PENIS HARDNESS DETECTOR AND DETECTION METHOD THEREOF
20220357221 · 2022-11-10
Inventors
Cpc classification
G01L1/2231
PHYSICS
A61B5/4393
HUMAN NECESSITIES
A61B5/7275
HUMAN NECESSITIES
International classification
A61B5/00
HUMAN NECESSITIES
Abstract
A penis hardness detector and a detection method thereof are provided. The penis hardness detector includes a pair of clamps, a belt body, and a servomotor. Each clamp includes a clamping arm, a force sensor and a pair of gears. The force sensor is disposed inside the clamping arm, and each gear is disposed at one end of the force sensor. Two ends of the belt body are respectively connected to another end of the clamping arm opposite to the gear. The servomotor has an axis passing through the gear. The penis hardness detector can obtain penis hardness results by calculating with formulas.
Claims
1. A penis hardness detector, comprising: a first clamp comprising a first clamping arm, a first force sensor, a first convex portion, a first transmission gear, and a second transmission gear; wherein the first clamping arm has a Y-shaped structure and has a first end portion and a second end portion; the first end portion has two ends formed with a V-shaped opening, and the second end portion opposites the first end portion; the first force sensor is disposed inside the first clamping arm and between the first end portion and the second end portion; the first convex portion connects to the first clamping arm, and the first convex portion protrudes from the first clamping arm; and the first transmission gear and the second transmission gear are respectively disposed at corresponding one of the two ends of the first end portion; a second clamp comprising a second clamping arm, a second force sensor, a second convex portion, a third transmission gear, and a fourth transmission gear; wherein the second clamping arm has a Y-shaped structure and has a third end portion and a fourth end portion; the third end portion has two ends formed with a V-shaped opening, and the fourth end portion opposites the third end portion; the second force sensor is disposed inside the second clamping arm and between the third end portion and the fourth end portion; the second convex portion connects to the second clamping arm, and the second convex portion protrudes from the second clamping arm; and the third transmission gear and the fourth transmission gear are respectively disposed at corresponding one of the two ends of the third end portion; and wherein the third transmission gear meshes with the first transmission gear, and the fourth transmission gear meshes with the second transmission gear; a belt body having two ends, wherein each end of the belt body respectively connects to the second end portion of the first clamping arm and the fourth end portion of the second clamping arm; and a servomotor having an axis, wherein the axis passes through the first transmission gear, the second transmission gear, the third transmission gear or the transmission gear.
2. The penis hardness detector according to claim 1, wherein the penis hardness detector further comprises a housing, the housing accommodates the servomotor and has two parallel grooves, and wherein the first transmission gear and the third transmission gear are located in one of the two parallel grooves, and the second transmission gear and the fourth transmission gear are located in another one of the two parallel grooves.
3. The penis hardness detector according to claim 1, wherein the penis hardness detector further comprises two binding portions; one of the binding portions is disposed at the second end portion of the first clamping arm, and another one of the binding portions is disposed at the fourth end portion of the second clamping arm; and wherein each of the two binding portions is detachably connected to corresponding one of the two ends of the belt body, respectively.
4. The penis hardness detector according to claim 1, wherein the penis hardness detector further comprises a waterproof element, and the waterproof element covers the penis hardness detector.
5. The penis hardness detector according to claim 1, wherein the waterproof member comprises a silicone membrane.
6. The penis hardness detector according to claim 1, wherein the first clamp is formed integrally, and wherein the second clamping arm containing the second force sensor is detachably connected to the third end portion of the second clamping arm.
7. The penis hardness detector according to claim 1, wherein the penis hardness detector further comprises a pin, and the pin is disposed between the second clamping arm containing the second force sensor and the third end portion of the second clamping arm.
8. The penis hardness detector according to claim 1, wherein the penis hardness detector further comprises an electronic device, and the electronic device controls an operation of the servomotor and transmits a penis hardness result data through a network or bluetooth.
9. The penis hardness detector according to claim 1, wherein the first convex portion is a circular convex portion or an elliptical convex portion.
10. The penis hardness detector according to claim 1, wherein the first clamping arm of the first clamp and the second clamping arm of the second clamp have a rotation angle between 0 degree and 60 degrees.
11. The penis hardness detector according to claim 1, wherein the first force sensor and the second force sensor are a load cell or a varistor.
12. The penis hardness detector according to claim 11, wherein a measuring range of the load cell is between 0.1 g and 500 g.
13. The penis hardness detector according to claim 1, wherein the belt body is an elastic band.
14. The penis hardness detector according to claim 1, wherein a thickness of the first clamp, the second clamp, the belt body or the servomotor is between 0.1 mm and 25 mm.
15. The penis hardness detector according to claim 3, wherein the binding portion is a fixing ring.
16. A detection method of the penis hardness detector, comprising steps of: providing a penis hardness detector according to claim 1; placing each of standards with different Shore hardness in the penis hardness detector; abutting a penis against the first force sensor and the second force sensor, and performing detection; obtaining a slope of a linear regression line by use of formula 1, or obtaining a force required for deformation per unit by use of formula 2; and corresponding the slope of the linear regression line or the force required for deformation per unit to a Shore hardness value of each standard to obtain a comparison table of the slope of the linear regression line or the force required for deformation per unit to each Shore hardness, and finding a corresponding Shore hardness of the penis on the comparison table; wherein the formula 1 is F=ß.sub.0S+ß.sub.1, and wherein F is a force value; ß.sub.0 is the slope of the linear regression line, representing the force required for deformation per unit; S=R×Sin θ, where S is a vertical distance from a center point of the first transmission gear to a center point of the first convex portion; R is a distance from the center point of the first transmission gear to the center point of the first convex portion; and ß.sub.1 is an intercept of the linear regression line; and wherein the formula 2 is ß=(F.sub.n−F.sub.0)/(S.sub.n−S.sub.0), and wherein ß is the force required for deformation per unit; F.sub.n is in the nth detection, an average value of high-frequency measurement force when the first clamping arm and the second clamping arm are displaced by a certain distance; F.sub.0 is an average value of an initial detection force of the first clamping arm and the second clamping arm; S.sub.n is in the n.sup.th detection, an average value of a distance from a vertical line of the center point of the first transmission gear to the center point of the first convex portion and a distance from a vertical line of the center point of the second transmission gear to the center point of the second convex portion; and S.sub.0 is at initial detection, an average value of the distance from the vertical line of the center point of the first transmission gear to the center point of the first convex portion and the distance from the vertical line of the center point of the second transmission gear to the center point of the second convex portion.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0036] In order to explain the technical solutions of the present disclosure more clearly, the following will briefly introduce the drawings used in the description of the embodiments or the related art. Obviously, the drawings described below are only some embodiments of the present disclosure. For those skilled in the art, other drawings can be obtained based on these drawings without making creative efforts.
[0037]
[0038]
[0039]
[0040]
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0041] The following describes the embodiment of the present disclosure through specific examples. Those skilled in the field can understand other advantages and effects of the present disclosure from the content disclosed in the present specification. However, the exemplary embodiments disclosed in the present disclosure are merely for illustrative purposes and should not be construed as a limiting the scope of the present disclosure. In other words, the present disclosure can also be implemented or applied by other different specific embodiments, and various details in the present specification can also be modified and changed based on different viewpoints and applications without departing from the concept of the present disclosure.
[0042] Unless otherwise described herein, the singular forms “a” and “the” used in the specification and the appended claims of the present disclosure comprise plural entities. Unless otherwise described herein, the term “or” used in the specification and the appended claims of the present disclosure comprises the meaning of “and/or”.
[0043] Example: Detection of a user's penis hardness by use of a penis hardness detector
[0044] Referring to
[0045] The second clamp 20 has a second clamping arm 21, a second load cell 22, a second convex portion 23, a third transmission gear 24, and a fourth transmission gear 25. The second clamping arm 21 has a Y-shaped structure and has a third end portion 211 and a fourth end portion 212. The third end portion 211 has two ends formed with a V-shaped opening, and the fourth end portion 212 opposites the third end portion 211. The second load cell 22 is disposed inside the second clamping arm 21 and between the third end portion 211 and the fourth end portion 212. The second clamping arm 21 containing the second load cell 22 is detachably connected to the third end portion 211. The second convex portion 23 connects to the second clamping arm 21, and the second convex portion 23 protrudes from the second clamping arm 21 . The third transmission gear 24 and the fourth transmission gear 25 are respectively disposed at corresponding one of the two ends of the third end portion 211. The third transmission gear 24 meshes with the first transmission gear 14, and the fourth transmission gear 25 meshes with the second transmission gear 15.
[0046] The belt body 30 is an elastic belt, and each end of the belt body 30 respectively connects to the second end portion 112 of the first clamping arm 11 and the fourth end portion 212 of the second clamping arm 21. In addition, an annular space X is formed around the first clamp 10, the second clamp 20, and the belt body 40.
[0047] The housing 40 has two parallel grooves 41, and the housing 40 covers the first transmission gear 14, the second transmission gear 15, the third transmission gear 24, and the fourth transmission gear 25, so that the first transmission gear 14 and the third transmission gear 24 are located in one of the two parallel grooves 41, and the second transmission gear 15 and the fourth transmission gear 25 are located in another one of the two parallel grooves 41.
[0048] The servomotor 50 is disposed inside the housing 40 and is electrically connected to the first load cell 12 and the second load cell 22 through a wire. The servomotor 50 has an, and the axis passes through the fourth transmission gear 25. When the servomotor 50 is powered and operated, the fourth transmission gear 25 may be rotated, followed by driving the second transmission gear 15, the first transmission gear 14, and the third transmission gear 24 to rotate in sequence.
[0049] The pin 60 is disposed between the second clamping arm 21 containing the second load cell 22 and the third end portion 211, so that the second clamping arm 21 containing the second load cell 22 is detachably connected to the third end portion 211.
[0050] Referring to
F=ß.sub.0S+ß.sub.1 Formula 1:
[0051] In formula 1, F is the force value; ß.sub.0 is the slope of the linear regression line, representing the force required for deformation per unit; S=R×Sin θ, where S is a vertical distance from a center point of the first transmission gear 14 to a center point of the first convex portion 13; R is a distance from the center point of the first transmission gear 14 to the center point of the first convex portion 13; and, ß.sub.1 is an intercept of the linear regression line.
ß=(F.sub.n−F.sub.0)/(S.sub.n−S.sub.0) Formula 2:
[0052] In formula 2, ß is the force required for deformation per unit; F.sub.n is in the n.sup.th detection, an average value of the high-frequency measurement force when the first clamping arm 11 and the second clamping arm 21 are displaced by a certain distance. The frequency of the high-frequency force measurement is 80 Hz. When the first convex portion 13 and the second convex portion 23 have not touched the penis, the high-frequency force is detected every 1/80 second, and the measured high-frequency force is 0. When the first clamping arm 11 and the second clamping arm 21 start to clamp the penis, which allows the first convex portion 13 and the second convex portion 23 to touch the penis, as the first convex portion 13 and the second convex portion 23 press the surface of the penis, the penis is deformed, thereby generating a reaction force applied to the first load cell 12 and the second load cell 22, and the high-frequency force measurement is continuously detected every 1/80 second and recorded. As the first clamping arm 11 and the second clamping arm 21 move away from each other, the degree of deformation of the penis is reduced, and the reaction force applied to the first load cell 12 and the second load cell 22 is also reduced, and the high-frequency force measurement is continuously detected every 1/80 second and recorded. Finally, the measured high-frequency force values are averaged to obtain an average value of the high-frequency force. F.sub.0 is an average value of an initial detection force of the first clamping arm 11 and the second clamping arm 21. S.sub.n is in the n.sup.th detection, an average value of a distance from a vertical line of the center point of the first transmission gear 14 to the center point of the first convex portion 13 and a distance from a vertical line of the center point of the second transmission gear 24 to the center point of the second convex portion 23. S.sub.0 is at initial detection, an average value of the distance from the vertical line of the center point of the first transmission gear 14 to the center point of the first convex portion 13 and the distance from the vertical line of the center point of the second transmission gear 24 to the center point of the second convex portion 23.
[0053] Moreover, if an emergency occurs when the user uses the penis hardness detector 1 of the present disclosure, the user can immediately remove the pin 60 to disassemble the second clamping arm 21 containing the second load cell 22 and the third end portion 211, and take the penis away from the penis hardness detector 1.
[0054] The above provides a detailed introduction to the implementation of the present disclosure, and specific examples are used herein to describe the principles and implementations of the present disclosure, and the description of the implementations above is merely used to help understand the present disclosure. Moreover, for those skilled in the art, according to a concept of the present disclosure, there will be changes in the specific embodiment and the scope of present disclosure. In summary, the content of the specification should not be construed as a limitation to the present disclosure.