Conduction structure and conduction method thereof
By designing a rotatable, rotatable or transversely moving barrier structure, the problem of fluid transmission instability caused by gaps in traditional valves is solved, and the stable flow of fluid in the conducting structure is achieved.
Patent Information
- Application Number
- CN202411343896.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2024-05-22
- Filing Date
- 2024-09-25
- Publication Date
- 2025-05-09
AI Technical Summary
Traditional valves are prone to gaps after use for a period of time, resulting in the inability to stable fluid transmission.
A conductive structure is designed, including the first and second body parts, each with a flow path and a stop body, and the stop body is connected to each other through rotation, rotation, lateral movement, etc., so as to achieve stable flow of fluid.
The stable flow of fluid between the first and second body parts is achieved, and the problem of fluid transmission instability caused by valve gaps is avoided.
Smart Images

Figure CN119957749A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a conducting structure and a conducting method thereof, in particular to a conducting structure which can make a required fluid flow stably. Background Art
[0002] Generally, when transmitting fluid, a valve is installed in the fluid pipeline as required to serve as a switch for fluid transmission.
[0003] However, conventional valves usually produce gaps after being used for a period of time, and lose their valve effect, making it impossible for the fluid to be stably transmitted in the pipeline. Summary of the invention
[0004] Based on at least one embodiment of the present invention, the present invention provides a conducting structure and a conducting method thereof, which can enable the required fluid to flow stably in the first body part and the second body part.
[0005] To achieve the above and other purposes, the present invention provides a conduction structure, which includes: a first body and a second body. The first body includes a first flow path, and the first flow path is movably provided with a first baffle; the second body includes a second flow path, and the second flow path is movably provided with a second baffle, and the first baffle can be rotated, turned, moved laterally or moved so that the fluid passes through the first flow path to push the second baffle to open the second flow path.
[0006] The present invention provides another conduction structure, which includes: a first body and a second body. The first body includes a first flow path, the first flow path is movably provided with a first baffle, and the first baffle is provided with a conduction part; the second body includes a second flow path, the second flow path is movably provided with a second baffle, and the first baffle can be rotated, turned, moved laterally or moved to make the conduction part and the first flow path mutually connected, so that the fluid can push the second baffle through the first flow path and the conduction part, and the second baffle opens the second flow path, so that the fluid can flow in the first flow path and the second flow path.
[0007] The present invention provides another conduction structure, which includes: a first body and a second body. The first body includes a first flow path, the first flow path is movably provided with a first baffle, and the first baffle is provided with a conduction part; the second body includes a second flow path, the second flow path is movably provided with a second baffle, and the first baffle and the second baffle can be rotated, turned, moved laterally or moved, so that the first flow path, the conduction part and the second flow path are connected to each other, so that fluid can flow in the first flow path and the second flow path.
[0008] The present invention provides another conduction structure, which includes: a first body and a second body. The first body includes a first flow path, and the first flow path is provided with a first baffle; the second body includes a second flow path, and the second flow path is provided with a second baffle. The first baffle and the second baffle are moved to open the flow path, so as to allow fluid to flow in the first flow path and the second flow path.
[0009] The present invention provides another conduction structure, which includes: a first body and a second body. The first body includes a first flow path, and the first flow path is movably provided with a first blocker; the second body includes a second flow path, and the second flow path is movably provided with a second blocker, wherein the first blocker and the second blocker are rotating bodies, the first blocker is provided with a first toothed portion, the second blocker is provided with a second toothed portion, and the first body or the second body is provided with a driving body, or the object is provided with a driving body, which is used to drive the first blocker and the second blocker to rotate to open the flow path.
[0010] The present invention provides another conduction structure, which includes: a first flow path and a second flow path. The first flow path is provided with a first baffle; the second flow path is provided with a second baffle, and the first baffle or the second baffle can be rotated, turned, moved laterally or moved to connect the first flow path to the second flow path.
[0011] The present invention provides another conduction structure, which includes: a first body and a second body. The first body includes a first flow path, and the first flow path is provided with a first blocker; the second body includes a second flow path, and the second flow path is provided with a second blocker, and the first blocker or the second blocker is moved to open the first flow path and the second flow path.
[0012] The present invention provides another conduction structure, which includes: a first body and a second body. The first body includes a first flow path, and the first flow path is provided with a first blocker; the second body includes a second flow path, and the second flow path is provided with a second blocker, wherein the first blocker and the second blocker are rotating bodies, the first blocker is provided with a first toothed portion or a driving body, and the second blocker is provided with a second toothed portion or a driving body, which are used to drive, mutually drive, relatively drive, drive, mutually drive, relatively drive, move, mutually move, relatively move, actuate, mutually actuate, rotate or relatively rotate to open the first flow path and the second flow path.
[0013] The present invention provides another conduction structure, which includes: a first body and a second body. The first body includes a first flow path, and the first flow path is provided with a first blocker; the second body includes a second flow path, and the second flow path is provided with a second blocker, wherein the first blocker and the second blocker are rotating bodies, the first blocker is provided with a first toothed portion or a driving body, and the second blocker is provided with a second toothed portion or a driving body.
[0014] The present invention provides another conduction structure, which includes: a first body and a second body. The first body includes a first flow path, and the first flow path is provided with a first blocker; the second body includes a second flow path, and the second flow path is provided with a second blocker, wherein the first blocker is provided with a first toothed portion or a driving body, and the second blocker is provided with a second toothed portion or a driving body.
[0015] The present invention provides another conduction structure, which includes: a first body and a second body. The first body includes a first flow path, and the first flow path is provided with a first baffle; the second body includes a second flow path, and the second flow path is provided with a second baffle.
[0016] The present invention provides another conduction structure, which includes: a first body and a second body. The first body includes a first flow path, and the first flow path is provided with a first baffle; the second body includes a second flow path, and the second flow path is provided with a second baffle, and the second flow path is provided with a second baffle, and the second body pushes the first baffle to open the first flow path, so that the fluid pushes the second baffle to open the second flow path, or the second body pushes the first baffle to open the first flow path, so that the fluid flows into the second body to push the second baffle, or the second body pushes the first baffle to open the first flow path closed by the baffle and the first baffle, so that the fluid pushes the second baffle to open the second flow path.
[0017] The present invention provides another conduction structure, which comprises: a first body and a second body. The first flow path is provided with a first baffle; the second flow path is provided with a second baffle.
[0018] The present invention provides another conduction structure, which includes: a first body or a second body. The first body includes a first flow path, and the first flow path is provided with a first baffle; or the second body includes a second flow path, and the second flow path is provided with a second baffle.
[0019] The present invention provides another conduction method, which first rotates, turns, moves laterally or moves the first baffle to open the first flow path, and then moves laterally or moves the second baffle to open the second flow path, so as to conduct the first flow path and the second flow path, or first moves laterally or moves the first baffle to open the first flow path, and then rotates, turns, moves laterally or moves the second baffle to open the second flow path, so as to conduct the first flow path and the second flow path, or rotates, turns, moves laterally or moves the first baffle to open the first flow path, and also rotates or turns, moves laterally or moves the second baffle to open the second flow path, so as to conduct the first flow path and the second flow path.
[0020] The present invention provides another conduction method, which uses the buckle body to buckle the first body part and the second body part, and first rotates, turns, moves laterally or moves the first blocker to open the first flow path, and then moves laterally or moves the second blocker to open the second flow path, so as to conduct the first flow path and the second flow path, or uses the buckle body to buckle the first body part and the second body part, and first moves or moves the first blocker laterally to open the first flow path, and then rotates, turns, moves laterally or moves the second blocker to open the second flow path, so as to conduct the first flow path and the second flow path.
[0021] The present invention provides another conduction method, which first rotates, turns, moves laterally or moves the first baffle to open the first flow path, so as to use the power or thrust of the fluid to push the second baffle pushed by the elastic component to conduct the first flow path and the second flow path, and the power or thrust of the fluid is greater than the elastic force of the elastic component.
[0022] Optionally, the first stopper or the second stopper is a valve body, a ball valve, a transverse valve body, a gate valve or a valve body, or the first stopper is provided with a first operating part or the second stopper is provided with a second operating part.
[0023] Optionally, the first operating part or the second operating part drives the first stopper or the second stopper to make the first flow path and the second flow path communicate with each other.
[0024] Optionally, the first stopper or the second stopper is provided with a stopper, which limits the moving position of the first stopper, the second stopper, the first operating part or the second operating part, and the stopper is provided with at least one flow channel, which connects the second flow path or the first flow path.
[0025] Optionally, the first body, the first flow path, the first baffle, the second body, the second flow path or the second baffle is provided with a baffle or a suction fluid.
[0026] Optionally, the first stopper, the second stopper, the fluid stopper or the fluid suction body are corresponding structures, so that the first stopper and the second stopper are in contact with each other, stop or elastically stop each other.
[0027] Optionally, the corresponding parts of the first stopper body and the second stopper body are arc-shaped, oblique, stepped, flat, curved, concave or convex.
[0028] Optionally, the first block body and the second block body are corresponding structures, so that the space for storing fluid between the first block body and the second block body is less than 500C.C. or the first operating part or the second operating part is a rod body, a concave body, a convex body, a shaft part or a shaft body.
[0029] Optionally, the fluid baffle or the fluid absorbent is an O-ring, a ring body, an elastomer, a foam, a cotton body, a return fluid valve, a sponge body, a siphon body, a foam body, a fiber body, a flow-absorbing cotton body, a recyclable material body, a degradable material body, a colloid, a buffer body or an object that can absorb fluid.
[0030] Optionally, the first body part or the second body part is provided with a buckle body, and the buckle body buckles the first body part and the second body part, and the buckle body is a spring buckle body, a bead body, a plastic buckle, a metal buckle body, a labor-saving buckle body, a spring buckle body or a lever buckle body, or the buckle body buckles the first body part and the second body part.
[0031] Optionally, the first body portion is provided with an elastic component, and two ends of the elastic component respectively abut against the first body portion and the first stopper.
[0032] Optionally, the second body portion is provided with an elastic component, and two ends of the elastic component respectively abut against the second body portion and the second stopper.
[0033] Optionally, the second body is provided with an elastic component, two ends of the elastic component respectively abut the second body and the second baffle, the elastic force of the elastic component is smaller than the fluid dynamics or thrust of the fluid flowing to the second flow path, or the elastic force of the elastic component is smaller than the fluid dynamics or thrust of the fluid flowing from the first body to the second flow path.
[0034] Optionally, the second body portion has a limiting force or a limiting structure for limiting the second baffle, or the limiting force or the limiting structure is smaller than the fluid power or thrust of the fluid flowing from the first body portion to the second flow path to push the second baffle to open the second flow path, or the limiting force or the limiting structure is an elastic force, an elastic structure, a structure that can move back and forth, a force that can move back and forth, a fluid force, a gas force or an electrically driven force.
[0035] Optionally, the conductive structure is installed in a data center, a server, a storage, an electronic device, a mechanical device, a liquid cooling device, an engineering device, a computer, or the first flow path and the second flow path of the conductive structure are used to flow through a heating element or a heat sink to dissipate heat, or wherein the first body or the second body is fixed to an object, and the object is a cabinet, a rack, a casing, a data center, a computer, a server, a storage, a heat sink, a radiator, a metal body, a plastic body, or the first body and the second body are fixedly joined, linearly joined, aligned, floatingly joined, blindly joined or positioned, or wherein the fluid is water-cooled liquid, liquid, gas, water or oil.
[0036] Optionally, the first flow path, the conducting portion or the second flow path is in a groove shape, a hole shape or a tube shape.
[0037] Optionally, the first flow path or the second flow path is in a groove shape, a hole shape or a tube shape.
[0038] Optionally, the fluid is water-cooling liquid, liquid, gas, water or oil.
[0039] Optionally, a pressure device is further included, and the pressure device is connected to the first flow path or the second flow path so that the fluid in the first flow path or the second flow path has thrust.
[0040] Optionally, the first body, the first baffle, the second body or the second baffle has an inclined surface, a curved surface, an arc surface or a flow-guiding structure to facilitate the flow or discharge of the fluid.
[0041] Optionally, the second baffle body or the first baffle body has a discharge portion for discharging the fluid between the first body portion and the second body portion, or for discharging the fluid between the first baffle body and the second baffle body.
[0042] Optionally, the discharge portion is a hole portion, a tapered hole portion, a gradually enlarging hole portion, a groove portion, a groove portion, a piston body, a plug body, an object that discharges fluid in one direction, an object that limits the one-way discharge of fluid, a fluid absorber, a soft body, a hard body, a one-way valve, a rubber body, a silicone body, a check body, a check body, a check valve, a check valve, a leak-proof body, a rubber body, a silicone body, a structure with a cut, a structure with an opening, a structure with a one-way cut, a structure with a one-way opening, a metal body or a plastic body.
[0043] Optionally, the first body part, the first baffle, the second body part, the second baffle, an object linked to the first body part, or an object linked to the second body part is provided with a gear or a rack, and the gear or the rack cooperates with each other to rotate, turn, move laterally or move the first baffle to connect the first flow path with the second flow path.
[0044] Optionally, the first body portion is provided with a pushing portion, and the pushing portion pushes a second stopper in the second body portion.
[0045] Optionally, the push portion has a channel, through which fluid is conducted when the push portion enters the second body portion, and the channel is located at a lateral position of the push portion.
[0046] Optionally, the first body or the second body is fixed to an object, and the object is a cabinet, a rack, a casing, a data center, a computer, a server, a storage, a heat sink, a radiator, a metal body, or a plastic body, so that the first body is fixedly joined, linearly joined, floatingly joined, aligned joined, floatingly joined, blindly joined, or positionally joined with the second body.
[0047] Optionally, there is a floating space between the object and the first body, the second body, the flow path or the flow channel, and the floating space enables the first body and the second body to be fixedly joined, linearly joined, floatingly joined, aligned joined, floatingly joined, blindly joined or positioned joined.
[0048] Optionally, the first block body and the second block body are rotating bodies, the first block body is provided with a first toothed portion, the second block body is provided with a second toothed portion, and the first body or the second body is provided with a driving body, the driving body drives the first toothed portion and the second toothed portion to drive the first block body and the second block body to open the first flow path and the second flow path respectively.
[0049] Optionally, the first block body and the second block body are rotating bodies, the first block body is provided with a first toothed portion, the second block body is provided with a second toothed portion, and the first body or the second body is provided with a driving body, the first toothed portion, the driving body and the second toothed portion drive each other to open the first flow path and the second flow path.
[0050] Optionally, the first toothed portion, the second toothed portion and the driving body are respectively a gear, a rack, a lever structure or a pushing structure.
[0051] Optionally, an elastic component is further included, and two ends of the elastic component respectively abut against the buckle body and the first body part or the second body part.
[0052] Optionally, the first block body is provided with a first operating part or the second block body is provided with a second operating part, or the first operating part has a first positioning part or the second operating part has a second positioning part, or the first block body has a first positioning part or the second block body has a second positioning part, or the first body has a first positioning part or the second body has a second positioning part, or the first positioning part or the second positioning part is used to position the first block body or the second block body in a position to open the flow path or to close the flow path.
[0053] Optionally, an elastic component is also included, which is used to make the first positioning portion or the second positioning portion elastically buckled to the first body portion or the second body portion, so that the first baffle body or the second baffle body is limited to a position to open the flow path or a position to close the flow path, or the first positioning portion or the second positioning portion is a buckle body, a buckle portion or a limiting portion.
[0054] Optionally, the first baffle or the second baffle is equipped with, interferes with, has, contacts or is adjacent to a baffle fluid or a suction fluid, or wherein the first baffle or the second baffle is the baffle fluid or the suction fluid, or wherein the baffle fluid or the suction fluid can absorb the fluid between the first baffle or the second baffle or the two baffles.
[0055] Optionally, the first baffle, the second baffle, the first body part or the second body part has a suction fluid, wherein the suction fluid is located at a position that will not contact the fluid when the fluid flows, and when one of the first baffle or the second baffle is closed, or the first baffle and the second baffle are closed at the same time, or the first body part and the second body part are separated, the suction fluid can absorb the fluid that is not closed by the first baffle or the second baffle, or the fluid retained between the first baffle, the second baffle, the first body part or the second body part.
[0056] Optionally, the first baffle body or the second baffle body is installed with, interferes with, has, contacts or is adjacent to a baffle fluid or a suction fluid, or the first baffle body or the second baffle body is the baffle fluid or the suction fluid, wherein the baffle fluid or the suction fluid corresponding to any object is an arc, an oblique body, a stepped body, a plane body, a curved body, a concave body, a convex body or a structure that can fit, interfere with or be close to any object.
[0057] Optionally, the first stopper is connected to the first toothed portion, and the second stopper is connected to the second toothed portion, and the first toothed portion is rotated to drive the second toothed portion to open or close two flow paths, and the first stopper or the second stopper is a valve body, a ball valve, a transverse valve body, a gate valve or a valve body, and the first toothed portion or the second toothed portion is a gear or a rack.
[0058] Optionally, the first body or the second body is assembled on an object, and the object is a casing, a cabinet, a metal body, a plastic body or a printed circuit board. There is a floating space between the first body, the second body and the object, and the floating space is used to correct or guide the connection of the first body, the first flow path, the second body or the second flow path.
[0059] Optionally, the second body is provided with at least one track, and the track is used to guide or regulate the second stopper.
[0060] Optionally, the second body portion is provided with a blocking portion, the blocking portion limits the retreat position of the second blocking body, and the blocking portion is provided with at least one through hole, and the through hole is connected to the second flow path.
[0061] Optionally, the second body pushes the first baffle to open the first flow path closed by the baffle and the first baffle, so that the fluid pushes the second baffle to open the second flow path.
[0062] Optionally, the second body pushes the first baffle to open the first flow path closed by the baffle and the first baffle, and the baffle is used to move the second baffle in the direction of opening the second flow path so that the fluid pushes the second baffle to open the second flow path.
[0063] Optionally, the second body pushes the first baffle to open the first flow path closed by the blocking portion and the first baffle, and the blocking portion pushes the second baffle to open the second flow path.
[0064] Optionally, the first body part is provided with a blocking part, and the blocking part has at least one circulation part to conduct fluid, or is used for the second body part to push the first blocking body to open the first flow path so that the fluid can flow into the second body part through the circulation part, or is used for the second body part to push the first blocking body to open the first flow path and for the blocking part to push the second blocking body to allow the fluid to flow into the second body part.
[0065] Optionally, the second body pushes the first baffle to open the first flow path closed by the baffle and the first baffle, so that the fluid pushes the second baffle to open the second flow path, and an elastic component is provided to push against the second body and the second baffle to open the second flow path when the fluid force is greater than the force of the elastic component, and to reduce the fluid force when the second body moves in the direction of closing the first flow path, and close the flow path when the force of the elastic component is greater than the fluid force, or reduce or stop the fluid force when the second body moves in the direction of closing the first flow path, and close the second flow path or the first flow path when the force of the elastic component is greater than the fluid force or the fluid force stops, or close the first flow path or the second flow path at the same time, or close the first flow path first and then the second flow path, or close the second flow path first and then the first flow path, or the direction in which the second body moves in the direction of closing the first flow path is to move toward the second body.
[0066] Optionally, the first body part or the second body part is mounted on an object, and the object drives or links the first body part or the second body part to be inserted, assembled, blindly inserted or blindly joined to the second body part or the first body part, or the object is a PCB board, a printed circuit board, a heat sink, a casing, an IC, a computer, an electrically conductive body, a metal body, a non-metal body or a plastic body.
[0067] Optionally, the first body part or the second body part has an operating part, and the operating part has a buckle part for buckling to the second body part or the first body part, or the buckle part has a pull part, or is used to press or pull the pull part to open or close the buckle part, or the buckle part has an elastic component for making the buckle part elastically buckled.
[0068] Optionally, the second body part has a driving part, and the driving part is used to drive the first block body, or the driving part is used to drive the first block body to rotate or turn to open the first flow path, or the driving part is a toothed part, a rack or a gear, or the driving part drives the driving part of the first body part laterally or vertically, or the driving part has a movement space for limited movement, or the driving part has a limiting part for limiting, positioning or temporary positioning, or the first body part or the second body part has a limiting part for limiting, positioning or temporary positioning, or the limiting part has an elastic component for elastically resisting the driving part, or the driving part is a column, a sliding body, a bracket body, a structure that is buckled, assembled or slidably connected to the second body part or the first body part, or the driving part has an operating part for operating the driving part.
[0069] Optionally, the first body part has a driving part, and the driving part is used to drive the second blocking body, or the driving part is used to drive the second blocking body to rotate or turn to open the second flow path, or the driving part is a toothed part or a rack or a gear, or the driving part drives the driving part of the second body part laterally or vertically, or the driving part has a movement space for limited movement, or the driving part has a limiting part for limiting, positioning or temporary positioning, or the first body part or the second body part has a limiting part for limiting, positioning or temporary positioning, or the limiting part has an elastic component for elastically resisting the driving part, or the driving part is a column, a sliding body, a bracket body or a structure that is buckled, assembled or slidably connected to the second body part or the first body part, or the driving part has an operating part for operating the driving part.
[0070] Optionally, the second body part or the first body part has a driving part, and the driving part is used to drive the second block body and the first block body, or the driving part is used to drive the second block body or the first block body to rotate or turn to open the first flow path or the second flow path, or wherein the driving part is a toothed part, a rack or a gear, or wherein the driving part is driven laterally or vertically, or wherein the driving part has a movement space for limited movement, or wherein the driving part has a limiting part for limiting, positioning or temporary positioning, or wherein the first body part or the second body part has a limiting part for limiting, positioning or temporary positioning, or the limiting part has an elastic component for elastically pressing against the driving part, or the driving part is a column, a sliding body, a bracket body, a structure that is buckled, assembled or slidably connected to the second body part or the first body part, or the driving part has an operating part for operating the driving part.
[0071] Optionally, the second body part or the first body part has a driving part, and the driving part is used to first drive one of the second block body or the first block body, and then drive one of the second block body or the first block body, so that the opening and closing order of the second block body or the first block body is different, or the first block body or the second block body is not closed when the second block body or the first block body is closed, or the fluid flows to the unclosed second block body or the first block body, or the fluid between the second block body or the first block body enters the unclosed first block body or the second block body, or the first block body or the second block body is closed when there is no fluid or is close to no fluid between the second block body or the first block body.
[0072] Optionally, the first flow path, the second flow path or the conducting part are located at different heights, height differences, upper and lower positions or upper and lower position differences with another conducting part, or are used to allow the fluid to flow from a high place to a low place so that the fluid flows to a low position when the first baffle or the second baffle at a higher position is closed, or are used to reduce or completely stop the fluid between the first baffle and the second baffle when both the first baffle and the second baffle are closed.
[0073] Optionally, the first block body or the second block body has a torsion spring or an elastic component, and the torsion spring or the elastic component is used to press against the first body part or the second body part at one end and press against the first block body or the second block body at the other end, so as to make the rotatable or rotating first block body or the second block body normally press against the closed position of the first flow path or the second flow path, or to make the first block body or the second block body normally press against the open position of the first flow path or the second flow path.
[0074] Optionally, the conductive structure is installed on a heat sink, or the heat sink contacts a heating element for heat dissipation, or the heating element is arranged in two heat sinks for heat dissipation, or the heating element is arranged in one heat sink for heat dissipation, or one of the heat sinks is provided with the conductive structure, or two of the heat sinks are provided with the conductive structure, or the heat sink is installed on an object, or the object is a printed circuit board, a metal body, a plastic body, a heat sink, a computer component, a casing component, a server component or a server casing, or the heating element is a chip, a CPU or a GPU.
[0075] Optionally, there is a flow space between the second baffle and the second body part or the first body part, so that when the second body part is closed, the fluid between the first baffle and the second baffle can flow from the flow space or flow into the second body part, or when the second body part is closed, the fluid between the first body part and the second body part can flow from the flow space or flow into the second body part, or the second baffle has a baffle, or the second baffle has a baffle in a position that can delay or close the flow space later, or is used to close the inflow or outflow of fluid into the flow space after the fluid passes through the flow space, or is used to close the flow space, or is used to reduce or decrease the fluid between the first baffle and the second baffle, or is used to reduce or reduce the fluid between the first body part and the second body part.
[0076] The present invention provides another conduction method, wherein the first block body and the second block body are rotating bodies, the first block body is provided with a first tooth portion, the second block body is provided with a second tooth portion, and the first body portion or the second body portion is provided with a driving body, and the driving body drives the first tooth portion and the second tooth portion to open the first flow path and the second flow path.
[0077] The present invention provides another conduction method, wherein the first block body and the second block body are rotating bodies, the first block body is provided with a first toothed portion, the second block body is provided with a second toothed portion, and the first body portion or the second body portion is provided with a driving body, the first toothed portion and the driving body and the second toothed portion drive each other to open the first flow path and the second flow path.
[0078] The present invention provides another conduction method, wherein the first block body and the second block body are rotating bodies, the first block body is provided with a first toothed portion, the second block body is provided with a second toothed portion, and the first body or the second body is provided with a driving body, or a driving body is provided on an object, or wherein the first toothed portion, the second toothed portion or the driving body is a gear, a rack, a lever structure or a pushing structure, or the first toothed portion and the driving body and the second toothed portion drive each other to open the first flow path and the second flow path, or the driving body drives the first toothed portion and the second toothed portion to open the first flow path and the second flow path.
[0079] The present invention provides another conduction method of a conduction structure, the conduction structure comprising: a first body part and a second body part; the first body part comprises a first flow path, the first flow path is movably provided with a first baffle; the second body part comprises a second flow path, the second flow path is movably provided with a second baffle, the first baffle is moved to open the first flow path, and then the second baffle is moved laterally or moved to open the second flow path, so as to conduct the first flow path and the second flow path, or the first baffle is first moved laterally or moved to open the first flow path, and then the second baffle is rotated or moved to open the second flow path, so as to conduct the first flow path and the second flow path, or the first baffle is moved to open the first flow path and the second baffle is moved to open the second flow path, so as to conduct the first flow path and the second flow path.
[0080] The present invention provides another conduction method of a conduction structure, the conduction structure comprising: a first body and a second body; the first body comprising a first flow path, the first flow path being movably provided with a first baffle; the second body comprising a second flow path, the second flow path being movably provided with a second baffle, the first baffle being moved to open the first flow path, and the power or thrust of the fluid is used to push the second baffle supported by the elastic component to conduct the first flow path and the second flow path, or the first baffle is moved to open the first flow path, and the power or thrust of the fluid is used to push the second baffle to conduct the first flow path and the second flow path.
[0081] The present invention provides another conduction method of a conduction structure, the conduction structure comprising: a first body and a second body; the first body comprising a first flow path, the first flow path being movably provided with a first baffle; the second body comprising a second flow path, the second flow path being movably provided with a second baffle, wherein the first baffle and the second baffle are rotating bodies, the first baffle is provided with a first toothed portion, the second baffle is provided with a second toothed portion, and the first body or the second body is provided with a driving body, the driving body drives the first toothed portion and the second toothed portion to open the first flow path and the second flow path, or the first toothed portion and the driving body and the second toothed portion drive each other to open the first flow path and the second flow path, or the second toothed portion drives the driving body to drive the first toothed portion to open the first flow path and the second flow path, or the first toothed portion drives the driving body to drive the second toothed portion to open the first flow path and the second flow path.
[0082] The present invention provides another conduction method of a conduction structure, the conduction structure comprising: a first body and a second body; the first body comprising a first flow path, the first flow path being movably provided with a first blocker; the second body comprising a second flow path, the second flow path being movably provided with a second blocker, wherein the first blocker and the second blocker are rotating bodies, the first blocker is provided with a first toothed portion, the second blocker is provided with a second toothed portion, and the first body or the second body is provided with a driving body, or an object is provided with a driving body, or wherein the first toothed portion, the second toothed portion or the driving body The moving body is a gear, a rack, a lever structure or a pushing structure, or the first toothed portion, the driving body and the second toothed portion drive each other to open the first flow path and the second flow path, or the driving body drives the first toothed portion and the second toothed portion to open the first flow path and the second flow path, or the second toothed portion drives the driving body to drive the first toothed portion to open the first flow path and the second flow path, or the first toothed portion drives the driving body to drive the second toothed portion to open the first flow path and the second flow path.
[0083] The present invention provides another conduction method of a conduction structure, wherein the conduction structure conducts fluid to flow through a heat sink, a heat dissipation structure or a heat dissipation system for heat dissipation, or the heat sink or the heat dissipation system guides the heat generated by a chip, IC, CPU, GPU, battery, power storage body, or memory after power is turned on to reduce the temperature, or the first flow path, the second flow path, the first baffle or the second baffle are used to combine, remove or switch to conduct the fluid, or the baffle or the absorbent fluid is used to absorb the fluid in the first flow path, the second flow path, the first baffle or the second baffle or between the two baffles, or the baffle or the absorbent fluid is used to absorb the fluid in the first flow path, the second flow path, the first baffle or the second baffle or between the two baffles after closing, or to prevent the fluid from flowing to a chip or a circuit board, or to prevent the fluid from flowing to a chip or a circuit board causing a short circuit or contamination, or the first flow path and the second flow path of the conduction structure are the heat sink, the heat dissipation structure or the heat dissipation system.
[0084] The present invention provides another conduction method of a conduction structure, wherein the second body is provided with an elastic component, and the two ends of the elastic component respectively abut the second body and the second baffle, or the elastic force of the elastic component is smaller than the fluid dynamics or thrust of the fluid flowing to the second flow path, or the elastic force of the elastic component is smaller than the fluid dynamics or thrust of the fluid flowing from the first body to the second flow path, or the elastic force of the elastic component is smaller than the fluid dynamics or thrust of the fluid flowing from the first body to the second flow path, so as to push the second baffle to open the second flow path.
[0085] The present invention provides another conduction method of a conduction structure, wherein the second body has a limiting force or a limiting structure for limiting the second baffle, or the limiting force or the force of the limiting structure is smaller than the fluid power or thrust of the fluid flowing from the first body to the second flow path to push the second baffle to open the second flow path, or the limiting force or the limiting structure is an elastic force, an elastic structure, a structure that can reciprocate, a force that can reciprocate, a fluid force, a gas force or an electrically driven force.
[0086] The present invention provides another conduction method of a conduction structure, wherein the first baffle or the second baffle is installed, interferes with, has, contacts or is adjacent to a baffle fluid or a suction fluid, or wherein the first baffle or the second baffle is the baffle fluid or the suction fluid, or wherein the baffle fluid or the suction fluid can absorb the fluid between the first baffle or the second baffle or the two baffles, or the first baffle and the second baffle rotate to close the flow path for the baffle fluid or the suction fluid to absorb the fluid between the first baffle or the second baffle or the two baffles, or the first baffle rotates to close the flow path and the second baffle moves laterally to close the flow path for the baffle fluid or the suction fluid to absorb the fluid between the first baffle or the second baffle or the two baffles Fluid, or the first baffle rotates to close the flow path or the second baffle moves laterally to close the flow path for the baffle or the suction fluid to absorb the fluid between the first baffle or the second baffle or the two baffles, or the first baffle, the second baffle, the first body or the second body has a suction fluid, wherein the suction fluid is located at a position that will not contact the fluid when the fluid flows, and when closing one of the first baffle or the second baffle, or closing the first baffle and the second baffle at the same time, or separating the first body and the second body, the suction fluid can be used to absorb the fluid that is not closed by the first baffle or the second baffle, or the fluid retained between the first baffle, the second baffle, the first body or the second body.
[0087] The present invention provides another conducting method of a conducting structure, wherein the conducting structure is installed in a data center, a server, a storage, an electronic device, a mechanical device, a liquid cooling device, an engineering device, a computer, or the first flow path or the second flow path of the conducting structure is used to flow through a heating element or a heat sink to dissipate heat, or wherein the first body or the second body is fixed to an object, and the object is a cabinet, a rack, a casing, a data center, a computer, a server, a storage, a heat sink, a radiator, a metal body, a plastic body, or the first body and the second body are fixedly joined, wired, or wired. The invention relates to a method for carrying out a fixed joint, a linear joint, a floating joint, a blind joint or a positioning joint, or wherein the fluid is water-cooled liquid, liquid, gas, water or oil, or wherein there is a floating space between the object and the first body part, the second body part, the flow path or the flow channel, and the floating space enables the first body part and the second body part to be fixedly joined, linearly joined, floatingly joined, aligned, blindly joined or positioned, or wherein it also includes a pressure device, which is connected to the first flow path or the second flow path to make the fluid in the first flow path or the second flow path have thrust.
[0088] The present invention provides another conduction method of a conduction structure, wherein the conduction structure conducts fluid to flow through a heat sink, a heat sink structure or a heat sink system for heat dissipation, or the heat sink, the heat sink structure or the heat sink system is used to guide the heat generated by a chip, an IC, a CPU, a GPU, a battery, a power storage body, or a memory after power is turned on to reduce the temperature, or the first flow path, the second flow path, the first baffle or the second baffle is used to combine, remove or switch to conduct the fluid, or the first flow path, the second flow path, the first baffle or the second baffle has the baffle fluid or the suction fluid to absorb the fluid in the first flow path, the second flow path, the first baffle or the second baffle or between the two baffles, or the baffle fluid or the suction fluid is used to absorb the fluid in the first flow path, the second flow path, the first baffle or the second baffle or between the two baffles after closing, or to prevent the fluid from flowing to a chip or a circuit board, or to prevent the fluid from flowing to a chip or a circuit board to cause a short circuit or contamination, or the first flow path and the second flow path of the conduction structure are the heat sink, the heat sink structure or the heat sink system.
[0089] The present invention provides another conduction method of a conduction structure, wherein the first block body is connected to the first toothed portion, and the second block body is connected to the second toothed portion, and the first toothed portion is rotated to drive the second toothed portion to open the first flow path and the second flow path or to close the first flow path and the second flow path, or the first block body or the second block body is a valve body, a ball valve, a transverse valve body, a gate valve or a valve body, or the first toothed portion or the second toothed portion is a gear or a rack.
[0090] The present invention provides another conduction method of a conduction structure, wherein the second body pushes the first baffle to open the first flow path, so that the fluid pushes the second baffle to open the second flow path, or the second body pushes the first baffle to open the first flow path, so that the fluid flows into the second body to push the second baffle, or the second body pushes the first baffle to open the first flow path closed by the baffle and the first baffle, so that the fluid pushes the second baffle to open the second flow path, or the first body is provided with a baffle, and the baffle has at least one flow portion to conduct the fluid, or the second body pushes the first baffle to open the first flow path so that the fluid flows through the flow The fluid is passed through the body portion and flows into the second body portion, or the second body portion is used to push the first baffle to open the first flow path and the blocking portion is used to push the second baffle to allow the fluid to flow into the second body portion, or wherein the second body portion pushes the first baffle to open the first flow path closed by the blocking portion and the first baffle, and the blocking portion is used to move the second baffle in the direction of opening the second flow path, so that the fluid pushes the second baffle to open the second flow path, or wherein the second body portion pushes the first baffle to open the first flow path closed by the blocking portion and the first baffle, so that the fluid pushes the second baffle to open the second flow path, or wherein the first body portion or the second body portion is installed on an object , the object drives or links the first body or the second body to be inserted or assembled into or blindly inserted or blindly joined with the second body or the first body, or the object is a PCB board or a printed circuit board or a heat sink or a casing or an IC or a computer or an electrically conductive body or a metal body or a non-metal body or a plastic body, or the second body pushes the first baffle to open the first flow path closed by the baffle and the first baffle, so that the fluid pushes the second baffle to open the second flow path, or the second body pushes the first baffle to open the first flow path closed by the baffle and the first baffle, and the baffle is used to move the second baffle in the direction of opening the second flow path, so that the fluid pushes the second baffle to open the a second flow path, or wherein the second body pushes against the first baffle to open the first flow path closed by the baffle and the first baffle, and the baffle pushes against the second baffle to open the second flow path, or wherein the first baffle body is provided with a baffle, and the baffle has at least one flow portion to conduct fluid, or the second baffle body pushes against the first baffle to open the first flow path so that the fluid flows into the second body through the flow portion, or the second body pushes against the first baffle to open the first flow path and the baffle pushes against the second baffle to allow the fluid to flow into the second body, or wherein the second body pushes against the first baffle to open the first flow path closed by the baffle and the first baffle,The fluid is used to push the second baffle to open the second flow path, and an elastic component is provided to abut against the second body and the second baffle. When the fluid force is greater than the force of the elastic component, the second flow path is opened. When the second body moves in the direction of closing the first flow path, the fluid force is reduced, and the flow path is closed when the force of the elastic component is greater than the fluid force. When the second body moves in the direction of closing the first flow path, the fluid force is reduced or the fluid force is stopped, and when the force of the elastic component is greater than the fluid force or the fluid force is stopped, the second flow path is closed or the first flow path is closed, or the first flow path or the second flow path is closed at the same time, or the first flow path is closed first and then the second flow path is closed, or the second flow path is closed first and then the first flow path is closed.
[0091] The present invention provides another conduction method of a conduction structure, wherein the conduction structure includes a first flow path and a second flow path, wherein the first flow path has a first baffle and a first body; the second flow path has a second baffle and a second body, wherein the first body or the second body has an operating part, and the operating part has a buckle part for buckling with the second body or the first body, or the buckle part has a pull part, or is used to press or pull the pull part to switch the buckle part, or the buckle part has an elastic component for making the buckle part elastically buckled.
[0092] The present invention provides another conduction method of a conduction structure, wherein the conduction structure includes a first flow path and a second flow path, wherein the first flow path has a first baffle and a first body; the second flow path has a second baffle and a second body, wherein the second body has a driving part, and the driving part is used to drive the first baffle, or the driving part is used to drive the first baffle to rotate or turn to open the first flow path, or the driving part is a toothed part, a rack or a gear, or the driving part drives the driving part of the first body laterally or vertically, or the driving part has a movement space for limited movement, or the driving part has a limiting part for limiting, positioning or temporary positioning, or the first body or the second body has a limiting part for limiting, positioning or temporary positioning, or the limiting part has an elastic component for elastically resisting the driving part, or the driving part is a column, a sliding body, a bracket body, a structure that is buckled, assembled or slidably connected to the second body or the first body, or the driving part has an operating part for operating the driving part.
[0093] The present invention provides another conduction method of a conduction structure, wherein the conduction structure includes a first flow path and a second flow path, wherein the first flow path has a first baffle and a first body; the second flow path has a second baffle and a second body, wherein the first body has a driving part, and the driving part is used to drive the second baffle, or the driving part is used to drive the second baffle to rotate or turn to open the second flow path, or wherein the driving part is a toothed part, a rack or a gear, or wherein the driving part drives the driving part of the second body laterally or vertically, or wherein the driving part has a movement space for limited movement, or wherein the driving part has a limiting part for limiting, positioning or temporary positioning, or wherein the first body or the second body has a limiting part for limiting, positioning or temporary positioning, or the limiting part has an elastic component for elastically resisting the driving part, or the driving part is a column, a sliding body, a bracket body or a structure that is buckled, assembled or slidably connected to the second body or the first body, or the driving part has an operating part for operating the driving part.
[0094] The present invention provides another conduction method of a conduction structure, wherein the conduction structure includes a first flow path and a second flow path, wherein the first flow path has a first blocker and a first body; the second flow path has a second blocker and a second body, wherein the second body or the first body has a driving part, and the driving part is used to drive the second blocker and the first blocker, or the driving part is used to drive the second blocker or the first blocker to rotate or turn to open the first flow path or the second flow path, or wherein the driving part is a toothed part, a rack or a gear, or wherein The driving part is driven laterally or vertically, or the driving part has a movement space for limiting movement, or the driving part has a limiting part for limiting, positioning or temporarily positioning, or the first body part or the second body part has a limiting part for limiting, positioning or temporarily positioning, or the limiting part has an elastic component for elastically pressing against the driving part, or the driving part is a column, a sliding body, a bracket body, a structure that is buckled, assembled or slidably connected to the second body part or the first body part, or the driving part has an operating part for operating the driving part.
[0095] The present invention provides another conduction method of a conduction structure, wherein the conduction structure includes a first flow path and a second flow path, wherein the first flow path has a first baffle and a first body; the second flow path has a second baffle and a second body, wherein the second body or the first body has a driving part, and the driving part is used to first drive the second baffle or one of the first baffles, and then drive the second baffle or one of the first baffles, so as to make the switching sequence of the second baffle or the first baffle different, or to make the first baffle or the second baffle not closed when the second baffle or the first baffle is closed, or to make the fluid flow to the unclosed second baffle or the first baffle, or to make the fluid between the second baffle or the first baffle enter the unclosed first baffle or the second baffle, or to close the first baffle or the second baffle when there is no fluid or is close to no fluid between the second baffle or the first baffle.
[0096] The present invention provides another conduction method of a conduction structure, wherein the conduction structure includes a first flow path and a second flow path, wherein the first flow path has a first baffle and a first body; the second flow path has a second baffle and a second body, wherein the first body is provided with a conduction part, and the second body is provided with another conduction part, the first flow path and the second flow path or the conduction part and the another conduction part are located at different heights, height differences, upper and lower positions or upper and lower position differences, or are used to allow the fluid to flow from a high place to a low place, so as to allow the fluid to flow to a low position when the first baffle or the second baffle at a higher position is closed, or to reduce or completely stop the fluid between the first baffle and the second baffle when both the first baffle and the second baffle are closed.
[0097] The present invention provides another conduction method of a conduction structure, wherein the conduction structure includes a first flow path and a second flow path, wherein the first flow path has a first baffle and a first body; the second flow path has a second baffle and a second body, wherein the first baffle or the second baffle has a torsion spring or an elastic component, wherein one end of the torsion spring or the elastic component is used to press against the first body or the second body and the other end of the torsion spring or the elastic component is used to press against the first baffle or the second baffle, so that the rotatable or rotating first baffle or the second baffle is normally pressed against the closed position of the first flow path or the second flow path, or is used to press against the open position of the first flow path or the second flow path.
[0098] The present invention provides another conduction method of a conduction structure, wherein the conduction structure includes a first flow path and a second flow path, wherein the first flow path has a first baffle and a first body portion; the second flow path has a second baffle and a second body portion, wherein the conduction structure is installed on a heat sink, or the heat sink contacts a heating element for heat dissipation, or the heating element is arranged in two heat sinks for heat dissipation, or the heating element is arranged in one heat sink for heat dissipation, or one of the heat sinks is provided with the conduction structure, or two of the heat sinks are provided with the conduction structure, or the heat sink is installed on an object, or the object is a printed circuit board, a metal body, a plastic body, a heat sink, a computer component, a casing component, a server component or a server casing, or the heating element is a chip, a CPU or a GPU.
[0099] The present invention provides another conduction method of a conduction structure, wherein the conduction structure includes a first flow path and a second flow path, wherein the first flow path has a first baffle and a first body; the second flow path has a second baffle and a second body, wherein a flow space is provided between the second baffle and the second body or the first body, so that when the second body is closed, the fluid between the first baffle and the second baffle flows from the flow space or flows into the second body, or when the second body is closed, the fluid between the first body and the second body flows from the flow space or flows into the second body, or the second baffle has a baffle, or the second baffle has a baffle in a position that can delay or close the flow space later, or is used to close the fluid inflow or outflow of the flow space after the fluid passes through the flow space, or is used to close the flow space, or is used to reduce or reduce the fluid between the first baffle and the second baffle, or is used to reduce or reduce the fluid between the first body and the second body. BRIEF DESCRIPTION OF THE DRAWINGS
[0100] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required to be used in the description of the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.
[0101] Figure 1 1 is a schematic diagram of the use status of the first embodiment of the present invention.
[0102] Figure 2 Schematic diagram of the second stopper in the first embodiment of the present invention.
[0103] Figure 3 2 is a schematic diagram of the use status of the second embodiment of the present invention.
[0104] Figure 4 Schematic diagram of the second stopper in the second embodiment of the present invention.
[0105] Figure 5 It is a schematic diagram of different states of the first stopper and the second stopper in the present invention.
[0106] Figure 6 This is an illustration of the application status of the present invention. Figure 1 .
[0107] Figure 7 This is an illustration of the application status of the present invention. Figure 2 .
[0108] Figure 8 4 is a schematic diagram of the use status of the third embodiment of the present invention.
[0109] Fig. 9 4 is a schematic diagram of the usage state of the fourth embodiment of the present invention.
[0110] Fig.10 4 is a schematic diagram of the use status of the fifth embodiment of the present invention.
[0111] Fig.11 Schematic diagram of the second stopper in the fifth embodiment of the present invention.
[0112] Fig.12 It is a schematic diagram of another second gear body in the present invention.
[0113] Fig.13 4 is a schematic diagram of the use status of the sixth embodiment of the present invention.
[0114] Fig.14 2 is a schematic diagram of the use status of the seventh embodiment of the present invention.
[0115] Fig.15 4 is a schematic diagram of the use status of the eighth embodiment of the present invention.
[0116] Fig.16 4 is a schematic diagram of the usage status of the ninth embodiment of the present invention.
[0117] Fig.17 4 is a schematic diagram of the use status of the tenth embodiment of the present invention.
[0118] Fig.18 4 is a schematic diagram of the use status of the tenth embodiment of the present invention.
[0119] Fig.19 4 is a schematic diagram of the use status of the eleventh embodiment of the present invention.
[0120] Fig. 20 2 is a schematic diagram of a discharge unit according to an eleventh embodiment of the present invention.
[0121] Fig.21 2 is a schematic diagram of the usage status of the twelfth embodiment of the present invention.
[0122] Fig. 22 3 is a schematic diagram of the use status of the thirteenth embodiment of the present invention.
[0123] Fig.23 2 is a schematic diagram of the use status of the fourteenth embodiment of the present invention.
[0124] Fig.24 2 is a schematic diagram of the use status of the fifteenth embodiment of the present invention.
[0125] Fig.25 2 is a schematic diagram of the use status of the sixteenth embodiment of the present invention.
[0126] Fig.26 2 is a schematic diagram of the use status of the seventeenth embodiment of the present invention.
[0127] Fig. 27 2 is a schematic diagram of the usage status of the eighteenth embodiment of the present invention.
[0128] Fig.28 2 is a schematic diagram of the usage status of the nineteenth embodiment of the present invention.
[0129] Fig.29 2 is a schematic diagram of the usage status of the twentieth embodiment of the present invention.
[0130] Fig.30 It is a schematic diagram of the usage status of the twenty-first embodiment of the present invention.
[0131] Fig.31 It is a schematic diagram of the usage status of the twenty-second embodiment of the present invention.
[0132] Fig.32 It is a schematic diagram of the usage status of the twenty-third embodiment of the present invention.
[0133] Fig.33 It is a schematic diagram of the usage status of the twenty-fourth embodiment of the present invention.
[0134] Fig.34 It is a schematic diagram of the usage status of the twenty-fifth embodiment of the present invention.
[0135] Fig.35 It is a schematic diagram of the usage status of the twenty-sixth embodiment of the present invention.
[0136] Fig.36 It is a schematic diagram of the usage status of the twenty-seventh embodiment of the present invention.
[0137] Fig.37 It is a schematic diagram of the usage status of the twenty-eighth embodiment of the present invention.
[0138] Fig.38 It is a schematic diagram of the usage status of the twenty-ninth embodiment of the present invention.
[0139] Fig.39 3 is a schematic diagram of the usage status of the 30th embodiment of the present invention.
[0140] Fig.40 It is a schematic diagram of the usage status of the thirty-first embodiment of the present invention.
[0141] Fig.41 It is a schematic diagram of the usage status of the thirty-second embodiment of the present invention.
[0142] Fig.42 It is a schematic diagram of the usage status of the thirty-third embodiment of the present invention.
[0143] Fig.43 It is a schematic diagram of the usage status of the thirty-fourth embodiment of the present invention.
[0144] Fig.44 It is a schematic diagram of the usage status of the thirty-fifth embodiment of the present invention.
[0145] Fig.45 It is a schematic diagram of the usage status of the thirty-sixth embodiment of the present invention.
[0146] Fig.46 It is a schematic diagram of the usage status of the thirty-seventh embodiment of the present invention.
[0147] Fig.47 It is a schematic diagram of the usage status of the thirty-eighth embodiment of the present invention.
[0148] Fig.48 It is a schematic diagram of the usage status of the thirty-ninth embodiment of the present invention.
[0149] Fig.49 It is a schematic diagram of the usage status of the 40th embodiment of the present invention.
[0150] Reference numerals
[0151] 1. First body; 11. First flow path; 12. First stopper; 121. First toothed portion; 122. Stopping portion; 123. Flowing portion; 13. Conducting portion; 14. First operating portion; 141. Bolting portion; 142. First positioning portion; 143. First pulling portion; 15. Pushing portion; 151. Passage; 16. Storage space; 17. First corresponding recess; 2. Second body; 21. Second flow path; 22. Second stopper; 220. Second toothed portion; 221. Stopping portion; 222. Flow channel; 223. Guide portion; 23. Second operating portion; 231. Bolting portion; 232. Second positioning portion; 233. Second Lifting part; 24, limiting part; 25, discharge part; 251, incision; 26, another conducting part; 28, second corresponding recess; 29, track; 291, blocking part; 292, through hole; 3, fluid blocking body; 4, buckle body; 5, elastic component; 6, object; 61, heat sink; 62, pressure equipment; 7, chip; 71, circuit board; 8, driving body; a, floating space; 10, operating part; 101, buckle part; 102, pulling part; 103, elastic component; 20, driving part; 201, movement space; 202, limiting part; 203, elastic component; 30, torsion spring; 40, heating element; 50, flow space. DETAILED DESCRIPTION
[0152] The fluid joint structure according to the embodiment of the present invention will be further described below with reference to the accompanying drawings.
[0153] The above and other technical contents, features and effects of the invention will be clearly presented in the following detailed description of the preferred embodiments with reference to the drawings. It is worth mentioning that the directional terms mentioned in the following embodiments, such as up, down, left, right, front or back, etc., are only referenced to the directions of the attached drawings. Therefore, the directional terms used are for illustration rather than limitation of the invention. In addition, in the following embodiments, the same or similar components will be marked with the same or similar numbers.
[0154] See also Figures 1 to 7 As shown, the present invention is a conductive structure, which includes a first body 1 and a second body 2.
[0155] The first body 1 includes a first flow path 11 , the first flow path 11 is movably provided with a first blocking body 12 , and the first blocking body 12 is provided with a conducting portion 13 .
[0156] The second body 2 includes a second flow path 21 , and a second stopper 22 is movably disposed in the second flow path 21 .
[0157] In one embodiment of the present invention, the first baffle 12 can be rotated, turned, moved laterally or moved so that the fluid pushes the second baffle 22 through the first flow path 11 to open the second flow path 21, so that the required fluid can flow stably in the first body part 1 and the second body part 2.
[0158] In the conduction method of the conduction structure 1 of the present invention, the first stopper 12 is first rotated, turned, moved laterally or moved to open the first flow path 11, so that the conduction portion 13 is connected to the first flow path 11, and then the second stopper 22 is moved laterally or moved to open the second flow path 21, so as to conduct the first flow path 11 with the second flow path 21. In addition, the first stopper 12 may be first moved laterally or moved to open the first flow path 11, and then the second stopper 22 may be rotated, turned, moved laterally or moved to open the second flow path 21, so as to conduct the first flow path 11 with the second flow path 21.
[0159] In one embodiment of the present invention, the fluid is water-cooling liquid, liquid, gas, water or oil.
[0160] When in use, the first stopper 12 can be rotated, turned, moved laterally or moved to make the conducting part 13 and the first flow path 11 communicate with each other, so that the fluid can flow to the second body part 2 through the first flow path 11 and the conducting part 13, and the fluid flowing through the second body part 2 pushes the second stopper 22, and then the second stopper 22 opens the second flow path 21, allowing the fluid to flow in the first flow path 11 and the second flow path 21. In this way, the required fluid can flow stably in the first body part 1 and the second body part 2.
[0161] In addition to the above embodiments, in one embodiment of the present invention, the first stopper 12 or the second stopper 22 is a valve body, a ball valve, a transverse valve body, a gate valve or a valve body, and the first stopper 12 or the second stopper 22 is provided with a first operating portion 14. In this embodiment, the first stopper 12 is a ball valve provided with the first operating portion 14, and the second stopper 22 is a valve body.
[0162] Based on the above embodiment, force is applied to the first operating portion 14 to rotate, turn, move laterally or move the first blocking body 12 so that the conducting portion 13 and the first flow path 11 are connected to each other, so that the fluid flows through the first flow path 11 and the conducting portion 13 to the second body portion 2, and the fluid flowing through the second body portion 2 pushes the second blocking body 22, and then the second blocking body 22 opens the second flow path 21, allowing the fluid to flow in the first flow path 11 and the second flow path 21. In this way, the required fluid can flow stably in the first body portion 1 and the second body portion 2.
[0163] In addition to the above embodiments, in one embodiment of the present invention, the first operating part 14 can be a lifting body, a lever body, a labor-saving structure, a turning body, a rotating body, a threaded body, a rod body, a concave body, a convex body, a shaft or an axle body. In this embodiment, the first operating part 14 is a rotating body; in this way, the first operating part 14 can operate the first stopper 12 to move with a labor-saving lever, so that the first stopper 12 of the present invention can better meet the needs of actual use.
[0164] In addition to the above embodiments, in one embodiment of the present invention, (such as Figure 2 , Figure 4 (As shown in the figure) the second baffle 22 is provided with a stopper 221, the stopper 221 limits the moving position of the second baffle 22 (or the first baffle 12), and the stopper 221 is provided with at least one flow channel 222, the flow channel 222 is connected to the second flow path 21 (or the first flow path 11). In this way, when the fluid pushes the second baffle 22, the second baffle 22 can be moved to open the second flow path 21, and the stopper 221 limits the moving position of the second baffle 22, and when the fluid pushes the second baffle 22, the second flow path 21 is opened, so that the fluid flows in the second flow path 21 and the flow channel 222. In this way, the required fluid can flow stably in the first body 1 and the second body 2.
[0165] In addition to the above embodiments, in one embodiment of the present invention, the first body portion 1, the first flow path 11, the first baffle 12, the second body portion 2, the second flow path 21 and the second baffle 22 are respectively provided with a baffle 3 (or a suction fluid), wherein the baffle 3 (or the suction fluid) can be an O-ring, a ring body, an elastic body, a foam, a cotton body, a back-suction fluid valve, a sponge body, a siphon body, a foam body, a fiber body, a suction cotton body, a recyclable material body, a decomposable material body, a colloid, a buffer body or an object that can absorb fluid. In this way, the fluid between the first body portion 1 and the second body portion 2, the fluid between the first baffle 12 and the second baffle 22, the fluid in the first flow path 11, or the fluid in the second flow path 21 can be absorbed by each baffle 3 (or the suction fluid) to avoid fluid leakage when the first body portion 1 and the second body portion 2 are in a conductive state or a non-conductive state.
[0166] In addition to the above embodiments, in one embodiment of the present invention, the first barrier 12, the second barrier 22, the first body 1 or the second body 2 has an absorbent (or a barrier 3), wherein the absorbent is located so as not to contact the fluid when the fluid is flowing, and when one of the first barrier 12 or the second barrier 22 is closed, or the first barrier 12 and the second barrier 22 are closed simultaneously, or the first body 1 and the second body 2 are separated, the absorbent absorbs the fluid that is not closed by the first barrier 12 or the second barrier 22, or the fluid retained between the first barrier 12, the second barrier 22, the first body 1 or the second body 2, so as to avoid fluid leakage when the first body 1 and the second body 2 are in a conductive state or a non-conductive state.
[0167] In addition to the above embodiments, in one embodiment of the present invention, the first blocking body 12, the second blocking body 22 and the blocking body 3 (or the suction body) can be corresponding structures, so that the first blocking body 12 and the second blocking body 22 are in contact with each other, blocking or elastic blocking, wherein the corresponding part of the first blocking body 12 and the second blocking body 22 is an arc (such as Figure 5 a), italics, scaled font (such as Figure 5 As shown in part b of Figure 5 As shown in part c of Figure 5 d), concave body (as shown in Figure 5 e) or a convex body (as shown in Figure 5 As shown in part f of the figure, the first baffle 12, the second baffle 22 or the baffle fluid 3 (or the suction fluid) may be of corresponding structures, so that the space for storing fluid between the first baffle 12 and the second baffle 22 is less than 500°C. In this way, the first baffle 12 and the second baffle 22 may be prevented from leaking fluid when they are in the conducting state or the non-conducting state.
[0168] In addition to the above embodiments, in one embodiment of the present invention, the first baffle 12 or the second baffle 22 is installed with, interferes with, has, contacts or is adjacent to the baffle 3 (or suction fluid), or the first baffle 12 or the second baffle 22 is the baffle (or suction fluid), or the baffle 3 (or suction fluid) can absorb the fluid between the first baffle 12 or the second baffle 22 (or the two baffles) to avoid fluid leakage when the first body 1 and the second body 2 are in a conductive state or a non-conductive state.
[0169] In addition to the above embodiments, in one embodiment of the present invention, the first baffle body 12 or the second baffle body 22 is installed with, interferes with, has, contacts or is adjacent to the baffle body 3 (or suction body), or the first baffle body 12 or the second baffle body 22 is the baffle body (or suction body), wherein the baffle body 3 (or suction body) corresponding to any object is an arc, an oblique body, a stepped body, a plane body, a curved body, a concave body, a convex body or a structure that can fit, interfere or be close to any object to avoid fluid leakage when the first body part 1 and the second body part 2 are in a conductive state or a non-conductive state.
[0170] In addition to the above embodiments, in one embodiment of the present invention, a buckle body 4 is provided between the first body part 1 and the second body part 2, and the buckle body 4 buckles the first body part 1 and the second body part 2 (or the buckle body 4 buckles the first body part 1 and the second body part 2), and the buckle body 4 can be a spring buckle body, a bead body, a plastic buckle, a metal buckle body, a labor-saving buckle body, a spring buckle body or a lever buckle body. In this way, the first body part 1 and the second body part 2 can be firmly combined.
[0171] In addition, in the conduction method of the present invention, the buckle body 4 can be used to buckle the first body part 1 and the second body part 2, and the first blocking body 12 can be rotated, turned, moved laterally or moved to open the first flow path 11, so that the conducting part 13 is connected to the first flow path 11, and then the second blocking body 22 can be moved laterally or moved to open the second flow path 22, so as to conduct the first flow path 11 and the second flow path 12.
[0172] In addition to the above embodiments, in one embodiment of the present invention, the second body 2 is provided with an elastic component 5, the two ends of the elastic component 5 respectively abut the second body 2 and the second baffle 22, and the elastic force of the elastic component 5 is smaller than the fluid dynamics or thrust of the fluid flowing to the second flow path 22; in addition, the elastic force of the elastic component 5 may also be smaller than the fluid dynamics or thrust of the fluid flowing from the first body 1 to the second flow path 22. In this way, the fluid can push the second baffle 22 when flowing to the second body 2, and compress the elastic component 5 at the same time, and then the second baffle 22 opens the second flow path 21, so that the fluid can flow in the second flow path 21 and the flow channel 222. When the fluid is not flowing, the elastic recovery of the elastic component 5 causes the first baffle 12 and the second baffle 22 to elastically abut each other. In this way, the required fluid can flow stably in the first body 1 and the second body 2.
[0173] Based on the above-mentioned embodiments, in the conduction method of the present invention, the first baffle 12 can be rotated, turned, moved laterally or moved to open the first flow path 11, so that the conduction portion 13 is connected to the first flow path 11, and the power or thrust of the fluid is used to push the second baffle 22 pushed by the elastic component 5 to conduct the first flow path 11 and the second flow path 12, and the power or thrust of the fluid is greater than the elastic force of the elastic component 5.
[0174] In addition to the above embodiments, in one embodiment of the present invention, a limiting portion 24 is provided at one end of the second stopper 22, and the limiting portion 24 can guide and limit the moving stroke of the elastic component 5 so that the elastic component 5 can achieve a stable telescopic effect.
[0175] In addition to the above embodiments, in one embodiment of the present invention, the second body 2 may have a limiting force or a limiting structure (such as the above-mentioned elastic component 5) to limit the second baffle 22, or the limiting force or the force of the limiting structure is smaller than the fluid dynamics or thrust of the fluid flowing from the first body 1 to the second flow path 21 to push the second baffle 22 to open the second flow path 21, or the limiting force or the limiting structure is an elastic force, an elastic structure, a reciprocating structure, a reciprocating force, a fluid force, a gas force or an electrically driven force, so that the present invention can better meet the needs of actual applications.
[0176] In addition to the above embodiments, in one embodiment of the present invention, the first flow path 11, the second flow path 21 or the conducting portion 13 may be in a groove shape, a hole shape or a tube shape. Thus, different shapes may be selected as the first flow path 11 and the second flow path 21 according to actual application requirements.
[0177] In addition to the above embodiments, in one embodiment of the present invention, (such as Figure 6 The conductive structure of the present invention can be installed on an object 6 as needed. The object 6 can be a cabinet, a rack, a casing, a data center, a computer, a server, a storage, a heat sink, a radiator, a metal body, a plastic body, a storage, an electronic device, a mechanical device, a liquid cooling device, an engineering device, a computer, and the first flow path 11 and the second flow path 21 of the conductive structure 1 can flow through a heat sink 61 (or a heating element) to dissipate heat, and a pressure device 62 is also included. The pressure device 62 connects the first flow path 11 and the second flow path 12 so that the fluid in the first flow path 11 and the second flow path 22 has thrust, so that the fluid flows through the heat sink 61 to dissipate heat.
[0178] In addition to the above embodiments, in one embodiment of the present invention, the first body 1 and the second body 2 are fixed to the object 6, and the object 6 can be a cabinet, a rack, a casing, a data center, a computer, a server, a storage, a heat sink, a radiator, a metal body, a plastic body, so that the first body 1 and the second body 2 are fixedly joined, linearly joined, aligned joined, floating joined, blind joined or positioned joined, or wherein the fluid is water-cooled liquid, liquid, gas, water or oil.
[0179] In addition to the above embodiments, in one embodiment of the present invention, (such as Figure 7 As shown in the figure, the first body 1 and the second body 2 are fixed to the object 6 so that the first body 1 and the second body 2 are fixedly joined, linearly joined, floatingly joined, aligned joined, floating joined, blind joined or positioned joined; in addition, there is a floating space a between the object 6 and the first body 1 and the second body 2 (or between the flow path and the flow channel), and the floating space a can easily make the first body 1 and the second body 2 be fixedly joined, linearly joined, floatingly joined, aligned joined, floating joined, blind joined or positioned joined. In this way, the present invention can better meet the needs of practical applications.
[0180] In addition to the above embodiments, in one embodiment of the present invention, the difference from the above embodiments is that the first body 1 and the second body 2 are installed on the object 6, and the object 6 drives or links the first body 1 or the second body 2 to insert, assemble, blindly insert or blindly join the second body 2 and the first body 1, and the object 6 can be a PCB board, a printed circuit board, a heat sink, a housing, an IC, a computer, an electric body, a metal body, a non-metal body or a plastic body. In this way, the present invention can better meet the needs of practical applications.
[0181] In addition to the above embodiments, in one embodiment of the present invention, the conducting structure 1 conducts the fluid to flow through the heat sink 61 (heat sink structure or heat sink system) to dissipate heat, or the heat sink (heat sink structure or heat sink system) is used to guide the heat generated by the chip 7, IC, CPU, GPU, battery, power storage body, memory after power is turned on to reduce the temperature, and the first flow path 11, the second flow path 21, the first blocking body 12 and the second blocking body 22 are used to be combined, removed or switched to conduct the fluid, wherein the first flow path 11, the second flow path 21, the first blocking body 12 and the The second baffle 22 has the baffle 3 (or the absorbent) for absorbing the fluid between the first flow path 11, the second flow path 21, the first baffle 12 and the second baffle 22 (or the two baffles), or absorbing the fluid between the first flow path 11, the second flow path 21, the first baffle 12 and the second baffle 22 (or the two baffles) after closing, so as to prevent the fluid from flowing to the chip 7 or the circuit board 71 and causing a short circuit or contamination; in addition, the first flow path 11 and the second flow path 12 of the conducting structure can also be the heat sink 61 (heat dissipation structure or heat dissipation system).
[0182] See also Figure 8 As shown, in addition to the above-mentioned embodiments, in one embodiment of the present invention, it is different from the above-mentioned embodiments in that the second block body 22 is provided with a second operating part 23, and the second operating part 23 is combined with the second block body 22 by a bolting part 231, wherein the second operating part 23 can be a pull-type rotating body, a rod body, a concave body, a convex body, an axis part or an axle body. The second operating part 23 in this embodiment is a pull-type rotating body, which is used to operate the second block body 22 to move by a labor-saving lever, and the first block body 12 and the second block body 22 are elastically pressed against each other first, and the stopping part 221 is made.
[0183] Based on the above embodiment, when in use, force can be applied to the first operating portion 14 to rotate, turn, move laterally or move the first blocking body 12, and force can be applied to the second operating portion 23 to rotate, turn, move laterally or move the second blocking body 22, so that the first flow path 11, the conductive portion 13 and the second flow path 21 are interconnected. In this way, fluid can flow in the first flow path 11 and the second flow path 21.
[0184] In addition to the above embodiments, in one embodiment of the present invention, the stopper 221 limits the moving position of the second stopper 22 and the second operating portion 23. In this way, the required fluid can flow stably in the first body part 1 and the second body part 2.
[0185] See also Fig. 9As shown, in addition to the above embodiment, in one embodiment of the present invention, the difference from the above embodiment is that the first stopper 12 is a ball valve provided with the first operating part 14, and the second stopper 22 is a threaded body (or a rotating body) provided with the second operating part 23. In this way, force can be applied to the first operating part 14 to rotate, turn, move laterally or move the first stopper 12, and force can be applied to the second operating part 23 to operate the second stopper 22 by screwing the threaded body with effortless screwing, thereby rotating, turning, moving laterally or moving the second stopper 22, so that the first flow path 11, the conducting part 13 and the second flow path 21 are connected to each other. In this way, fluid can flow in the first flow path 11 and the second flow path 21.
[0186] See also Figures 10 to 12 As shown, in addition to the above embodiments, in one embodiment of the present invention, the difference from the above embodiments is that the first body 1, the first baffle 12, the second body 2 and the second baffle 22 have an inclined surface, a curved surface, an arc surface or a flow-guiding structure to facilitate the flow or discharge of the fluid. In this embodiment, the second baffle 22 (or the first baffle 12) may have a discharge portion 25, so that when the first flow path 11 and the second flow path 12 are not connected, the discharge portion 25 can unidirectionally discharge part of the fluid between the first body 1 and the second body 2, or be used to discharge the fluid between the first baffle 12 and the second baffle 22.
[0187] In addition to the above embodiments, in one embodiment of the present invention, the discharge portion 25 can be a hole portion, a tapered hole portion, a gradually enlarged hole portion, a groove portion, a cut groove portion, a piston body, a plug body, an object that discharges fluid in one direction, an object that limits the discharge of fluid in one direction, a fluid absorber, a soft body, a hard body, a one-way valve, a rubber body, a silicone body, a check body, a check body, a check valve, a check valve, a leak-proof body, a rubber body, a silicone body, a structure with a cutout, a structure with an opening, a structure with a one-way cutout, a structure with a one-way opening, a metal body or a plastic body. In this embodiment, the second stopper 22 is a piston body, and the first stopper 12 and the second stopper 22 are corresponding structures (or corresponding spaces), so that the space for storing fluid between the first stopper 12 and the second stopper 22 is less than 500°C. In this way, the first stopper 12 and the second stopper 22 can be prevented from leaking fluid when they are in a conductive state or a non-conductive state. In this way, the second stopper 22 of the present invention can cooperate with the discharge portion 25 to better meet the needs of actual application.
[0188] See also Fig.13As shown, in addition to the above embodiments, in one embodiment of the present invention, it is different from the above embodiments in that the first body part 1 includes a first flow path 11, and the first flow path 11 is movably provided with a first baffle 12; the second body part 2 includes a second flow path 21, and the second flow path 21 is movably provided with a second baffle 22.
[0189] In addition to the above embodiments, in one embodiment of the present invention, the first body portion 1 and the second body portion 2 are respectively provided with elastic components 5, wherein two ends of one elastic component 5 respectively abut against the first body portion 1 and the first stopper 12, and two ends of another elastic component 5 respectively abut against the second body portion 2 and the second stopper 22.
[0190] In addition to the above embodiments, in one embodiment of the present invention, the first operating portion 14 is connected to the first blocking body 12 via a bolt connection portion 141 so as to generate force to operate the first blocking body 12 to move or move laterally by pulling.
[0191] Based on the above embodiment, when in use, the buckle body 4 can be buckled to engage the first body part 1 and the second body part 2, and force can be applied to rotate, turn, move laterally or move the first operating part 14, so that the first blocking body 12 first moves laterally or moves to open the first flow path 11, so that the conducting part 13 is connected to the first flow path 11, so that the fluid can push the second blocking body 22 through the first flow path 11, and the second blocking body 22 opens the second flow path 21, so that the fluid can flow in the first flow path 11 and the second flow path 12. This makes the present invention more in line with the needs of practical application.
[0192] See also Fig.14 As shown, in addition to the above embodiment, in one embodiment of the present invention, the difference from the above embodiment is that the first stopper 12 is a ball valve provided with the first operating part 14, and the second stopper 22 is a ball valve provided with another conducting part 26 and the second operating part 23. In this way, force can be applied to the first operating part 14 to rotate, turn, move laterally or move the first stopper 12, and force can be applied to the second operating part 23 to rotate, turn, move laterally or move the second stopper 22, so that the first flow path 11, the conducting part 13, the another conducting part 26 and the second flow path 12 are connected to each other. In this way, fluid can flow in the first flow path 11 and the second flow path 21, so that the present invention can better meet the needs of practical application.
[0193] See also Fig.15 As shown, in addition to the above embodiments, in one embodiment of the present invention, the difference from the above embodiments is that the first body 1 is provided with a push portion 15 , and the push portion 15 pushes the second stopper 22 in the second body 2 .
[0194] In addition to the above embodiments, in an embodiment of the present invention, the push portion 15 has a channel 151 , and when the push portion 15 enters the second body portion 2 , the fluid is conducted through the channel 151 , and the channel 151 is located at a lateral position of the push portion 15 .
[0195] Based on the above-mentioned embodiment, when in use, the buckle body 4 can be buckled together with the first body part 1 and the second body part 2, so that the pushing portion 15 pushes the second blocking body 22 in the second body part 2, and the second blocking body 22 moves to open the second flow path 21 first, and then the first blocking body 12 is rotated, turned, moved laterally or moved to open the first flow path 11, so that the conducting portion 13 is connected to the first flow path 11, so that the fluid can flow through the first flow path 11 and the conducting portion 13 in the direction of the second flow path 12, so that the present invention can better meet the needs of practical applications.
[0196] See also Fig.16 As shown, in addition to the above-mentioned embodiments, in one embodiment of the present invention, it is different from the above-mentioned embodiments in that the first operating part 14 has a first positioning part 142 or the second operating part 23 has a second positioning part 232, and the first positioning part 142 or the second positioning part 232 is used to position the first baffle body 12 or the second baffle body 22 to be limited to a position of opening the flow path or a position of closing the flow path, so that the required fluid can flow stably in the first body part 1 and the second body part 2.
[0197] In addition to the above embodiments, in an embodiment of the present invention, the first positioning portion 142 and the second positioning portion 232 can also be provided on the first blocking body 12, the second blocking body 22, the first body 1 or the second body 2 as required, so that the present invention can better meet the needs of practical application.
[0198] In addition to the above embodiments, in the embodiments of the present invention, the first positioning portion 142 or the second positioning portion 232 can be a buckle body, a buckle portion or a limiting portion as required, so that the present invention can better meet the needs of practical applications.
[0199] In addition to the above embodiments, in an embodiment of the present invention, the elastic component 5 is used to make the first positioning portion 142 or the second positioning portion 232 elastically buckled to the first body portion 1 or the second body portion 2, so that the first baffle 12 or the second baffle 22 is limited to a position to open the flow path or a position to close the flow path.
[0200] In addition to the above embodiments, in an embodiment of the present invention, a first lifting portion 143 is provided at one end of the first positioning portion 142, or a second lifting portion 233 is provided at one end of the second positioning portion 232, and force is applied to the first lifting portion 143 or the second lifting portion 233 to cooperate with the elastic component 5 so that the first positioning portion 142 or the second positioning portion 232 is limited to the first corresponding recess 17 of the first body 1 or the second corresponding recess 28 of the second body 2, so that the first baffle 12 or the second baffle 22 is firmly located at a position to open the flow path or a position to close the flow path.
[0201] See also Fig.17 and Fig.18 As shown, in addition to the above-mentioned embodiments, in one embodiment of the present invention, it is different from the above-mentioned embodiments in that the first block body 12 and the second block body 22 are respectively provided with a driving body 8, and the driving body 8 is used to drive, mutually drive, relatively drive, drive, mutually drive, relatively drive, move, mutually move, relatively move, actuate, mutually actuate, rotate or relatively rotate to open the first flow path 11 and the second flow path 21, so that the present invention can better meet the needs of actual applications.
[0202] See also Fig.19 and Fig. 20 As shown, in addition to the above embodiments, in one embodiment of the present invention, the difference from the above embodiments is that the second body 2 pushes the first baffle 12 to open the first flow path 11, so that the fluid flows into the second body 2 and pushes the second baffle 22 to open the second flow path 21, allowing the fluid to flow in the second flow path 21 and the flow channel 222, so that the present invention can better meet the needs of practical applications.
[0203] In addition to the above embodiments, in one embodiment of the present invention, the difference from the above embodiments is that when the first flow path 11 and the second flow path 12 are not connected, the cutout 251 of the discharge portion 25 can be used to unidirectionally discharge part of the fluid between the first body 1 and the second body 2, or to discharge the fluid between the first baffle 12 and the second baffle 22, so that the present invention can better meet the needs of practical applications.
[0204] See also Fig.21As shown, in addition to the above-mentioned embodiments, in one embodiment of the present invention, it is different from the above-mentioned embodiments in that the first baffle body 12 and the second baffle body 22 can respectively have the baffle fluid 3 (or the suction fluid), and the position for the first baffle body 12 or the second baffle body 22 to push has the baffle fluid 3 (or the suction fluid), and the pushing position of the first baffle body 12 and the second baffle body 22 has the baffle fluid 3 (or the suction fluid); in this way, the fluid between the first flow path 11, the second flow path 21, the first baffle body 12 and the second baffle body 22 can be absorbed by the baffle fluid 3 (or the suction fluid), so that the present invention can better meet the needs of practical applications.
[0205] See also Fig. 22 As shown, in addition to the above-mentioned embodiments, in one embodiment of the present invention, it is different from the above-mentioned embodiments in that the first body 1 and the second body 2 can be assembled on the object 6, and the object 6 can be a casing, a cabinet, a metal body, a plastic body or a printed circuit board as required, so that the first flow path 11 and the second flow path 21 of the conductive structure 1 can flow through the heat sink 61 (or a heating element) to dissipate heat, and there is a floating space a between the first body 1, the second body 2 and the object 6, and the floating space a is used to correct or guide the connection between the first body 1, the first flow path 11, the second body 2 and the second flow path 12, so that the present invention can better meet the needs of practical applications.
[0206] See also Fig.23 As shown, in addition to the above-mentioned embodiments, in one embodiment of the present invention, the difference from the above-mentioned embodiments lies in that the second body portion 2 is provided with at least one track 29, and the second block body 22 is provided with a guide portion 223 movably arranged on the track 29, and the track 29 is used to cooperate with the guide portion 223 to guide or adjust the second block body 22.
[0207] In one embodiment of the present invention, which is different from the above embodiment, the second body 2 is provided with a blocking portion 291 , and the blocking portion 291 is provided with at least one through hole 292 , and the through hole 292 is connected to the second flow path 21 .
[0208] In one embodiment of the present invention, it is different from the above embodiment in that the width of the second flow path 21 is the same as or corresponds to the second baffle 22. When the fluid enters the second body 2 through the first flow path 11, the fluid can push the second baffle 22 and the second baffle 22 is guided or corrected by the cooperation of the guide portion 223 and the track 29 to make the second baffle 22 retreat, and the retreat position of the second baffle 22 is limited by the stop portion 291, so that the fluid passes through the second flow path 21 of the non-corresponding part of the second flow path 21 and the second baffle 22, and flows from the second flow path 21 to the through hole 292, so that the required fluid can flow stably in the first body and the second body.
[0209] See also Fig.24 As shown, in addition to the above embodiments, in one embodiment of the present invention, the difference from the above embodiments lies in that the first baffle body 12 (or the first body 1) is provided with a resisting portion 122, which allows the second body 2 to push the first baffle body 12 to open the first flow path 11 closed by the resisting portion 122 and the first baffle body 12, so that the fluid pushes the second baffle body 22 to open the second flow path 21, or the second body 2 pushes the first baffle body 12 to open the first flow path 11 closed by the resisting portion 122 and the first baffle body 12, and the resisting portion 122 pushes the second baffle body 22 to open the second flow path 21, so that the present invention can better meet the needs of practical applications.
[0210] In one embodiment of the present invention, it is different from the above-mentioned embodiment in that the second body 2 pushes the first baffle 12 to open the first flow path 11 closed by the baffle portion 121 and the first baffle 12, and the baffle portion 122 is used to move the second baffle 22 in the direction of opening the second flow path 21, so that the fluid pushes the second baffle 22 to open the second flow path 21, so that the present invention can better meet the needs of practical applications.
[0211] In one embodiment of the present invention, it is different from the above-mentioned embodiment in that the second body 2 pushes the first baffle 12 to open the first flow path 11 closed by the baffle 122 and the first baffle 12, so that the fluid pushes the second baffle 22 to open the second flow path 21, and wherein the elastic component 5 pushes against the second body 2 and the second baffle 22 to open the second flow path 21 when the fluid force is greater than the force of the elastic component 5, and when the second body 2 moves in the direction of closing the first flow path 11, the fluid force is reduced, and the flow path is closed when the force of the elastic component 5 is greater than the fluid force.
[0212] In one embodiment of the present invention, it is different from the above embodiment in that when the second body 2 moves in the direction of closing the first flow path 11, the fluid force is reduced or the fluid force stops, and when the force of the elastic component 5 is greater than the fluid force or the fluid force stops, the second flow path 21 is closed or the first flow path 11 is closed, or the first flow path 11 or the second flow path 21 is closed at the same time, or the first flow path 11 is closed first and then the second flow path 21 is closed, or the second flow path 21 is closed first and then the first flow path 11 is closed. In this way, the present invention can better meet the needs of practical applications.
[0213] See also Fig.25 and Fig.26 As shown, in addition to the above-mentioned embodiments, in one embodiment of the present invention, the difference from the above-mentioned embodiments is that the blocking portion 122 is arranged on the first blocking body 12, and the blocking portion 122 has at least one flow portion 123, and the flow portion 123 can be a groove to conduct fluid, so that the present invention can better meet the needs of practical applications.
[0214] See also Fig. 27 and Fig.28 As shown, in addition to the above-mentioned embodiments, in one embodiment of the conduction structure and the conduction method thereof of the present invention, the difference from the above-mentioned embodiments lies in that the first body 1 (or the second body 2) has an operating part 10, and the operating part 10 has a buckle part 101 for buckling with the second body 2 (or the first body 1), and the buckle part 101 has a pull part 102, and the pull part 102 and a bolt body 104 of the buckle part 101 are bolted to each other, and when in use, the pull part 102 is pressed or pulled to switch the buckle part 101, and the buckle part 101 has an elastic component 103 for making the buckle part 101 elastically buckled, so that the present invention can better meet the needs of practical applications.
[0215] See also Fig.29 and Fig.31As shown, in addition to the above embodiments, in one embodiment of the conduction structure and the conduction method thereof of the present invention, the difference from the above embodiments is that the second body 2 has a driving part 20, and the driving part 20 is used to drive the first blocking body 12 to rotate or turn the first blocking body 12 to open the first flow path 11, wherein the driving part 20 is a toothed part, a rack, a gear, a column, a sliding body, a bracket body, a structure that is buckled, assembled or slidably connected to the second body 2 or the first body 1, and the driving part 20 is a driving part 20 that drives the first body part 1 laterally or vertically, and the driving part 20 has a movement space 201 for limiting movement, and the driving part 20 has a limiting part 202 for limiting, positioning or temporarily positioning, wherein the first body part 1 or the second body part 2 has a limiting part 202 for limiting, positioning or temporarily positioning, and the limiting part 202 has an elastic component 203 for elastically pressing against the driving part 20, and in addition, the driving part 20 has an operating part 10 for operating the driving part 20.
[0216] See also Fig.32 As shown, in addition to the above embodiments, in one embodiment of the conduction structure and the conduction method thereof of the present invention, the difference from the above embodiments is that the first body 1 has a driving part 20, and the driving part 20 is used to drive the second blocking body 22 to rotate or turn the second blocking body 22 to open the second flow path 21, wherein the driving part 20 is a toothed part, a rack, a gear, a column, a sliding body, a bracket body, a structure that is buckled, assembled or slidably connected to the second body 2 or the first body 1, and The driving part 20 drives the second body part 2 laterally or vertically, and the driving part 20 has a movement space 201 for limiting movement, and the driving part 20 has a limiting part 202 for limiting, positioning or temporarily positioning, wherein the first body part 1 or the second body part 2 has a limiting part 202 for limiting, positioning or temporarily positioning, and the limiting part 202 is used to elastically press against the driving part 20, and in addition, the driving part 20 has an operating part 10 for operating the driving part 20.
[0217] See also Figure 33 to Figure 35As shown, in addition to the above embodiments, in an embodiment of the conduction structure and the conduction method of the present invention, the difference from the above embodiments is that the first body 1 and the second body 2 can respectively have a driving part 20, and the driving part 20 is used to drive the first blocking body 12 and the second blocking body 22 to rotate or turn the first blocking body 12 and the second blocking body 22 to open the first flow path 11 and the second flow path 21, wherein the driving part 20 is a toothed part, a rack, a gear, a column, a sliding body, a bracket body, an upper and lower buckle connection, a combination The structure is connected or slidably connected to the second body part 2 or the first body part 1, and the driving part 20 is driven laterally or vertically, and the driving part 20 has a movement space 201 for limiting movement, and the driving part 20 has a limiting part 202 for limiting, positioning or temporarily positioning, wherein the first body part 1 or the second body part 2 has a limiting part 202 for limiting, positioning or temporarily positioning, and the limiting part 202 is used to elastically press against the driving part 20, and in addition, the driving part 20 has an operating part 10 for operating the driving part 20.
[0218] See also Fig.36 As shown, in addition to the above embodiments, in one embodiment of the conduction structure and the conduction method thereof of the present invention, the difference from the above embodiments is that the second body 2 and the first body 1 may respectively have a driving part 20, and the driving part 20 is used to first drive the second baffle 22 or one of the first baffle 12, and then drive the second baffle 22 or one of the first baffle 12, so that the opening and closing sequence of the second baffle 22 or the first baffle 12 is different, so that the first baffle 12 or the second baffle 22 is not closed when the second baffle 22 or the first baffle 12 is closed, so that the fluid flows to the unclosed second baffle 22 or the first baffle 12, or the fluid between the second baffle 22 or the first baffle 12 enters the unclosed first baffle 12 or the second baffle 22, so that the first baffle 12 or the second baffle 22 is closed when there is no fluid or is close to no fluid between the second baffle 22 or the first baffle 12.
[0219] See also Fig.37 and Fig.38As shown, in addition to the above-mentioned embodiments, in one embodiment of the conduction structure and the conduction method thereof of the present invention, the difference from the above-mentioned embodiments is that the first flow path 11, the second flow path 21 or the conduction portion 13 and the other conduction portion 26 are located at different heights, height differences, upper and lower positions or upper and lower position differences, so as to allow the fluid to flow from a high place to a low place, so as to allow the fluid to flow to a low position when the higher-positioned first baffle 12 or the second baffle 22 is closed, so as to reduce or completely stop the fluid between the first baffle 12 and the second baffle 22 when both the first baffle 12 and the second baffle 22 are closed.
[0220] See also Fig.39 As shown, in addition to the above-mentioned embodiments, in one embodiment of the conduction structure and the conduction method thereof of the present invention, the difference from the above-mentioned embodiments is that the first baffle 12 (or the second baffle 22) has a torsion spring 30 (or an elastic component), one end of the torsion spring 30 abuts against the first body 1 (or the second body 2) and the other end abuts against the first baffle 12 (or the second baffle 22), so as to make the rotatable or rotatable first baffle 12 (or the second baffle 22) normally abut against the closed position of the first flow path 11 (or the second flow path 21), or to make the first baffle 12 (or the second baffle) normally abut against the open position of the first flow path 11 (or the second flow path 21).
[0221] See also Fig.40 and Fig.41 As shown, in addition to the above embodiments, in one embodiment of the conduction structure and the conduction method of the present invention, the difference from the above embodiments is that the conduction structure is installed on a heat sink 61, and the heat sink 61 contacts a heating element 40 for heat dissipation. In one embodiment, the heating element 40 is arranged between two heat sinks 61 for heat dissipation (such as Fig.40 As shown), or the heating element 40 is disposed in a heat sink 61 for heat dissipation (as shown Fig.41 As shown), and one of the heat sinks 61 or two heat sinks 61 is provided with the conductive structure, and the heat sink 61 can be mounted on an object 6 for use, wherein the object 6 can be a printed circuit board, a metal body, a plastic body, a heat sink, a computer component, a casing component, a server component or a server casing, or the heat sink is a chip, a CPU or a GPU.
[0222] See also Fig.42 and Fig.43As shown, in addition to the above embodiments, in one embodiment of the conduction structure and the conduction method of the present invention, the difference from the above embodiments is that the conduction structure has a flow space 50 at least between the second blocking body 22, the second body 2 and the first body 1, so that when the second body 2 is closed, the fluid between the first blocking body 12 and the second blocking body 22 flows (or flows) from the flow space 50 to the second body 2, or when the second body 2 is closed, the fluid between the first body 1 and the second body 2 flows from the flow space 50 to the second body 2. The fluid baffle 3 is used to close the flow space 50 so as to reduce (or decrease) the fluid between the first baffle 12 and the second baffle 22, or to reduce or decrease the fluid between the first body 1 and the second body 2.
[0223] See also Fig.44 As shown, in addition to the above embodiments, in one embodiment of the present invention, the difference from the above embodiments lies in that the first baffle body 12 and the second baffle body 22 are rotating bodies, the first baffle body 12 is provided with a first toothed portion 121, the second baffle body 22 is provided with a second toothed portion 220, and the first body 1 or the second body 2 is provided with a corresponding toothed portion 8, the corresponding toothed portion 8 drives the first toothed portion 121 and the second toothed portion 220 to drive the first baffle body 12 and the second baffle body 22 to open the first flow path 11 and the second flow path 21 respectively.
[0224] In addition to the above embodiments, in an embodiment of the present invention, the first toothed portion 121 , the second toothed portion 220 and the corresponding toothed portion 8 are gears or racks, respectively.
[0225] In addition to the above embodiments, in an embodiment of the present invention, the corresponding toothed portion 8 has a motion space 81, and the motion space 81 is fixed to the first body part 1 or the second body part 2 or the object 6 (fixed to the second body part 2 in this embodiment) with a fixing portion 82, and the corresponding toothed portion 8 is limited to the motion space 81 to serve as a driving or motion range.
[0226] In addition to the above embodiments, in an embodiment of the present invention, the second stopper 22 has a second operating portion 23 , and the second operating portion 23 is used to drive or operate the second stopper 22 .
[0227] See also Fig.45 and Fig.46 As shown, in addition to the above-mentioned embodiments, in one embodiment of the present invention, it is different from the above-mentioned embodiments in that the buckle body 4 is arranged in a storage space 16 of the first body part 1, and the two ends of the elastic component 5 respectively press against the buckle body 4 and the first body part 4 (or the second body part 2), and the buckle body 4 is buckled with a buckling portion 27 of the second body part 2 (or the first body part 1), and one side of the buckle body 4 has a first guide surface 41, and the other side of the buckle body 4 has a second guide surface 42 and a buckling surface 43, the first guide surface 41 and the buckling surface 43 are buckled with the buckling portion 27, and the buckle body 4 is displaced to separate the first body part 1 from the second body part 2 with the second guide surface 42.
[0228] See also Fig.47 In addition to the above-mentioned embodiments, in one embodiment of the present invention, the difference from the above-mentioned embodiments is that the buckle body 4 can be provided on the first body part 1 or the second body part 2 as needed, so that the buckle body 4 buckles the first body part 1 and the second body part 2, and the buckle body 4 is an annular buckle body or a deformable buckle body, so that the buckle body can be deformed under pressure to make the first body part 1 and the second body part 2 separate or buckle.
[0229] In addition to the above embodiments, in an embodiment of the present invention, the buckle body 4 is a plastic buckle body, a metal buckle body, an elastic buckle body, a flexible buckle body, a deformable structure that can be deformed from an inclined surface or a curved surface to a convex surface, a curved surface, a round surface, or can be detached from the buckling portion 27 after pressure is applied, so that the first body part 1 and the second body part 2 can achieve the effect of easy combination and detachment.
[0230] See also Fig.48 As shown, in addition to the above-mentioned embodiments, in one embodiment of the present invention, it is different from the above-mentioned embodiments in that the first baffle body 12 is provided with a first toothed portion 121, the second baffle body 22 is provided with a second toothed portion 220, and the object 6 is provided with a corresponding toothed portion 63, and the corresponding toothed portion 63 drives the first toothed portion 121 and the second toothed portion 220 to drive the first baffle body 12 and the second baffle body 22 to open the first flow path 11 and the second flow path 21 respectively.
[0231] See also Fig.49As shown, in addition to the above-mentioned embodiments, in one embodiment of the present invention, it is different from the above-mentioned embodiments in that the second baffle body 22 is a rotating body, the second baffle body 22 is provided with a second toothed portion 220, the first baffle body 12 is provided with a linkage portion 122 (the linkage portion 122 may have a movement space), and the second body portion 2 is provided with a corresponding toothed portion 29 for driving the first baffle body 12 and the second baffle body 22 to open the first flow path 11 and the second flow path 21, so that the first baffle body 12 or the second baffle body 22 is firmly located at a position to open the flow path or a position to close the flow path.
[0232] In addition to the above embodiments, in an embodiment of the present invention, the first block body 12 or the second block body 22 can be a rotating body or a non-rotating body, and the corresponding toothed portion 29 or the linkage portion 122 can also be provided on the first body portion 1, the second body portion 2 or the object 6, so that the present invention can better meet the needs of practical applications.
[0233] In addition, the first toothed portion 121 and the second toothed portion 220 may drive the corresponding toothed portion 29 to drive the linkage portion 122 (the first toothed portion 121 or the second toothed portion 220 ), so that the present invention can better meet the needs of practical applications.
[0234] In addition to the above embodiments, in an embodiment of the present invention, the first toothed portion 121, the second toothed portion 220, the corresponding toothed portion 29 and the linkage portion 122 can drive each other, so that the present invention can better meet the needs of practical application.
[0235] In summary, the conducting structure and conducting method of the present invention can enable the required fluid to flow stably in the first body part and the second body part.
[0236] The above description is merely an embodiment of the present invention and is not intended to limit the patent scope of the present invention.
Claims
1. A conductive structure, characterized in that: The conductive structure comprises: A first body portion, comprising a first flow path, wherein the first flow path is provided with a first baffle; and The second body portion includes a second flow path, wherein the second flow path is provided with a second baffle.
2. The conductive structure according to claim 1, characterized in that: The first block body or the second block body is provided with a stopping portion, or the stopping portion limits the moving position of the first block body, the second block body, the first operating portion of the first block body or the second operating portion of the second block body, or the stopping portion is provided with at least one flow channel, or the flow channel is connected to the second flow path or the first flow path, or wherein the first block body or the second block body has a torsion spring or an elastic component, or the torsion spring or the elastic component is used to press one end against the first body part or the second body part and the other end against the first block body or the second block body, or to make the rotatable or rotating first block body or the second block body normally press against the closed position of the first flow path or the second flow path, or to make the first block body or the second block body normally press against the open position of the first flow path or the second flow path.
3. The conductive structure according to claim 1, characterized in that: The first body, the first flow path, the first baffle, the second body, the second flow path or the second baffle is provided with a baffle or a suction fluid, or the first baffle, the second baffle, the baffle or the suction fluid are corresponding structures, so that the first baffle and the second baffle are in contact with, blocking or elastically blocking each other, or the baffle or the suction fluid is an O-ring, a ring body, an elastomer, foam, cotton body, a return fluid valve, a sponge body, a siphon body, a foamed body, a fiber body, a suction cotton body, a recyclable material body, a degradable material body, a colloid, a buffer body or an object that can absorb fluid, or the first baffle or the second baffle has a suction fluid, or the position where the first baffle or the second baffle is used to push has a suction fluid, or the pushing position between the first baffle and the second baffle has a suction fluid, or the first baffle or the second baffle is equipped with, interferes with, has, contacts or is adjacent to a baffle Fluid or suction fluid, or wherein the first baffle or the second baffle is a baffle or suction fluid, or wherein the baffle or suction fluid is an arc, an oblique body, a stepped body, a plane body, a curved surface body, a concave body, a convex body or a structure that can fit, interfere or approach any object at the corresponding position of the baffle or suction fluid, or wherein the baffle or suction fluid can absorb the fluid between the first baffle or the second baffle or the two baffles, or the first baffle, the second baffle, the first body or the second body has a suction fluid, wherein the suction fluid is located at a position that will not contact the fluid when the fluid flows, and when one of the first baffle or the second baffle is closed, or the first baffle and the second baffle are closed at the same time, or the first body and the second body are separated, the suction fluid can absorb the fluid that is not closed by the first baffle or the second baffle, or the fluid retained between the first baffle, the second baffle, the first body or the second body.
4. The conductive structure according to claim 1, characterized in that: The first body part or the second body part is provided with a buckle body, or the buckle body buckles the first body part or the second body part, or the buckle body is a spring buckle body, a bead body, a plastic buckle, a metal buckle body, a labor-saving buckle body, a spring buckle body or a lever buckle body, or the buckle body buckles the first body part or the second body part, or wherein the first body part or the second body part is mounted on an object, and the object drives or links the first body part or the second body part to be inserted, assembled, blindly inserted or blindly engaged with the second body part or the first body part, or wherein the object is a PCB board, a printed circuit board, a heat sink, a casing, an IC, a computer, an energized body, a metal body, a non-metallic body or a plastic body, or wherein the first body part or the second body part has an operating part, or the operating part has a buckle part for buckling with the second body part or the first body part, or the buckle part has a pull part, or is used to press or pull the pull part to switch the buckle part, or the buckle part has an elastic component to make the buckle part elastically buckled.
5. The conductive structure according to claim 1, characterized in that: The first body part or the second body part is provided with an elastic component, and the two ends of the elastic component respectively abut the first body part and the first blocking body, or the two ends of the elastic component respectively abut the second body part and the second blocking body, or the second body part is provided with an elastic component, and the two ends of the elastic component respectively abut the second body part and the second blocking body, or the elastic force of the elastic component is smaller than the fluid dynamics or thrust of the fluid flowing to the second flow path, or the elastic force of the elastic component is smaller than the fluid dynamics or thrust of the fluid flowing from the first body part to the second flow path, or the elastic force of the elastic component is smaller than the fluid dynamics or thrust of the fluid flowing from the first body part to the second flow path, The fluid dynamics or thrust of the fluid flowing from the first body part to the second flow path is used to push the second baffle body to open the second flow path, or the second body part has a limiting force or a limiting structure to limit the second baffle body, or the limiting force or the force of the limiting structure is smaller than the fluid dynamics or thrust of the fluid flowing from the first body part to the second flow path to push the second baffle body to open the second flow path, or the limiting force or the limiting structure is an elastic force, an elastic structure, a structure capable of reciprocating motion, a force capable of reciprocating motion, a fluid force, a gas force or an electrically driven force.
6. The conductive structure according to claim 1, characterized in that: The second baffle body or the first baffle body has a discharge portion for discharging the fluid between the first body part and the second body part, or for discharging the fluid between the first baffle body and the second baffle body, or for discharging the fluid between the first body part and the second body part into the first body part or the second body part, or for discharging the fluid between the first baffle body and the second baffle body into the first baffle body or the second baffle body, or wherein the first body part is provided with a push portion, the push portion pushes the second baffle body in the second body part, or the push portion has a channel, and the fluid is conducted through the channel when the push portion enters the second body part, or the channel is located at a lateral position of the push portion.
7. The conductive structure according to claim 1, characterized in that: The first block body is provided with a first operating part or the second block body is provided with a second operating part, or the first operating part has a first positioning part or the second operating part has a second positioning part, or the first block body has a first positioning part or the second block body has a second positioning part, or the first body has a first positioning part or the second body has a second positioning part, or the first positioning part or the second positioning part is used to position the first block body or the second block body in a position to open the flow path or a position to close the flow path, or it also includes an elastic component, and the elastic component is used to make the first positioning part or the second positioning part elastically buckled to the first body or the second body, or to limit the first block body or the second block body to a position to open the flow path or a position to close the flow path, or the first positioning part or the second positioning part is a buckle body, a buckle part or a limiting part.
8. The conductive structure according to claim 1, characterized in that: The first stopper is connected to the first toothed portion, and the second stopper is connected to the second toothed portion. The first toothed portion is rotated to drive the second toothed portion to open or close the two flow paths, or the first stopper or the second stopper is a valve body, a ball valve, a transverse valve body, a gate valve or a valve body, or the first toothed portion or the second toothed portion is a gear or a rack, or the second body or the first body is provided with at least one track, and the track is used to guide or regulate the second stopper or the first stopper, or the second body or the first body is provided with a guide portion to guide the second stopper or the first stopper to move in the guide portion, or the guide portion has the first flow path or the second flow path.
9. The conductive structure according to claim 1, characterized in that: The second body is provided with a resisting portion, which limits the retreat position of the second baffle body, or the resisting portion is provided with at least one through hole, which is connected to the second flow path, or the second body pushes the first baffle body to open the first flow path closed by the resisting portion and the first baffle body, or the fluid pushes the second baffle body to open the second flow path, or the second body pushes the first baffle body to open the first flow path closed by the resisting portion and the first baffle body, so that the fluid pushes the second baffle body to open the second flow path, or an elastic component is provided to resist the second body and the second baffle body, and when the fluid force is greater than the force of the elastic component, the second body is used to push the first baffle body to open the second flow path. To open the second flow path, or reduce the fluid force when the second body moves in the direction of closing the first flow path, or close the flow path when the force of the elastic component is greater than the fluid force, or reduce the fluid force or stop the fluid force when the second body moves in the direction of closing the first flow path, and close the second flow path or the first flow path when the force of the elastic component is greater than the fluid force or the fluid force stops, or close the first flow path or the second flow path at the same time, or close the first flow path first and then the second flow path, or close the second flow path first and then the first flow path, or the direction in which the second body moves in the direction of closing the first flow path is to move toward the second body.
10. The conductive structure according to claim 1, characterized in that: The second body pushes the first baffle to open the first flow path closed by the resisting part and the first baffle, and the resisting part is used to move the second baffle in the direction of opening the second flow path so that the fluid pushes the second baffle to open the second flow path, or the second body pushes the first baffle to open the first flow path closed by the resisting part and the first baffle, or the resisting part pushes the second baffle to open the second flow path, or the first body is provided with a resisting part, and the resisting part has at least one flow passage to conduct the fluid, or the second body is used to push the first baffle to open the first flow path so that the fluid flows into the second body through the flow passage, or the second body is used to push the first baffle to open the first flow path and the resisting part is used to push the second baffle to allow the fluid to flow into the second body.
11. The conductive structure according to claim 1, characterized in that: The second body part has a driving part, or the driving part is used to drive the first blocking body, or the driving part is used to drive the first blocking body to rotate or turn to open the first flow path, or the driving part is a toothed part, a rack or a gear, or the driving part drives the driving part of the first body part laterally or vertically, or the driving part has a movement space for limited movement, or the driving part has a limiting part for limiting, positioning or temporary positioning, or the first body part or the second body part has a limiting part for limiting, positioning or temporary positioning, or the limiting part has an elastic component for elastically resisting the driving part, or the driving part is a column, a sliding body, a bracket body, buckled, assembled or slidably connected to the second body part Or the structure of the first body part, or the driving part has an operating part for operating the driving part, or the first body part has a driving part, or the driving part is used to drive the second block, or the driving part is used to drive the second block to rotate or turn to open the second flow path, or the driving part is a toothed part or a rack or a gear, or the driving part drives the driving part of the second body laterally or vertically, or the driving part has a movement space for limited movement, or the driving part has a limiting part for limiting, positioning or temporary positioning, or the first body part or the second body part has a limiting part for limiting, positioning or temporary positioning, or the limiting part has an elastic component for elastically pressing against the driving part, or The driving part is a column, a sliding body, a bracket body or a structure that is buckled, assembled or slidably connected to the second body part or the first body part, or the driving part has an operating part for operating the driving part, or wherein the second body part or the first body part has a driving part, or the driving part is used to drive the second block body and the first block body, or the driving part is used to drive the second block body or the first block body to rotate or turn to open the first flow path or the second flow path, or wherein the driving part is a toothed part, a rack or a gear, or wherein the driving part is driven laterally or vertically, or wherein the driving part has a movement space for limited movement, or wherein the driving part has a limiting part for limiting, positioning or temporary positioning, or wherein the first body The first body part or the second body part has a limiting part for limiting, positioning or temporarily positioning, or the limiting part has an elastic component for elastically pressing against the driving part, or the driving part is a column, a sliding body, a bracket body, a structure that is buckled, assembled or slidably connected to the second body part or the first body part, or the driving part has an operating part for operating the driving part, or the second body part or the first body part has a driving part, or the driving part is used to first drive one of the second block body or the first block body, and then drive one of the second block body or the first block body, so that the opening and closing sequence of the second block body or the first block body is different, or so that the first block body or the second block body is not closed when the second block body or the first block body is closed,Or used to make the fluid flow to the second baffle or the first baffle that is not closed, or used to make the fluid between the second baffle or the first baffle flow into the first baffle or the second baffle that is not closed, or close the first baffle or the second baffle when there is no fluid or is close to no fluid between the second baffle or the first baffle.
12. The conductive structure according to claim 1, characterized in that: The first blocker or the second blocker is provided with a first flow path, a second flow path or a conducting part, and the first flow path, the second flow path or the conducting part is located at a different height, height difference, up-down position or up-down position difference from the other conducting part, or is used to make the fluid flow from a high place to a low place, so as to make the fluid flow to a low position when the first blocker or the second blocker at a higher position is closed, or is used to reduce or completely stop the fluid between the first blocker and the second blocker when both the first blocker and the second blocker are closed, or there is a flow space between the second blocker and the second body or the first body, or is used to allow the second body to be located between the first blocker and the second body when the first blocker and the second blocker are closed. The fluid between the second baffle body flows from the flow space or flows into the second body part, or is used to allow the fluid between the first body part and the second body part to flow from the flow space or flow into the second body part when the second body part is closed, or the second baffle body has a baffle body, or the second baffle body has a baffle body in a position that can delay or close the flow space later, or is used to close the fluid inflow or outflow of the flow space after the fluid passes through the flow space, or is used to close the flow space, or is used to reduce or reduce the fluid between the first baffle body and the second baffle body, or is used to reduce or reduce the fluid between the first body part and the second body part.