Ion pulse potential bracelet
By integrating a negative ion generator and a high-voltage electrode assembly into the health bracelet, therapeutic and health care functions are achieved, solving the problem that existing bracelets only have monitoring functions and improving the therapeutic and health care effects of the health bracelet.
Patent Information
- Application Number
- CN201910512422.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2019-06-13
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2039-06-13
AI Technical Summary
Existing health bracelets only have the function of monitoring health indicators and lack therapeutic and health care effects.
An ion pulse potential bracelet was designed, which generates negative ion potential on the surface of human skin through a negative ion generator and a high-voltage electrode assembly. Combined with a health indicator monitoring module, it realizes therapeutic and health care functions for the human body.
It enhances the body's immunity, improves sleep quality and heart rate balance, helps regulate blood pressure, blood sugar and blood lipids, promotes physical vitality, and has the beneficial effect of prolonging life.
Smart Images

Figure CN110522996B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to a bracelet, in particular to an ion pulse potential bracelet. BACKGROUND
[0002] The health bracelet on the market usually has the function of monitoring health indicators such as heart rate, sleep, speed, heartbeat, HRV, etc. For example, the patent application with publication number CN104055499A, CN107157444A, CN105310197A, CN106974376A, CN107582033A, CN205106600U, CN204467155U, etc. has one or more health indicator monitoring effects. Such health bracelets can only be used as monitoring devices for the health status of the body, and do not have the functions of treatment and health care.
[0003] The present application has the functions of generating negative ion potential, introducing into the human body through electrodes, promoting the health of the human body, and detecting various health indicators such as HRV and heart rate. SUMMARY
[0004] The purpose of the present application is to solve the above problems and provide an ion pulse potential bracelet with the functions of treating and caring for the human body.
[0005] To solve the above technical problems, the present application provides an ion pulse potential bracelet, which comprises: a bracelet-shaped main body (1) worn on the body of a user; a negative ion generating device (4) provided on the bracelet-shaped main body, wherein a high-voltage electrode assembly (41) and a grounding electrode assembly (42) are arranged on the side of the bracelet-shaped main body in contact with the skin of the human body; a main control module provided on the bracelet-shaped main body and connected to the negative ion generating device; a display module (2) provided on the bracelet-shaped main body and connected to the main control module; a health indicator monitoring module (3) provided on the bracelet-shaped main body and connected to the main control module; a control switch (5) provided on the bracelet-shaped main body and connected to the main control module; and a power module (7) for supplying power to the entire bracelet-shaped main body.
[0006] Unlike the existing indicator detection bracelet, waterproof communication bracelet, or comprehensive bracelet with multiple functions on the market, the ion pulse potential bracelet provided by the present application is a health and health care bracelet with ultra-micro ion input as the indicator feature, which can effectively improve the immunity, exercise balance and hypoxia tolerance of the body, and can effectively improve the sleep quality and heart rate balance, and can help adjust the blood pressure, blood sugar and blood lipid balance, so that the body is full of vitality, and is also helpful for extending the life span of human beings.
[0007] Further, the bracelet-shaped body comprises: a watch case (10) with an inclined portion (11); and a flexible watchband (13) provided with a watch buckle (12).
[0008] Further, the watchband of the bracelet-shaped body is provided with a high-voltage electrode assembly mounting portion (131), and the high-voltage electrode assembly (41) comprises: a surface metal electrode (410) mounted on the inner side of the watchband for contacting the human skin; a porous plastic sheet (411) mounted on the lower part of the high-voltage electrode, which can form a multi-point discharge effect while playing a supporting effect, and does not affect the discharge of the two electrodes while isolating the two electrodes; an inner electrode (412) mounted on the lower part of the porous plastic sheet; and the inner electrode is electrically connected to the high-voltage circuit board. The negative ion electrode is arranged on the opposite side of the wrist, and the negative ion electrode is >= 20mmX40mm, which can effectively contact the skin of the wrist; and the electrode is covered with conductive silica gel. It is worth mentioning that the high-voltage electrode assembly adopts this structure to ensure that it does not directly discharge to the human body. If this structure is lacking, the human body will easily feel the discharge effect, which will greatly reduce the use effect of the product. In addition, this structure constitutes a capacitive power storage, and does not affect the treatment effect.
[0009] Further, a breathable cloth layer is arranged between the surface metal electrode and the porous plastic sheet. In the absence of the breathable cloth layer, the discharge intensity will increase, causing the human body to feel a shock, which will easily affect the use effect.
[0010] Further, the ground electrode assembly (42) for contacting the human skin and the detection ground electrode (31) of the health index monitoring module are mounted on the lower surface of the watch case of the bracelet-shaped body.
[0011] Further, the bracelet-shaped body further comprises: a charging module (6) arranged in the bracelet-shaped body and connected to the main control module.
[0012] Further, the surface metal electrode sheet of the high-voltage electrode assembly (41), the electrode sheet of the ground electrode assembly (42), and the detection ground electrode sheet of the health index monitoring module (3) have an arc-shaped structure matching the surface of the human skin.
[0013] Further, the MCU module of the main control module comprises:
[0014] a main control chip U5;
[0015] the 1st pin, the 32nd pin, the 33rd pin, and the 46th pin of the main control chip U5 are grounded through the capacitor C28, the capacitor C27, the capacitor C25, and the capacitor C24, respectively;
[0016] a crystal oscillator X1 is connected between the 2nd pin and the 3rd pin of the main control chip U5, and the 2nd pin and the 3rd pin are grounded through the capacitor C19 and the capacitor C20, respectively;
[0017] The 4th pin and the 5th pin of the main control chip U5 are connected to the second power supply circuit;
[0018] The 6th pin of the main control chip U5 is connected to the function button circuit;
[0019] The 7th pin of the main control chip U5 is connected to the human body contact detection circuit;
[0020] The 8th pin of the main control chip U5 is connected to the human body signal detection circuit;
[0021] The 9th pin of the main control chip U5 is connected to the human body signal detection circuit;
[0022] The 10th pin of the main control chip U5 is connected to the human body signal detection circuit through the resistance R23;
[0023] The 11th pin of the main control chip U5 is connected to the third power supply circuit;
[0024] The 12th pin of the main control chip U5 is connected to the human body signal detection circuit;
[0025] The 13th pin, the 36th pin and the 48th pin of the main control chip U5 are connected to the circuit in parallel with the capacitor C21, the capacitor C22 and the capacitor C23;
[0026] The 14th pin of the main control chip U5 is connected to the FLASH through the resistance R24;
[0027] The 15th pin of the main control chip U5 is connected to the FLASH;
[0028] The 16th pin of the main control chip U5 is connected to the FLASH through the resistance R25;
[0029] The 17th pin of the main control chip U5 is connected to the FLASH;
[0030] The 18th pin of the main control chip U5 is connected to the OLED display circuit;
[0031] The 19th pin of the main control chip U5 is connected to the human body contact detection circuit through the resistance R26;
[0032] The 20th pin of the main control chip U5 is connected to the first power supply circuit through the resistance R27;
[0033] The 21st pin of the main control chip U5 is connected to the OLED display circuit;
[0034] The 22nd pin of the main control chip U5 is connected to the human body signal detection circuit;
[0035] The 23rd pin of the main control chip U5 is connected to the first power supply circuit;
[0036] The 24th pin of the main control chip U5 is connected to the detection point;
[0037] The 25-pin of the main control chip U5 is connected with a detection point;
[0038] The 26-pin of the main control chip U5 is connected with a detection point;
[0039] The 27-pin of the main control chip U5 is connected with a second power supply circuit;
[0040] The 28-pin and 29-pin of the main control chip U5 are connected with an OLED display circuit;
[0041] The 30-pin of the main control chip U5 is connected with a capacitor C29 and an inductor L2, the other end of the capacitor C29 is connected with the ground, and the other end of the inductor is connected with the ground through a capacitor C26;
[0042] The 31-pin, 45-pin, 49-pin and 44-pin of the main control chip U5 are connected with the ground;
[0043] The 34-pin and 35-pin of the main control chip U5 are connected with a crystal oscillator Y, the 1-pin and 2-pin of the crystal oscillator Y are connected with the ground in parallel through a capacitor C31, and the 3-pin and 4-pin of the crystal oscillator Y are connected with the ground in parallel through a capacitor C32;
[0044] The 37-pin of the main control chip U5 is connected with a vibrator circuit;
[0045] The 38-pin of the main control chip U5 is connected with a first power supply circuit;
[0046] The 39-pin of the main control chip U5 is connected with a detection point;
[0047] The 40-pin of the main control chip U5 is connected with a first power supply circuit;
[0048] The 41-pin of the main control chip U5 is connected with a second power supply circuit through a resistor R22 and a resistor R20;
[0049] The 42-pin of the main control chip U5 is connected with a first power supply circuit;
[0050] The 43-pin of the main control chip U5 is connected with an excitation signal production circuit through a resistor R21;
[0051] The 47-pin of the main control chip U5 is a null pin.
[0052] Further, the power supply module comprises a first power supply circuit, a second power supply circuit and a third power supply circuit;
[0053] The first power supply circuit comprises:
[0054] A control chip U1;
[0055] The 1-pin and 7-pin of the control chip U1 are connected with the ground;
[0056] The 2-pin of the control chip U1 is connected with a 3.3V power supply through a resistor R4, and is connected with an MCU module.
[0057] Pin 3 of control chip U1 is connected to capacitors C2 and C3 in parallel. The other ends of capacitors C2 and C3 are grounded. Pin 3 of control chip U1 is also connected to resistor R9. The other end of resistor R9 is connected to resistor R12, capacitor C4, and MCU module. The other end of resistor R12 is grounded, and the other end of capacitor C4 is grounded. Pin 3 of control chip U1 is also connected to control chip U2 and fast resettable fuse resistor F2. The fast resettable fuse resistor F2 is connected to connector J4. Pin 1 of control chip U2 is connected to pin 3 of control chip U1. Pin 2 of control chip U2 is grounded. Pin 3 of control chip U2 is connected to pin 1 through resistor R13. Capacitors C5 and C6 are connected in parallel between pins 1 and 2 of control chip U2. Capacitors C7 and C8 are connected between pins 4 and 5 of control chip U2.
[0058] Pin 4 of control chip U1 is connected to connector J3. Connector J1 is connected to pin 4 of control chip U1 through diode D1. Pin 4 of control chip U1 is connected to capacitor C1 with one end grounded. Pin 4 of control chip U1 is connected to resistor R2. Resistor R2 is connected to resistor R3. Transistor Q1 is connected between resistor R2 and resistor R3. Transistor Q1 is connected to the MCU module.
[0059] Resistors R5 and R6 are connected between pin 5 and pin 4 of control chip U1, and pin 5 of control chip U1 is connected to resistor R10, which is grounded on the other end.
[0060] Pin 6 of the control chip U1 is connected to resistors R7 and R8, the other end of which is grounded.
[0061] The second power supply circuit of the power module includes:
[0062] Control chip U3;
[0063] An inductor L1 is connected between pins 1 and 6 of the control chip U3;
[0064] Pin 2 of the control chip U3 is connected to connector J6;
[0065] Pins 3 and 5 of the control chip U3 are connected to connector J5, and connector J5 is connected to the MCU module.
[0066] The third power supply circuit of the power module includes:
[0067] Control chip U4;
[0068] A capacitor C18 is connected between pins 1 and 2 of the control chip U4;
[0069] Pin 3 of the control chip U4 is connected to the MCU module, and a resistor R19 is connected between pins 2 and 3 of the control chip U4.
[0070] The 4th pin and the 5th pin of the control chip U4 are connected with the capacitor C15, the capacitor C16 and the capacitor C17, the 4th pin of the control chip U4 is connected with the inductor FB5, and the 5th pin of the control chip U4 is connected with the inductor FB4.
[0071] Further, the MCU module of the main control module is connected to the negative pressure boosting circuit of the negative ion generating device through an excitation signal generating circuit;
[0072] The excitation signal generating circuit comprises a control chip U8 and a control chip U6.
[0073] The 1st pin of the control chip U8 is connected to a 3.3V power supply through an inductor FB6, and the 1st pin of the control chip U8 is connected with a capacitor C41 with the other end grounded, and the 3.3V power supply connection end of the inductor FB6 is connected with a capacitor C45 with the other end grounded.
[0074] The 2nd pin and the 5th pin of the control chip U8 are connected with a capacitor C44, and the 5th pin of the control chip U8 is connected to a 5V power supply.
[0075] The 3rd pin of the control chip U8 is grounded.
[0076] The 4th pin of the control chip U8 is connected with a resistor R42, the resistor R42 is connected with a resistor R39, a resistor R40 and a resistor R38 and a capacitor C40 in parallel, the resistor R39 and the resistor R40 are connected with a capacitor C42 with the other end grounded, and the resistor R40 is connected with a capacitor C43 and a capacitor C46 with the other end grounded.
[0077] The 6th pin of the control chip U8 is connected with a resistor R41, the resistor R41 and the resistor R42 are connected with a resistor R43, and the resistor R41 is connected to the MCU module.
[0078] The 1st pin of the control chip U6 is connected with a resistor R30 and a resistor R31, the resistor R31 is connected with a resistor R32 and a linear comparator U7, the resistor R32 is connected to the signal output end of the linear comparator U7, the 5th pin of the linear comparator U7 is connected to a 5V power supply, the 2nd pin of the linear comparator U7 is grounded, the 4th pin of the linear comparator U7 is connected with a resistor R36, the resistor R36 is connected to a 3.3V power supply, the 4th pin of the linear comparator U7 is connected with a capacitor C38 and a capacitor C37 with the other end grounded, and a resistor R37, the signal output end of the linear comparator U7 is connected with a resistor R34, and the resistor R34 is connected to the MCU module.
[0079] The human body physiological signal detection circuit connected to the MCU module comprises a control chip U9.
[0080] The 1st pin, the 4th pin, the 5th pin and the 6th pin of the control chip U9 are connected to the MCU module.
[0081] The 2-pin and 3-pin of the control chip U9 are connected with the connector J7 and the connector J8 respectively, the 2-pin of the control chip U9 is connected with the bidirectional symmetrical single-line ESD protection diode D4, and the 3-pin of the control chip U9 is connected with the bidirectional symmetrical single-line ESD protection diode D5;
[0082] The 7-pin of the control chip U9 is grounded;
[0083] The 8-pin of the control chip U9 is connected with the inductor FB8 and the triode Q2, the triode Q2 is connected with the 3.3V power supply and the MCU module, and the triode Q2 and the inductor FB8 are provided with the resistor R46 and the resistor R45 which are connected with the 1-pin and the 6-pin of the control chip U9 respectively;
[0084] The vibrator circuit connected with the MCU module comprises the triode Q3, the 2-pin of the triode Q3 is grounded, the 1-pin is connected with the MCU module, the 3-pin is connected with the diode D6 and the motor, and the diode and the motor are connected with the 3.3V power supply through the inductor FB9;
[0085] The MCU module is connected with the Flash circuit, the OLED display circuit and the function button circuit.
[0086] The effect after wearing the application is as follows:
[0087] 1, after wearing, the blood PH value is alkaline. The continuous input of the ultra-micro ionic flow (e ˉ ) in the blood flow continuously combines with the positive ions (active oxygen) in the blood, so that the PH value of the blood is stabilized at about 7.40 (the golden PH value of the human body). The lactic acid and other acidic substances in the blood are decomposed into other small molecular substances in the golden alkaline PH value environment.
[0088] 2, significantly improve the muscle peripheral blood circulation. The muscle peripheral blood circulation is of great significance to the health of the body. Once the peripheral blood circulation is blocked, various inflammatory reactions will occur: such as edema, pain, fever, ulceration, etc. Even due to the blockage of the peripheral blood circulation, important tissues and organs may appear pathological changes. Over a long period of time, the tissues and organs may appear withering and exhaustion, and even death. The continuous input of the ultra-micro ionic flow rapidly increases the content of the ultra-micro ion (e-) in the blood, neutralizes the positive ions (active oxygen) in the blood, restores the same electric potential repulsion of the carboxyl of the sialic acid on the surface of the red blood cells, promotes the arrangement of the red blood cells to restore normal order, and the whole peripheral blood flow speed naturally increases.
[0089] 3. Scavenging free radicals, effectively reversing the body aging. Free radicals contain unpaired electrons, so it is very unstable. Oxygen molecules are prone to form free radicals, we call all oxygen-containing free radicals as reactive oxygen species (ROS). The existence of a large number of active oxygen leads to a large number of tissue cells being deprived of electrons; cells deprived of electrons, that is, oxidized, become very weak, and the body fluid begins to be acidic. In acidic body fluid, blood flow is slow and easy to stick, cell metabolism is reduced, and a large amount of lactic acid and waste cannot be discharged, leading to a decrease in cell activity. Therefore, free radicals have become the first cause of many difficult and complicated diseases. The continuous input of ultramicro ionic current rapidly increases the content of ultramicro ions (e-) in the blood, rapidly neutralizes the positive ions (reactive oxygen) in the blood, enhances the reducing property of cells, and makes cells full of vitality, and the natural body's antioxidant capacity is enhanced.
[0090] 4. Significantly regulating the autonomic nervous regulation of the body, inhibiting sympathetic nerve excitement and improving parasympathetic nerve excitement. Imbalance of autonomic nervous regulation will lead to sympathetic nerve excitement and negative sympathetic nerve inhibition. Continuous excitement of sympathetic nerves will cause an increase in lactic acid and other acid substances in the blood, and a decrease in the ability of peripheral circulation to supply blood and oxygen, which is prone to cause idiopathic symptoms such as rapid heart rate, myocardial ischemia, and circulatory hyperactivity, leading to delayed peripheral nerve information transmission and strong fatigue body feeling. The continuous input of ultramicro ionic current can significantly regulate the autonomic nervous regulation of the eye, inhibit sympathetic nerve excitement, and improve parasympathetic nerve excitement.
[0091] 5. Activating immunity and assisting in the treatment of body inflammation and lesions caused by various factors. The continuous input of ultramicro ionic current makes the blood PH value alkaline, improves the speed of peripheral blood flow, regulates the autonomic nervous excitement, and also regulates the activity of T cells and NK cells, which is of great significance to improve the immunity of the whole body. The ultramicro ionic current not only scavenes free radicals in the body, but also has an auxiliary treatment effect on inflammation and lesions of tissues and organs, especially has a good benefit for improving immunity during radiotherapy and chemotherapy of cancer. It has a good auxiliary gain effect on autoimmune diseases such as cancer, arteriosclerosis, diabetes, emphysema, gastric ulcer, atopic dermatitis, bronchial asthma, arthritis, cataract, nephritis, and the like. BRIEF DESCRIPTION OF DRAWINGS
[0092] Figure 1 It is a front view of the ion pulse potential bracelet;
[0093] Figure 2 It is a rear view of the ion pulse potential bracelet;
[0094] Figure 3 It is a left view of the ion pulse potential bracelet;
[0095] Figure 4 It is a right view of the ion pulse potential bracelet;
[0096] Figure 5 Figure 1 is a top view of the ion pulse potential bracelet;
[0097] Figure 6 Figure 2 is a bottom view of the ion pulse potential bracelet;
[0098] Figure 7 Figure 3 is a perspective view of the ion pulse potential bracelet; Figure 1
[0099] Figure 8 Figure 4 is a perspective view of the ion pulse potential bracelet; Figure 2
[0100] Figure 9 Figure 5 is a sectional view of the ion pulse potential bracelet;
[0101] Figure 10 Figure 6 is a principle block diagram of the ion pulse potential bracelet;
[0102] Figure 11 Figure 7 is a detailed circuit diagram of the MCU module in the main control module;
[0103] Figure 12 Figure 8 is a detailed circuit diagram of the first power supply circuit in the power module;
[0104] Figure 13 Figure 9 is a detailed circuit diagram of the second power supply circuit in the power module;
[0105] Figure 14 Figure 10 is a detailed circuit diagram of the third power supply circuit in the power module;
[0106] Figure 15 Figure 11 is a detailed circuit diagram of the excitation signal generation circuit;
[0107] Figure 16 Figure 12 is a detailed circuit diagram of the human physiological signal detection circuit;
[0108] Figure 17 Figure 13 is a detailed circuit diagram of the vibrator circuit;
[0109] Figure 18 Figure 14 is a detailed circuit diagram of the Flash circuit;
[0110] Figure 19 Figure 15 is a detailed circuit diagram of the OLED display circuit;
[0111] Figure 20 Figure 16 is a detailed circuit diagram of the human body contact detection circuit;
[0112] Figure 21 Figure 17 is a detailed circuit diagram of the function button circuit;
[0113] Figure 22 Figure 18 is a detailed circuit diagram of the negative pressure boost circuit. DETAILED DESCRIPTION
[0114] In order to make the technical means, creative features, purposes and effects of the present application easy to understand, the present application is further described below in combination with specific embodiments.
[0115] The embodiment of the present application provides an ion pulse potential bracelet, referring to Figures 1-9 , which comprises a bracelet-shaped main body 1, a display module 2, a health index monitoring module 3, a negative ion generating device 4, a control switch 5 and a power module 7.
[0116] Referring to Figure 7 , the bracelet-shaped main body 1 worn on the body of a user comprises a watch case 10 with an inclined part 11, the watch case is integrally formed of plastic, for example, ABS plastic, the width of the inclined part is substantially the same as that of the square watch case, the inclined part can expand the built-in space of the watch case, for example, for placing a polymer lithium battery, and the inclined part can also be arranged with a human body detection electrode of the health index monitoring module adjacent to the square watch case, at the same time, the deflection space formed by the inclined part and the square watch case can effectively contact the human hand, prevent the ion pulse potential bracelet from being deflected, and also serve as an effective support structure. The flexible watchband 13 provided with a watch buckle 12 is flat, the watchband is connected by using the watch buckle, so the watchband is divided into two sections, one section is connected with the inclined part, and the other section is connected with the square watch case away from the inclined part, the watch buckle is arranged at the connection position of the two sections, the material of the watchband is a flexible material, including but not limited to TPU material, so as to ensure softness and comfortable wearing.
[0117] In combination with Figure 7 and Figure 8As shown, the negative ion generating device 4 arranged on the bracelet-shaped main body, the high-voltage electrode assembly 41 and the grounding electrode assembly 42 are arranged on the side of the bracelet-shaped main body in contact with the human skin, i.e. the negative ion electrode is arranged on the opposite side of the wrist, and the negative ion electrode is >= 20mm x 40mm to effectively contact the skin of the wrist, and the electrode is covered with conductive silica gel. The watchband of the bracelet-shaped main body has a high-voltage electrode assembly mounting portion 131, which is a convex structure (also referred to as a lower convex structure) formed on the watchband, and the high-voltage electrode assembly 41 comprises: a surface metal electrode 410 mounted on the inner side of the watchband for contact with the human skin, for example, a stainless steel sheet with a thickness of about 0.3mm, which can prevent sweat and corrosion while having the function of an electrode; a porous plastic sheet 411 mounted on the lower part of the high-voltage electrode, which can support the electrode and form a multi-point discharge effect, and does not affect the discharge of the two electrodes while isolating the two electrodes (surface metal electrode and inner electrode), and the thickness of the porous plastic sheet is about 2mm. An inner electrode 412 is mounted on the lower part of the porous plastic sheet, which is made of a stainless steel sheet, and the distance between the inner electrode and the surface metal electrode is controlled within the range of 2-3mm, and the inner electrode is electrically connected to the high-voltage circuit board. The negative ion electrode is arranged on the opposite side of the wrist, and the negative ion electrode is >= 20mm x 40mm to effectively contact the skin of the wrist; the electrode is covered with conductive silica gel. It is worth mentioning that the high-voltage electrode assembly adopts this structure to ensure that it does not directly discharge to the human body, and if this structure is lacking, the human body will easily feel the discharge effect, which will greatly reduce the use effect of the product. In addition, this structure constitutes a capacitive power storage without affecting the treatment effect. As a further improvement, a breathable cloth layer, such as non-woven fabric or cotton cloth, is arranged between the surface metal electrode and the porous plastic sheet. In the absence of the breathable cloth layer, the discharge intensity will increase, causing the human body to feel a shock, which will easily affect the use effect. It is worth mentioning that the high-voltage electrode assembly 41 can be modularly combined with the convex structure formed on the watchband (the convex structure is provided with a module mounting groove structure, and the high-voltage electrode assembly is combined and mounted in the groove structure by using an adhesive, and the watchband provided with the convex structure is pre-buried with a wire structure to facilitate the connection of the main control module and the high-voltage electrode assembly), and the grounding electrode assembly 42 in contact with the human skin and the detection grounding electrode 31 of the health indicator monitoring module are mounted on the lower surface of the watchcase of the bracelet-shaped main body. The grounding electrode assembly 42 and the high-voltage electrode assembly 41 are arranged on the opposite side of the wrist to effectively contact the skin of the wrist. The detection grounding electrode 31 is used in cooperation with the human detection electrode.
[0118] See Figure 9A main control module is arranged on the bracelet-shaped main body and connected to the negative ion generating device. Specifically, a control circuit board 8 of the main control module is arranged in the watch case, and a display module 2 above the control circuit board is arranged on the watch case and connected to the control circuit board of the main control module. The display module here includes but is not limited to an OLED screen. A power module 7 for supplying power to the entire bracelet-shaped main body is installed in the inclined part of the watch case. The power module here uses a polymer lithium battery as the battery.
[0119] A health index monitoring module 3 is arranged on the bracelet-shaped main body and connected to the main control module. The health index monitoring module here can be provided with corresponding monitoring components as needed. In this embodiment, the heart rate HR and heart rate variability HRV indicators are monitored, and a human body detection electrode is installed on the watch case, and a detection grounding electrode matched therewith is arranged on the lower surface of the watch case. Of course, other detection components can be provided as needed to expand the detection range of the health index.
[0120] Referring to Figure 8 A control switch 5 is arranged on the bracelet-shaped main body and connected to the main control module. The control switch is arranged on the side wall of the watch case, which is convenient for operation and connection with the control circuit board.
[0121] To improve the use effect of the ion pulse potential bracelet, it further includes a charging module 6 arranged on the bracelet-shaped main body and connected to the main control module. In Figure 8 A magnetic charging interface is shown in the figure.
[0122] From Figure 7 and Figure 8 It can be seen that the surface metal electrode sheet of the high-voltage electrode assembly 41, the electrode sheet of the grounding electrode assembly 42, and the detection grounding electrode sheet of the health index monitoring module 3 have an arc-shaped structure matching the surface of the human body. While increasing the contact effect of the electrode sheet with the human body skin, the wearing comfort is also greatly improved.
[0123] Referring to Figure 10 The figure is a principle block diagram of the ion pulse potential bracelet. In the figure, the ion pulse potential bracelet includes an MCU module, an OLED circuit, a Flash circuit, a human body detection contact circuit, a function button circuit, a vibrator circuit, and a human body physiological signal detection circuit arranged on the control circuit board. Among them, the OLED circuit, the Flash circuit, the human body detection contact circuit, the function button circuit, the vibrator circuit, and the human body physiological signal detection circuit are all connected to the MCU module.
[0124] Referring to Figure 11The MCU module of the main control module comprises a main control chip U5, such as an nRF52832-QFAA-R7 chip; the 1st pin, the 32nd pin, the 33rd pin and the 46th pin of the main control chip U5 are grounded through the capacitor C28, the capacitor C27, the capacitor C25 and the capacitor C24 respectively; the 2nd pin and the 3rd pin of the main control chip U5 are connected with the crystal oscillator X1, and the 2nd pin and the 3rd pin are grounded through the capacitor C19 and the capacitor C20 respectively; the 4th pin and the 5th pin of the main control chip U5 are connected to the second power supply circuit (which will be described in detail below) of the power supply; the 6th pin of the main control chip U5 is connected to the function button circuit (which will be described in detail below); the 7th pin of the main control chip U5 is connected to the human body contact detection circuit (which will be described in detail below); the 8th pin of the main control chip U5 is connected to the human body signal detection circuit (which will be described in detail below); the 9th pin of the main control chip U5 is connected to the human body signal detection circuit; the 10th pin of the main control chip U5 is connected to the human body signal detection circuit through the resistor R23; the 11th pin of the main control chip U5 is connected to the third power supply circuit (which will be described in detail below) of the power supply; the 12th pin of the main control chip U5 is connected to the human body signal detection circuit; the 13th pin, the 36th pin and the 48th pin of the main control chip U5 are connected to the circuit in parallel with the capacitor C21, the capacitor C22 and the capacitor C23, and the 13th pin, the 36th pin and the 48th pin are connected to the 3.3V power supply; the 14th pin of the main control chip U5 is connected to the FLASH (Flash circuit, which will be described in detail below) through the resistor R24; the 15th pin of the main control chip U5 is connected to the FLASH; the 16th pin of the main control chip U5 is connected to the FLASH through the resistor R25; the 17th pin of the main control chip U5 is connected to the FLASH; the 18th pin of the main control chip U5 is connected to the OLED display circuit; the 19th pin of the main control chip U5 is connected to the human body contact detection circuit through the resistor R26; the 20th pin of the main control chip U5 is connected to the first power supply circuit through the resistor R27; the 21st pin of the main control chip U5 is connected to the OLED display circuit; the 22nd pin of the main control chip U5 is connected to the human body signal detection circuit; the 23rd pin of the main control chip U5 is connected to the first power supply circuit; the 24th pin of the main control chip U5 is connected to the detection point; the 25th pin of the main control chip U5 is connected to the detection point; the 26th pin of the main control chip U5 is connected to the detection point; and the 27th pin of the main control chip U5 is connected to the second power supply circuit.The 28th pin and the 29th pin of the main control chip U5 are connected with the OLED display circuit, the 30th pin of the main control chip U5 is connected with the capacitor C29 and the inductor L2, the other end of the capacitor C29 is connected with the ground, the other end of the inductor is connected with the ground through the capacitor C26, the 31st pin, the 45th pin, the 49th pin and the 44th pin of the main control chip U5 are connected with the ground, the 34th pin and the 35th pin of the main control chip U5 are connected with the crystal oscillator Y, the 1st pin and the 2nd pin of the crystal oscillator Y are connected with the ground in parallel through the capacitor C31, the 3rd pin and the 4th pin of the crystal oscillator Y are connected with the ground in parallel through the capacitor C32, the 37th pin of the main control chip U5 is connected with the vibrator circuit, the 38th pin of the main control chip U5 is connected with the first power supply circuit, the 39th pin of the main control chip U5 is connected with the detection point, the 40th pin of the main control chip U5 is connected with the first power supply circuit, the 41st pin of the main control chip U5 is connected with the second power supply circuit through the resistor R22 and the resistor R20, the 42nd pin of the main control chip U5 is connected with the first power supply circuit, the 43rd pin of the main control chip U5 is connected with the excitation signal production circuit through the resistor R21, and the 47th pin of the main control chip U5 is a null pin.
[0125] The power supply module comprises a first power supply circuit, a second power supply circuit and a third power supply circuit. Figure 12The first power supply circuit comprises: a control chip U1, such as an LTC4069EDC#TRMPBF chip, the 1 pin and the 7 pin of the control chip U1 are grounded, the 2 pin of the control chip U1 is connected to a 3.3V power supply through a resistor R4, the 2 pin of the control chip U1 is connected to an MCU module, the 3 pin of the control chip U1 is connected to a capacitor C2 and a capacitor C3 in parallel, the other end of the capacitor C2 and the capacitor C3 in parallel is grounded, the 3 pin of the control chip U1 is also connected to a resistor R9, the other end of the resistor R9 is connected to a resistor R12, a capacitor C4 and an MCU module, the other end of the resistor R12 is grounded, the other end of the capacitor C4 is grounded, the 3 pin of the control chip U1 is also connected to a control chip U2 (such as an ADP162AUJZ-3.3-R7 chip) and a fast self-resetting fuse resistor F2, the fast self-resetting fuse resistor F2 is connected to a connector J4
SM02B-SURS-TF(LF)(SN)
[0126] Referring to Figure 13The second power supply circuit of the power module comprises a control chip U3, such as TLV61046ADBVT chip, an inductor L1 and a 3.6V power supply connected between the 1th pin and the 6th pin of the control chip U3, the 2nd pin of the control chip U3 connected to the connector J6 (M191), the 3rd pin and the 5th pin of the control chip U3 connected to the connector J5
DF23C-10DS-0.5V (53)
[0127] Referring to Figure 14 The third power supply circuit of the power module comprises a control chip U4, such as ADP162AUJZ-3.3-R7 chip, a capacitor C18 connected between the 1st pin and the 2nd pin of the control chip U4, a 3.6V power supply connected to the 1st pin, a 3rd pin of the control chip U4 connected to the MCU module, a resistor R19 connected between the 2nd pin and the 3rd pin of the control chip U4, a capacitor C15, a capacitor C16 and a capacitor C17 connected between the 4th pin and the 5th pin of the control chip U4, a 3.3V power supply connected to the 5th pin, an inductor FB5 connected to the 4th pin of the control chip U4, and an inductor FB4 connected to the 5th pin of the control chip U4.
[0128] The MCU module of the main control module is connected to the negative pressure boosting circuit of the negative ion generating device through the excitation signal generation circuit (i.e. Figure 10 V-F module); referring to Figure 15The excitation signal generating circuit comprises: a control chip U8 (for example, a TS5A3159ADBVR chip), a control chip U6 (for example, an AD654JRZ chip), the pin 1 of the control chip U8 is connected to a 3.3V power supply through an inductor FB6, the pin 1 of the control chip U8 is connected with a capacitor C41 having the other end grounded, the 3.3V power supply connection end of the inductor FB6 is connected with a capacitor C45 having the other end grounded, the pin 2 and the pin 5 of the control chip U8 are connected with a capacitor C44, the pin 5 of the control chip U8 is connected to a 5V power supply, the pin 3 of the control chip U8 is grounded, the pin 4 of the control chip U8 is connected with a resistor R42, the resistor R42 is connected with a resistor R39, a resistor R40 and a resistor R38 and a capacitor C40 connected in parallel, the resistor R39 and the resistor R40 are connected with a capacitor C42 having the other end grounded, the resistor R40 is connected with a capacitor C43 and a capacitor C46 having the other end grounded at the resistor R39 side, the pin 6 of the control chip U8 is connected with a resistor R41, the resistor R41 and the resistor R42 are connected with a resistor R43, and the resistor R41 is connected to an MCU module. The pin 1 of the control chip U6 is connected with a resistor R30 and a resistor R31, the resistor R31 is connected with a resistor R32 and a linear comparator U7, the resistor R32 is connected to the signal output end (pin 1) of the linear comparator U7, the pin 5 of the linear comparator U7 is connected to a 5V power supply, the pin 2 of the linear comparator U7 is grounded, the pin 4 of the linear comparator U7 is connected with a resistor R36, the resistor R36 is connected to a 3.3V power supply, the pin 4 of the linear comparator U7 is connected with a capacitor C38, a capacitor C37 and a resistor R37 having the other end grounded, the signal output end of the linear comparator U7 is connected with a resistor R34, and the resistor R34 is connected to an MCU module.
[0129] Referring to Figure 16 The human physiological signal detection circuit connected to the MCU module comprises: a control chip U9, for example, a BMD101 chip, the pin 1, the pin 4, the pin 5 and the pin 6 of the control chip U9 are connected to the MCU module, the pin 2 and the pin 3 of the control chip U9 are respectively connected to a connector J7 (M191) and a connector J8 (M191), the pin 2 of the control chip U9 is connected with a bidirectional symmetrical single-line ESD protection diode D4, the pin 3 of the control chip U9 is connected with a bidirectional symmetrical single-line ESD protection diode D5, the pin 7 of the control chip U9 is grounded, the pin 8 of the control chip U9 is connected with an inductor FB8 and a triode Q2 (RZM001P02T2L), the triode Q2 is connected to a 3.3V power supply and the MCU module, and the triode Q2 and the inductor FB8 are provided with a resistor R46 and a resistor R45 connected to the pin 1 and the pin 6 of the control chip U9 respectively.
[0130] Referring to Figure 17The vibrator circuit connected with the MCU module includes: a triode Q3 (BSS138LT3G), the 2-pin of the triode Q3 is grounded, the 1-pin is connected with the MCU module, the 3-pin is connected with a diode D6 and a motor, the diode and the motor are connected with a 3.3V power supply through an inductor FB9.
[0131] Referring to Figure 20 , the human body contact detection circuit includes: a control chip U12 (for example, an SD8223LC chip), a control chip U13 (for example, a TS5A3166DCKR chip); the 1-pin of the control chip U12 is connected with the MCU module through a resistor R58; the 2-pin of the control chip U12 is grounded; the 3-pin of the control chip U12 is connected with the 1-pin of the control chip U13, and a capacitor C67 is connected between the 3-pin and the 2-pin of the control chip U12; the 4-pin of the control chip U12 is grounded through a resistor R60; the 5-pin of the control chip U12 is connected with a 3.3V power supply, and the 5-pin of the control chip U12 is grounded through a capacitor C64; the 6-pin of the control chip U12 is grounded through a resistor R59; the 2-pin of the control chip U13 is connected with a connector J10 (M440), and the 2-pin of the control chip U13 is connected with a diode D7 grounded at one end; the 3-pin of the control chip U13 is grounded; the 4-pin of the control chip U13 is connected with the MCU module; the 5-pin of the control chip U13 is connected with a 3.3V power supply, and the 5-pin of the control chip U13 is grounded through a capacitor C65.
[0132] The MCU module is connected with a Flash circuit (see Figure 18 , the control chip U10 of which is an MX25R1635FZUIH0 chip), an OLED display circuit (see Figure 19 ), and a function button circuit (see Figure 21 , which includes a tactile switch S1 connected with a 3.3V power supply, the tactile switch S1 is connected to the MCU module through a resistor R62, and a capacitor C66 grounded at one end is further connected to the MCU module at one end of the resistor R62), all of the above circuits can be realized by using the prior art.
[0133] In Figure 22The negative pressure booster circuit (high voltage circuit board) of the negative ion generating device is shown in the middle. The negative pressure booster circuit includes: transformer U1 (AS-313T), 1 pin of which is connected to the second inductor L2, the third resistor R3, the second inductor L2 is connected to the 1 pin of the first connector J1 through the first patch inductor FB1, and the second inductor L2 is also connected with the sixth capacitor C6, the fifth capacitor C5, the third capacitor C3, the first capacitor C1 and the 5V power supply with the other end grounded. The second resistor R2 connected to the second inductor L2 is grounded through the fourth diode D4. The second patch inductor FB2 connected to the second inductor L1 is also connected with the tenth capacitor C10 and the 5V power supply. The 5V power supply connection end of the second patch inductor FB2 is grounded through the twelfth capacitor C12. Both ends of the first patch inductor FB1 are connected with the twenty-fifth capacitor C25 and the twenty-fourth capacitor C24. The third patch inductor FB3 is connected between the twenty-fifth capacitor C25 and the twenty-fourth capacitor. The twenty-fourth capacitor C24 is connected in parallel with the third diode D3 connected to the transformer U1. The 2 pin of the transformer U1 is connected to the package U2 (low dropout linear regulator) through the third resistor R3. The third capacitor C15 is connected between the 3 pin and the 2 pin of the package U2. The 1 pin of the package U2 is connected to the first connector J1. The 2 pin of the transformer U2 is connected to the eighteenth resistor R18 and the seventeenth resistor R17. The eighteenth resistor R18 is connected in parallel with the nineteenth resistor R19. The other end of the eighteenth resistor R18 is grounded. The seventeenth resistor R17 is connected with the sixteenth resistor R16 and the comparator U3A. The sixteenth resistor R16 is connected to the 5V power supply. The 3 pin and the 4 pin of the comparator U3A are grounded. The ground end of the comparator U3A is connected with the eighteenth capacitor C18. The 8 pin of the comparator U3A is connected with the fifteenth resistor R15 and the seventeenth capacitor C17. The other end of the seventeenth capacitor C17 is grounded. The fifteenth resistor R15 is connected to the 5V power supply. The 2 pin and the 1 pin of the comparator U3A are connected in parallel with the sixteenth capacitor C16 and the twelfth resistor R12. The 1 pin of the comparator U3A is connected to the 5 pin of the comparator U3B. The 1 pin of the comparator U3A and the 5 pin of the comparator U3B are connected with the twenty-third resistor R23, the fifth diode D5, the twenty-fourth resistor R24 connected in parallel with the other end grounded, the twenty-first capacitor C21 and the twenty-second capacitor C22. The 6 pin and the 7 pin of the comparator U3B are connected in parallel with the twenty-first resistor R21 and the nineteenth capacitor C19. The 7 pin of the comparator U3B is connected to the first connector J1
DF23C-10DS-0.5V(53)
[0134] The negative ion generator can be the following patented product applied for by our company: patent number 201220446331.4, titled "A Negative Ion Generator".
[0135] The effects of wearing this invention are as follows:
[0136] 1. After wearing, the blood pH becomes alkaline. A continuous infusion of ultrafine ions (e) into the bloodstream... ˉ This process continuously combines with positive ions (reactive oxygen species) in the blood, stabilizing the blood's pH value at around 7.40 (the golden pH value for the human body). Lactic acid and other acidic substances in the blood are broken down into smaller molecules in this alkaline pH environment.
[0137] 2. Significantly improves peripheral blood circulation. Peripheral blood circulation is crucial for health. Blockage in peripheral blood circulation can lead to various inflammatory reactions, such as edema, pain, fever, and ulceration. Furthermore, it can cause disease in vital organs and tissues. Over time, this can result in organ failure and even death. The continuous infusion of ultrafine ions rapidly increases the content of ultrafine ions (e-) in the blood, neutralizing positive ions (reactive oxygen species) and restoring the like-signal repulsion of the carboxyl groups of sialic acid on the surface of red blood cells. This promotes the normal and orderly arrangement of red blood cells, naturally accelerating peripheral blood flow.
[0138] 3. Eliminates free radicals, effectively reversing aging. Free radicals contain unpaired electrons, making them extremely unstable. Oxygen molecules readily form free radicals; we collectively refer to all oxygen-containing free radicals as reactive oxygen species (ROS). The presence of large amounts of ROS leads to the loss of electrons from numerous tissue cells; cells losing electrons are oxidized, becoming very weak, and the body fluids begin to become acidic. In acidic body fluids, blood flow is slow and viscous, cell metabolism decreases, and large amounts of lactic acid and waste cannot be excreted, leading to decreased cell activity. Therefore, free radicals have become the primary cause of the onset and worsening of many intractable diseases. Continuously supplied ultrafine ion flow rapidly increases the content of ultrafine ions (e-) in the blood, quickly neutralizing positive ions (ROS) in the blood, enhancing the reducing power of cells, revitalizing cells, and naturally enhancing the body's antioxidant capacity.
[0139] 4. Significantly regulates the body's autonomic nervous system, inhibiting sympathetic nerve excitation and increasing parasympathetic nerve excitation. Imbalance in autonomic nervous system regulation leads to sympathetic nerve excitation and negative sympathetic nerve inhibition. Sustained sympathetic nerve excitation increases acidic substances such as lactic acid in the blood and reduces peripheral circulation's blood and oxygen supply capacity, easily causing idiopathic symptoms such as tachycardia, myocardial ischemia, and hypercirculation, resulting in delayed peripheral nerve information transmission and increased fatigue. Continuously supplied ultrafine ion currents can significantly regulate the autonomic nervous system of the eye, inhibiting sympathetic nerve excitation and increasing parasympathetic nerve excitation.
[0140] 5. Activates the immune system and assists in the treatment of inflammation and lesions caused by various factors. The continuous infusion of ultra-micro ion current makes the blood pH alkaline, increases peripheral blood flow velocity, regulates the excitability of the autonomic nervous system, and also regulates the activity of T cells and NK cells, which is of great significance for improving the body's overall immunity. Ultra-micro ion current not only eliminates free radicals in the body, but also has an adjunctive therapeutic effect on inflammation and lesions of tissues and organs, especially beneficial for boosting immunity during cancer radiotherapy and chemotherapy. It has a good adjunctive effect on cancer, arteriosclerosis, diabetes, emphysema, gastric ulcers, atopic dermatitis, bronchial asthma, as well as arthritis, cataracts, nephritis and other autoimmune diseases.
[0141] The data after wearing the ion pulse potential bracelet of this invention are as follows:
[0142] 1. Increased blood flow: After wearing the device, venous oxygen saturation increased from 55% to 80%. (%)
[0143] 2. Blood sugar reduction: After wearing it for 15 minutes, the blood sugar level dropped from 102 to 82 (mg / dl).
[0144] 3. pH value, neutralizing lactic acid: After wearing for 10 minutes, serum lactic acid concentration decreased from 12 to 8 (mg / dl).
[0145] 4. Blood sugar reduction: Serum insulin level increased from 9.4 to 19. (μU / ml) after 15 minutes of wearing.
[0146] 5. Blood flow acceleration: Blood flow increased by 25.8% and skin surface temperature increased from 31.7 to 33.2. (°C) after wearing the treatment.
[0147] 6. Free radical elimination: Urinary 8oHdG concentration decreased from 9.23 to 5.05. (ng / mg creatinine) after 2 hours of wearing.
[0148] 7. Immune activation: NK cell activity increased from 28.6 to 36.5. (%) after 2 weeks of continuous wearing.
[0149] 8. Sympathetic and parasympathetic regulation: Heart beat spectral analysis found that low frequency decreased (sympathetic) and high frequency increased (parasympathetic) after wearing.
[0150] 9. Sympathetic and parasympathetic regulation: Plasma adrenaline concentration (peripheral sympathetic activity) decreased from 178.3 to 150.6. (pg / ml) after 15 minutes of wearing the treatment.
[0151] 10. Pain relief: Plasma β-endorphin concentration increased from 7.66 to 8.83. (pg / ml) after 15 minutes of wearing.
[0152] 11. Sympathetic and parasympathetic regulation: Plasma cortisol concentration increased from 7.00 to 4.82. (μg / ml) after 15 minutes of wearing.
[0153] 12. Attention, memory: Beta wave occurrence decreased from 33.7 to 18.2 and alpha wave occurrence decreased from 34.4 to 63.3. (%) after wearing the treatment.
[0154] It is understood by those of ordinary skill in the art that the above embodiments are specific examples of implementing the present application, and in actual applications, various changes can be made in form and details without departing from the spirit and scope of the present application.
Claims
1. An ion pulse potential bracelet, characterized by, It includes: The bracelet-shaped main body (1) worn on the user's body; The negative ion generating device (4) provided on the bracelet-shaped main body, the high-voltage electrode assembly (41) and the grounding electrode assembly (42) are arranged on the side of the bracelet-shaped main body in contact with the human skin; The main control module provided on the bracelet-shaped main body is connected to the negative ion generating device; The display module (2) provided on the bracelet-shaped main body is connected to the main control module; The health index monitoring module (3) provided on the bracelet-shaped main body is connected to the main control module; The control switch (5) provided on the bracelet-shaped main body is connected to the main control module; The power module (7) for powering the entire bracelet-shaped main body; The bracelet-shaped main body includes: The watch case (10) with an inclined part (11); The flexible watchband (13) provided with a watch buckle (12); The watchband of the bracelet-shaped main body has a high-voltage electrode assembly mounting part (131), and the high-voltage electrode assembly (41) includes: The surface metal electrode (410) mounted on the inner side of the watchband for contact with the human skin; The porous plastic sheet (411) mounted on the lower part of the high-voltage electrode; The inner electrode (412) mounted on the lower part of the porous plastic sheet; The inner electrode is electrically connected to the high-voltage circuit board; The negative ion electrode is arranged on the opposite side of the wrist, and the negative ion electrode is >=20mm*40mm; the electrode is covered with conductive silica gel; A breathable cloth layer is arranged between the surface metal electrode and the porous plastic sheet; The surface metal electrode sheet of the high-voltage electrode assembly (41), the electrode sheet of the grounding electrode assembly (42), and the detection grounding electrode sheet of the health index monitoring module (3) have an arc structure matching the surface of the human skin; The surface metal electrode selects a 0.3mm stainless steel sheet, and the thickness of the porous plastic sheet is 2mm; the high-voltage electrode assembly is modularly combined and mounted on the convex structure formed on the watchband.
2. The ion pulse potential bracelet according to claim 1, characterized by, The grounding electrode assembly (42) in contact with the human skin and the detection grounding electrode (31) of the health index monitoring module are mounted on the lower surface of the watch case of the bracelet-shaped main body. 3.The ion pulse potential bracelet of claim 1, wherein, It also includes: The charging module (6) provided on the bracelet-shaped main body is connected to the main control module.
4. The ion pulse potential bracelet of claim 1, wherein, The MCU module of the main control module includes: The main control chip U5; The 1st pin, 32nd pin, 33rd pin and 46th pin of the main control chip U5 are grounded through the capacitors C28, C27, C25 and C24 respectively; The 2nd pin and 3rd pin of the main control chip U5 are connected with the crystal oscillator X1, and the 2nd pin and 3rd pin are grounded through the capacitors C19 and C20 respectively; The 4th pin and 5th pin of the main control chip U5 are connected to the second power supply circuit; The 6th pin of the main control chip U5 is connected to the function button circuit; The 7th pin of the main control chip U5 is connected to the human body contact detection circuit; The 8th pin of the main control chip U5 is connected to the human body signal detection circuit; The 9th pin of the main control chip U5 is connected to the human body signal detection circuit; The 10th pin of the main control chip U5 is connected to the human body signal detection circuit through the resistor R23; The 11th pin of the main control chip U5 is connected to the third power supply circuit; The 12th pin of the main control chip U5 is connected to the human body signal detection circuit; The 13th pin, 36th pin and 48th pin of the main control chip U5 are connected to the circuit of the parallel connection of the capacitor C21, the capacitor C22 and the capacitor C23; The 14th pin of the main control chip U5 is connected to the FLASH through the resistor R24; The 15th pin of the main control chip U5 is connected to the FLASH; The 16th pin of the main control chip U5 is connected to the FLASH through the resistor R25; The 17th pin of the main control chip U5 is connected to the FLASH; The 18th pin of the main control chip U5 is connected to the OLED display circuit; The 19th pin of the main control chip U5 is connected to the human body contact detection circuit through the resistor R26; The 20th pin of the main control chip U5 is connected to the first power supply circuit through the resistor R27; The 21st pin of the main control chip U5 is connected to the OLED display circuit; The 22nd pin of the main control chip U5 is connected to the human body signal detection circuit; The 23rd pin of the main control chip U5 is connected to the first power supply circuit; The 24th pin of the main control chip U5 is connected to the detection point; The 25th pin of the main control chip U5 is connected to the detection point; The 26th pin of the main control chip U5 is connected to the detection point; The 27th pin of the main control chip U5 is connected to the second power supply circuit; The 28th pin and the 29th pin of the main control chip U5 are connected to the OLED display circuit; The 30th pin of the main control chip U5 is connected to the capacitor C29, the inductor L2 and the ground, the other end of the capacitor C29 is connected to the ground, and the other end of the inductor is connected to the ground through the capacitor C26; The 31st pin, the 45th pin, the 49th pin and the 44th pin of the main control chip U5 are connected to the ground; The 34th pin and the 35th pin of the main control chip U5 are connected to the crystal oscillator Y, the 1st pin and the 2nd pin of the crystal oscillator Y are connected to the ground in parallel with the capacitor C31, and the 3rd pin and the 4th pin of the crystal oscillator Y are connected to the ground in parallel with the capacitor C32; The 37th pin of the main control chip U5 is connected to the vibrator circuit; The 38th pin of the main control chip U5 is connected to the first power supply circuit; The 39th pin of the main control chip U5 is connected to the detection point; The 40th pin of the main control chip U5 is connected to the first power supply circuit; The 41st pin of the main control chip U5 is connected to the second power supply circuit through the resistor R22 and the resistor R20; The 42nd pin of the main control chip U5 is connected to the first power supply circuit; The 43rd pin of the main control chip U5 is connected to the excitation signal production circuit through the resistor R21; The 47th pin of the main control chip U5 is a null pin.
5. The ion pulse potential bracelet of claim 1, wherein, The power supply module includes a first power supply circuit, a second power supply circuit and a third power supply circuit; The first power supply circuit includes: a control chip U1; the 1st pin and the 7th pin of the control chip U1 are connected to the ground; the 2nd pin of the control chip U1 is connected to the 3.3V power supply through the resistor R4, and the 2nd pin of the control chip U1 is connected to the MCU module; The 3-pin of the control chip U1 is connected with the capacitor C2 and the capacitor C3 in parallel, the other end of the capacitor C2 and the capacitor C3 is grounded, the 3-pin of the control chip U1 is also connected with the resistor R9, the other end of the resistor R9 is connected with the resistor R12, the capacitor C4 and the MCU module, the other end of the resistor R12 is grounded, the other end of the capacitor C4 is grounded, the 3-pin of the control chip U1 is also connected with the control chip U2 and the fast self-resetting fuse resistor F2, the fast self-resetting fuse resistor F2 is connected with the connector J4, the 1-pin of the control chip U2 is connected with the 3-pin of the control chip U1, the 2-pin of the control chip U2 is grounded, the 3-pin of the control chip U2 is connected with the 1-pin through the resistor R13, the capacitor C5 and the capacitor C6 are connected in parallel between the 1-pin and the 2-pin of the control chip U2, the capacitor C7 and the capacitor C8 are connected between the 4-pin and the 5-pin of the control chip U2; The 4-pin of the control chip U1 is connected with the connector J3, the connector J1 is connected with the 4-pin of the control chip U1 through the diode D1, the 4-pin of the control chip U1 is connected with the capacitor C1 which has one end grounded, the 4-pin of the control chip U1 is connected with the resistor R2, the resistor R2 is connected with the resistor R3, the resistor R2 and the resistor R3 are connected with the triode Q1, the triode Q1 is connected with the MCU module; The resistor R5 and the resistor R6 are connected between the 5-pin and the 4-pin of the control chip U1, and the 5-pin of the control chip U1 is connected with the resistor R10 which has the other end grounded; The 6-pin of the control chip U1 is connected with the resistor R7 and the resistor R8 which have the other end grounded; The second power supply circuit of the power module comprises: The control chip U3; The 1-pin and the 6-pin of the control chip U3 are connected with the inductor L1; The 2-pin of the control chip U3 is connected with the connector J6; The 3-pin and the 5-pin of the control chip U3 are connected with the connector J5, and the connector J5 is connected with the MCU module; The third power supply circuit of the power module comprises: The control chip U4; The 1-pin and the 2-pin of the control chip U4 are connected with the capacitor C18; The 3-pin of the control chip U4 is connected with the MCU module, and the 2-pin and the 3-pin of the control chip U4 are connected with the resistor R19; The 4-pin and the 5-pin of the control chip U4 are connected with the capacitor C15, the capacitor C16 and the capacitor C17, the 4-pin of the control chip U4 is connected with the inductor FB5, and the 5-pin of the control chip U4 is connected with the inductor FB4.
6. The ion pulse potential bracelet of claim 1, wherein, The MCU module of the main control module is connected with the negative pressure boosting circuit of the negative ion generating device through the excitation signal generating circuit; The excitation signal generating circuit comprises the control chip U8 and the control chip U6; The 1-pin of the control chip U8 is connected with the 3.3V power supply through the inductor FB6, the 1-pin of the control chip U8 is connected with the capacitor C41 which has the other end grounded, and the 3.3V power supply connection end of the inductor FB6 is connected with the capacitor C45 which has the other end grounded; The 2-pin and the 5-pin of the control chip U8 are connected with the capacitor C44, and the 5-pin of the control chip U8 is connected with the 5V power supply; The 3-pin of the control chip U8 is grounded; The 4-pin of the control chip U8 is connected with the resistor R42, the resistor R42 is connected with the resistor R39, the resistor R40 and the parallel resistor R38 and the capacitor C40, the capacitor C42 with the other end connected to the ground is connected between the resistor R39 and the resistor R40, the capacitor C43 and the capacitor C46 with the other end connected to the ground are connected to the resistor R40 far from the resistor R39; The 6-pin of the control chip U8 is connected with the resistor R41, the resistor R43 is connected between the resistor R41 and the resistor R42, and the MCU module is connected to the resistor R41; The 1-pin of the control chip U6 is connected with the resistor R30 and the resistor R31, the resistor R31 is connected with the resistor R32 and the linear comparator U7, the resistor R32 is connected to the signal output end of the linear comparator U7, the 5-pin of the linear comparator U7 is connected with the 5V power supply, the 2-pin of the linear comparator U7 is connected to the ground, the resistor R36 is connected to the 3.3V power supply, the capacitor C38 and the capacitor C37 with the other end connected to the ground are connected to the 4-pin of the linear comparator U7, the resistor R37 is connected to the 4-pin of the linear comparator U7, the resistor R34 is connected to the signal output end of the linear comparator U7, and the MCU module is connected to the resistor R34; The human body physiological signal detection circuit connected to the MCU module comprises a control chip U9; The 1-pin, the 4-pin, the 5-pin and the 6-pin of the control chip U9 are connected to the MCU module; The 2-pin and the 3-pin of the control chip U9 are respectively connected to the connector J7 and the connector J8, the 2-pin of the control chip U9 is connected with the bidirectional symmetric single-line ESD protection diode D4, and the 3-pin of the control chip U9 is connected with the bidirectional symmetric single-line ESD protection diode D5; The 7-pin of the control chip U9 is connected to the ground; The 8-pin of the control chip U9 is connected with the inductor FB8 and the triode Q2, the triode Q2 is connected to the 3.3V power supply and the MCU module, and the resistor R46 and the resistor R45 connected to the 1-pin and the 6-pin of the control chip U9 are arranged between the triode Q2 and the inductor FB8; The vibrator circuit connected to the MCU module comprises a triode Q3, the 2-pin of the triode Q3 is connected to the ground, the 1-pin of the triode Q3 is connected to the MCU module, the 3-pin of the triode Q3 is connected to the diode D6 and the motor, and the diode and the motor are connected to the 3.3V power supply through the inductor FB9; The MCU module is connected with the Flash circuit, the OLED display circuit and the function button circuit.
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