IP Library Granted Patent US 12697705
Granted Patent B2
US 12697705 · App. 18/813,428 · Granted Aug 4, 2026

Driving mechanism and nail gun having same

Inventors: Zaijun Zhu (Wenling, CN); Mingjun Yang (Wenling, CN); Hongfeng Zhou (Wenling, CN); Yunzai Zhang (Wenling, CN); Tao Yang (Wenling, CN); Haijun Li (Wenling, CN)
Assignee: TAIZHOU DAJIANG IND. CO. LTD.
B25C1/047
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Quick Facts
Patent No.
US 12697705
App. No.
18/813,428
Granted
Aug 4, 2026
Kind
B2
Abstract

A driving mechanism and a nail gun having the same. The driving mechanism comprises a striking mechanism comprising a striker for striking nails out of the nail gun along a striking direction for nailing; an energy storage mechanism coupled with the striking mechanism for providing energy to drive the striking mechanism to move along the striking direction, and storing energy when the striking mechanism is driven to move in an opposite direction of the striking direction; and a transmission mechanism coupled with a driving motor and the striking mechanism for driving the striking mechanism to move in the opposite direction of the striking direction for storing energy. The transmission mechanism comprises a transmission member configured to drive the striker to move in the opposite direction of the striking direction; and a limiting member configured to operably prevent the striker from moving in the striking direction when storing energy.

Claims (69)

1 . A driving mechanism used for a nail gun for nailing, comprising:

a striking mechanism comprising a striker for striking nails out of the nail gun along a striking direction for nailing;

an energy storage mechanism coupled with the striking mechanism for providing energy to drive the striking mechanism to move along the striking direction, and storing energy when the striking mechanism is driven to move in an opposite direction of the striking direction; and

a transmission mechanism coupled with a driving motor and the striking mechanism for driving the striking mechanism to move in the opposite direction of the striking direction for storing energy; wherein the transmission mechanism comprises:

a transmission member configured to engage with the striker and drive the striker to move in the opposite direction of the striking direction; and

a limiting member configured to engage with the transmission member to operably prevent the striker from moving in the striking direction when storing energy,

wherein the transmission member comprises:

a rotating member configured to be driven by the driving motor to rotate;

an engaging part arranged on the rotating member and configured to engage with the striker and drive the striker to move linearly in the opposite direction of the striking direction, and having a plurality of engaging pins that operably engages with the striker; and

a limiting structure being a ratchet coaxially and co-moveably attached onto the rotating member, wherein the ratchet comprises a plurality of ratchet teeth provided on an outer circumference thereof;

wherein the energy storage mechanism comprises:

an energy storage member comprising an air chamber for containing air;

an inflatable member disposed on the energy storage member and configured to inflate the air chamber;

a pressure relief member disposed on the energy storage member and configured to release pressure in the air chamber;

an inner cylinder for installing the striking mechanism therein; and

an outer cylinder arranged outside the inner cylinder, such that the air chamber is formed between the outer cylinder and the inner cylinder, wherein the outer cylinder comprises:

an outer cylinder body:

a rear cover detachably attached onto a rear end of the outer cylinder body to cover the outer cylinder body; and

a first sealing member placed at a connection between the rear cover and the outer cylinder body for forming a sealed state between the rear cover body and the outer cylinder body;

wherein a front end of the outer cylinder body is provided with a mounting portion for mounting the transmission mechanism;

wherein the mounting portion includes a recess formed for mounting the transmission member therein, and a mounting groove formed on one side of the recess for accommodating the limiting member therein;

wherein the limiting member has a positioning end rotatably mounted on the mounting groove of the mounting portion, a limiting end operably engaged with the ratchet, and a middle portion formed between the positioning end and the limiting end; and

wherein a second spring is provided between the middle portion and the mounting portion.

2 . The driving mechanism of claim 1 , wherein the limiting member has a pawl configured to be inserted between two adjacent ratchet teeth of the transmission member to engage with the plurality of ratchet teeth.

3 . The driving mechanism of claim 1 , wherein the striker comprises a plurality of tooth grooves for the engaging pins of the transmission member to be embedded, wherein a distance between two adjacent ratchet teeth of the ratchet is smaller than a groove width of the plurality of tooth grooves of the striker.

4 . The driving mechanism of claim 1 , wherein the plurality of engaging pins comprises at least one movable engaging pin, wherein the rotating member has an accommodating cavity configured to movably accommodate the at least one movable engaging pin therein; and an elastic assembly placed between the at least one movable engaging pin and the rotating member in the accommodating cavity.

5 . The driving mechanism of claim 4 , wherein the elastic assembly has a first spring with one end abutting against the rotating member, and another end abutting against the at least one movable engaging pin.

6 . The driving mechanism of claim 1 , wherein the limiting end of the limiting member passes through a hole on a side wall of the recess, extends into the recess and engages with the plurality of ratchet teeth of the ratchet installed in the recess.

7 . The driving mechanism of claim 1 , wherein the outer cylinder body comprises:

an air inlet formed the rear end of the outer cylinder body in fluidic communication with the inflatable member; and

an air inlet passage connecting the air inlet and the air chamber.

8 . The driving mechanism of claim 7 , wherein the inflatable member comprises an inflatable nozzle with an inflatable channel in a middle, having one end inserted at the air inlet, and another end extended out of the outer cylinder body and exposed on an outside environment.

9 . The driving mechanism of claim 1 , wherein the pressure relief member is disposed on one side of the front end of the outer cylinder body in fluidic communication with the air chamber, and comprises a pressure relief valve configured such that when the pressure in the air chamber reaches a preset threshold value, the pressure relief valve is automatically opened to release the pressure in the air chamber to keep the pressure in the air chamber within the preset threshold value, or when the outer cylinder body needs to be maintained, the pressure relief valve is manually opened to discharge the air inside the air chamber before disassembly.

10 . A nail gun for nailing, comprising:

the driving mechanism of claim 1 .

11 . A driving mechanism used for a nail gun for nailing, comprising:

a striking mechanism comprising a striker for striking nails out of the nail gun along a striking direction for nailing;

an energy storage mechanism coupled with the striking mechanism for providing energy to drive the striking mechanism to move along the striking direction, and storing energy when the striking mechanism is driven to move in an opposite direction of the striking direction; and

a transmission mechanism coupled with a driving motor and the striking mechanism for driving the striking mechanism to move in the opposite direction of the striking direction for storing energy; wherein the transmission mechanism comprises:

a transmission member configured to engage with the striker and drive the striker to move in the opposite direction of the striking direction; and

a limiting member configured to engage with the transmission member to operably prevent the striker from moving in the striking direction when storing energy,

wherein the transmission member comprises:

a rotating member configured to be driven by the driving motor to rotate;

an engaging part arranged on the rotating member and configured to engage with the striker and drive the striker to move linearly in the opposite direction of the striking direction, and having a plurality of engaging pins that operably engages with the striker; and

a limiting structure being a ratchet coaxially and co-moveably attached onto the rotating member, wherein the ratchet comprises a plurality of ratchet teeth provided on an outer circumference thereof;

wherein the energy storage mechanism comprises:

an energy storage member comprising an air chamber for containing air;

an inflatable member disposed on the energy storage member and configured to inflate the air chamber;

a pressure relief member disposed on the energy storage member and configured to release pressure in the air chamber;

an inner cylinder for installing the striking mechanism therein; and

an outer cylinder arranged outside the inner cylinder, such that the air chamber is formed between the outer cylinder and the inner cylinder; wherein the outer cylinder comprises:

an outer cylinder body:

a rear cover detachably attached onto a rear end of the outer cylinder body to cover the outer cylinder body; and

a first sealing member placed at a connection between the rear cover and the outer cylinder body for forming a sealed state between the rear cover body and the outer cylinder body;

wherein the striking mechanism further comprises:

a piston movably arranged inside the inner cylinder, wherein the striker is attached onto the piston so that the striker and the piston are co-movably connected to each other; and

a second sealing member disposed between an outer circumference of the piston and an inner wall of the inner cylinder;

wherein an interior of the inner cylinder is divided into a first cavity and a second cavity with variable volumes by the piston and the second sealing member, the second cavity is in fluidic communication with the air chamber and the first cavity is in fluidic communication with an outside environment;

wherein the energy storage mechanism further comprises a third sealing member disposed between an outer circumference of a front end of the inner cylinder and a inner wall of the outer cylinder body;

wherein the front end of the inner cylinder is provided with an inner through hole in fluidic communication with the first cavity; and

wherein a front end of the outer cylinder body is provided with an outer through hole aligned with and in fluidic communication with the inner through hole of the inner cylinder, thereby connecting the first cavity with an outside environment;

wherein the energy storage mechanism further comprises

a protruding ring arranged at the outer circumference of the front end of the inner cylinder distal to the third sealing member, and

a circular positioning flange arranged on one side of the protruding ring, and having at least one air hole defined on the circular positioning flange for air passing through, wherein an inner circumference of the circular positioning flange is sleeved on the outer circumference of the front end of the inner cylinder, and an outer circumference of the circular positioning flange is blocked by an end surface of the rear cover facing the outer cylinder body, so that the circular positioning flange is limited between the rear cover and the protruding ring,

wherein the third sealing member and the circular positioning flange are respectively disposed at the front end and a rear end of the inner cylinder to support the front end and the rear end of the inner cylinder.

12 . The driving mechanism of claim 11 , wherein the energy storage mechanism further comprises a buffer pad fixedly connecting the front end of the inner cylinder to the front end of the outer cylinder body, wherein the buffer pad is configured to provide blocking and buffering for the piston to prevent the piston from directly colliding with an inner surface of the outer cylinder body, wherein a middle portion of the buffer pad is provided with a through hole through which a front end of the striker is extended.

13 . The driving mechanism of claim 12 , wherein an outer circumference of the buffer pad is formed with a mounting convex ring; an inner side of the front end of the outer cylinder body is provided with a limiting surface and a limiting boss; a front end of the buffer pad abuts against the limiting surface; and the front end of the inner cylinder abuts against the mounting convex ring and the limiting boss, thereby realizing a connections between the buffer pad, the inner cylinder and the outer cylinder body.

14 . A nail gun for nailing, comprising:

the driving mechanism of claim 11 .