unit's battery system via a cable within the board (1). The circuit structure incorporates multiple safety protection mechanisms, including overcharge and short-circuit protection, ensuring stable and reliable charging. Furthermore, the charging port's location at the tail end of the board (1) facilitates operation from the shore or while the board is docked, preventing the charging cable from interfering with the user's activity area. This layout also facilitates maintenance personnel's inspection and maintenance of the charging interface, improving overall ease of use and safety. By rationally arranging the charging port at the tail end of the board body 1, this embodiment achieves convenient charging and safe protection of the battery of the power component 3, effectively extending the range of the power system and improving the efficiency of surfboard use and user experience.

[0053] like Figure 6 As shown, in an optional embodiment of the utility model, the plate body 1 is provided with a water injection cavity 106, a water injection hole 107 and an air outlet 108. The water injection hole 107 and the air outlet 108 are both connected to the water injection cavity 106. The height of the water injection hole 107 is lower than the height of the water line of the plate body 1.

[0054] Introducing a certain amount of water through the water-filling cavity 106 effectively increases the weight of the board 1 and the depth of its center of gravity sinking, providing stronger anti-overturning ability under power-driven or wave impact, and significantly improving the lateral and longitudinal stability of the surfboard. The structure of the water-filling cavity 106 allows for adjustment of the water volume according to the usage scenario or the user's weight, thereby achieving flexible control of the buoyancy of the board 1 and improving its adaptability to different water conditions, body types, or play styles. After proper water filling, the prone area 101 can be closer to the water surface, increasing the contact area with the water surface, improving the stability and comfort when prone, and preventing the torso from swaying or slipping due to excessive buoyancy. The height of the water-filling hole 107 is lower than the waterline, ensuring that water can naturally flow into the water-filling cavity 106 under normal use of the board 1, while air is expelled from the cavity through the air vent 108, realizing an automatic water filling process. The structural design is simple and efficient, requiring no complex auxiliary devices. By adjusting the center of gravity through internal water injection, not only is the swaying of the board 1 reduced during high speeds or turns, but it also prevents users from falling due to a high center of gravity, thus improving overall operational safety.

[0055] like Figure 1 and Figure 4 As shown, in an optional embodiment of the utility model, the plate body 1 is provided with a cover 13, and the water injection hole 107 is located at the first end of the plate body 1. The cover 13 is detachably mounted on the water injection hole 107 and is used to block the water injection hole 107.

[0056] By providing a removable cap 13 at the front end of the board body 1 to seal the water inlet 107, the water inlet 107 can be effectively closed when not in use. This prevents water leakage, improves the sealing performance of the water inlet cavity 106, and avoids backflow or debris entering the water inlet 107 due to water flow or board body tilting during use. Simultaneously, the removable structure allows users to flexibly turn the water inlet function on or off in different usage scenarios, improving ease of use and board body maintainability, and further enhancing the surfboard's stability, safety, and practicality.

[0057] like Figure 1 and Figure 3 As shown, in an optional embodiment of the utility model, the prone area 101 is an inclined plane, which slopes upward from the head 11 to the tail 12.

[0058] By setting the prone area 101 as an inclined plane structure that slopes from the front 11 to the rear 12 of the board 1, the user's body fit is improved when prone, allowing the chest and forearms to naturally rise above the abdomen and legs, effectively improving the comfort and stability of the prone position. At the same time, the inclined design helps the user maintain a good field of vision and forward observation angle when paddling or maneuvering the handles 4, improving control precision and safety, especially during starts and turns, enhancing the overall surfing experience.

[0059] like Figure 3 and Figure 5 As shown, in an optional embodiment of the utility model, a display screen 5 and a camera 6 are also included. Both the display screen 5 and the camera 6 are disposed on the top surface of the head 11. The display screen 5 is perpendicular to the plate 1 and is located between two strip protrusions 2.

[0060] By installing a display screen 5 and a camera 6 on the top surface of the front part 11 of the surfboard 1, with the display screen 5 perpendicular to the surfboard 1 and located between two strip-shaped protrusions 2, a combination of real-time information display and field of vision monitoring is achieved. Through the display screen 5 on the surfboard 1, users can conveniently view key data such as speed, battery level, and navigation during surfing. Simultaneously, the camera 6 can be used to record the surfing process or monitor the environment, enhancing interactivity and safety. The display screen 5 is strategically positioned, not interfering with the use of the prone area 101, thus enhancing the surfboard's intelligence and user experience.

[0061] Specifically, control buttons are provided on both sides of the display screen 5. These two control buttons control the operating mode and operating power of the motor 31, respectively. Independent mode and linkage mode are among the operating modes. When selecting independent mode via the control buttons, the blades of the two power components 3 are individually controlled by the control element 41 located on the handle 4. For example, pressing the control element 41 on the left handle 4 will power the left blade to rotate. When selecting linkage mode via the control buttons, the control elements 41 on both handles 4 must be pressed simultaneously for the blades of the two power components 3 to generate power; pressing only one control element 41 on one handle 4 will not provide power.

[0062] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and substitutions can be made without departing from the technical principles of the present utility model, and these improvements and substitutions should also be considered within the protection scope of the present utility model.

Claims

1. A surfboard, characterized in that, include: The plate has a prone area on its top surface and has a head and a tail. Two strip-shaped protrusions, the first end of which is disposed on the head portion, and the second end of which extends toward the tail portion, the two strip-shaped protrusions being located on both sides of the prone area; A power component, which is disposed on the plate and is used to interact with water to propel the plate to move on the water; The handle is located on the side of the strip-shaped protrusion away from the prone area, above the head, and has a control element for controlling the output of the power component.

2. The surfboard according to claim 1, characterized in that, The plate has gripping holes on both sides of its edge, and the gripping holes are located on the side of the strip protrusion away from the prone area.

3. The surfboard according to claim 2, characterized in that, The strip-shaped protrusion is an arc-shaped protrusion, with the center of the arc-shaped protrusion recessed towards the prone area, and the gripping hole is located on the side of the center of the arc-shaped protrusion away from the prone area.

4. The surfboard according to claim 1, characterized in that, The first end of the handle is connected to the strip-shaped protrusion, the second end of the handle is connected to the plate, and the handle is inclined upward towards the front end of the plate.

5. The surfboard according to claim 1, characterized in that, The plate body is provided with a flow channel that extends from the inlet to the outlet. The inlet is located at the bottom of the plate body, and the outlet is located at the tail end of the plate body. The power component is disposed in the flow channel.

6. The surfboard according to claim 5, characterized in that, The power components include a motor, a first propeller, and a second propeller. The first propeller and the second propeller are disposed in the flow channel and correspond to the water outlet. There are two handles. The control elements of the two handles control the output power of the first propeller and the second propeller, respectively. The motor is used to provide power to the first propeller and the second propeller.

7. The surfboard according to claim 1, characterized in that, The plate body is provided with a water injection cavity, a water injection hole and an air outlet. The water injection hole and the air outlet are both connected to the water injection cavity. The height of the water injection hole is lower than the height of the waterline of the plate body.

8. The surfboard according to claim 7, characterized in that, The plate is provided with a cover, and the water injection hole is located at the first end of the plate. The cover is detachably mounted on the water injection hole and is used to block the water injection hole.

9. The surfboard according to claim 1, characterized in that, The plate is composed of an upper shell and a lower shell, the upper shell being composed of an outer shell and an inner liner shell, and the outer surface of the outer shell being smooth.

10. The surfboard according to claim 1, characterized in that, The top surface of the strip-shaped protrusion is chamfered, and the cross-sectional area of ​​the strip-shaped protrusion gradually decreases from the bottom surface to the top surface.