HIGHLY BEND-RESISTANT CABLE HARNESS
20250246339 ยท 2025-07-31
Assignee
Inventors
Cpc classification
H01B7/00
ELECTRICITY
International classification
Abstract
The present invention provides a configuration as follows. A cable harness comprises: a conductor part; and a sheath part for vertically sheathing the outer circumferential part of the conductor part, wherein in one side of one end part and the other end part of the conductor part, an electrical conductive part is configured at the upper part of the conductor part, and in the other side of one end part of the conductor part, a stiffener is configured at the upper part of the sheath part, and the conductor part has a mesh-type pattern part which repeatedly configures a conductor width and a space part.
Claims
1. A cable harness having a sheath covering an outer circumference of a conductor part, the cable harness comprising: the conductor part and wherein the conductor part comprises a mesh-type pattern part that continuously reconfigures a conductor width and a space part.
2. The cable harness of claim 1, wherein, at both ending points of the conductor part, an electrically conductive component is attached to the upper portion of the conductor part and wherein, at the other side of one ending point of the conductor part, a stiffener is positioned at the lower portion of the sheath.
3. The cable harness of claim 1, wherein the conductor width is at least 10 m, and the space part is at most 190 m to enhance excellent flexibility.
4. The cable harness of claim 1, wherein the conductor width is a maximum of 190 m and the space part is a minimum of 10 m to enhance electrical conduction.
5. The cable harness of claim 1, wherein the sheath is composed of either PEN, PI, or PCT film.
6. The cable harness of claim 2, wherein the electrically conductive component is composed of tin.
7. The cable harness of any claim 1, wherein the conductor width and the space part are each comprised to be 100 m.
8. The cable harness of claim 1, wherein the conductor has a thickness of 5 m to 250 m.
9. The cable harness of any claim 1, wherein the sheath has a thickness of 30 m to 100 m.
10. The cable harness of claim 2, wherein the sheath is composed of either PEN, PI, or PCT film.
11. The cable harness of claim 3, wherein the sheath is composed of either PEN, PI, or PCT film.
12. The cable harness of claim 4, wherein the sheath is composed of either PEN, PI, or PCT film.
13. The cable harness of claim 2, wherein the conductor width and the space part are each comprised to be 100 m.
14. The cable harness of claim 3, wherein the conductor width and the space part are each comprised to be 100 m.
15. The cable harness of claim 4, wherein the conductor width and the space part are each comprised to be 100 m.
16. The cable harness of claim 2, wherein the conductor has a thickness of 5 m to 250 m.
17. The cable harness of claim 3, wherein the conductor has a thickness of 5 m to 250 m.
18. The cable harness of claim 4, wherein the conductor has a thickness of 5 m to 250 m.
19. The cable harness of claim 2, wherein the sheath has a thickness of 30 m to 100 m.
20. The cable harness of claim 3, wherein the sheath has a thickness of 30 m to 100 m.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0043]
MODE FOR INVENTION
[0044] First, the term mesh frequently used in the context of the present invention is defined as:
[0045] a mesh net, having any form in which the horizontal and vertical lines intersect and repeat each other.
[0046] The present applicant also defines the term mesh to be any configuration of repeated shapes, such as diamonds or circles, even if the horizontal and vertical lines do not intersect at right angles.
[0047]
[0048] The length is always variable according to the needs of the customer.
[0049]
[0050] This incorporates the mesh-type pattern in
[0051] If a 1.1 mm pattern is configured as a mesh type, the 100 m conductor width is composed of 100 m of space and consists of six conductor widths of 100 m, so the total width for one line is 1.1 mm due to the mesh type with five space parts and six conductor widths.
[0052] In a 1.1 mm pattern, if the width of the wire is more than 0.1 mm (100 m) and the space is reduced, the bend resistance will decrease accordingly. If the width of the wire is smaller than 100 m and the space is increased, the current characteristics of the conductor will decrease.
[0053] In the past, when polyimide was used as the coating agent, there was a likelihood of fires occurring due to carbon being generated through carbonization at high temperatures.
[0054] Recently, an improved type of PI film has been developed to address the above disadvantages, thereby solving the problem.
[0055] Nevertheless, it is possible to apply the present invention to any type of film, such as PI film, because it has superior bend resistance in comparison with existing products.
[0056] In the case of using PEN film, there is no risk of fire because the wire only disconnects, thereby preventing secondary large-scale accidents.
[0057] However, PEN film has significantly lower bend resistance, so improving the bend resistance of cable harnesses using PEN film has become a pressing issue.
[0058] When comparing the regular circuit of PEN film and the mesh circuit of PEN film, the mesh circuit has significantly better bend resistance.
[0059] In the case of all the films used in the harness, meshing improves flex resistance, as described above.
[0060] PI (Polyimide) has good bend resistance and favorable mechanical properties, but it is highly flammable, as it carbonizes in the event of a fire. Therefore, PEN film was used instead of PI. However, PEN has lower bend resistance than PI, so the mesh circuit was developed to improve its bend resistance.
[0061] The present invention improves the bend resistance of all films.
[0062] It also solves the problem with using PEN film.
[0063] In terms of the thickness of PEN film, if it is too thin, problems may arise. These include issues involving temperature and handling during use. Therefore, in the configuration of the present invention, the film thickness is 50 m.
[0064] In addition, if the thickness of the film is greater than 50 m, the bend resistance decreases, and the cost increases as the thickness increases.
[0065] In the present invention, a tin plating is configured as one embodiment, but various surface treatments such as electroless nickel immersion gold (ENIG) and organic surface prevent (OSP) can be used during Surface Mounter Technology (SMT).
[0066] However, this embodiment is based on electroless tin plating, the most common surface treatment used in automotive applications.
[0067] The following drawings show the specific configuration.
[0068] The configuration is described as follows, centering on the drawings of
[0069] As shown in
[0070] In
[0071] The configuration made of six conductor parts (100) is referred to as the cable harness (1000) in the embodiment of the present invention.
[0072] Depending on demand, the number of circuit lines may be either greater or less than six.
[0073] Thus, the mesh-type pattern embodiment illustrated in the drawings of the present invention comprises six circuit lines.
[0074]
[0075] After constructing said mesh-type pattern parts (110,120), the sheath (200,300) should cover the outer periphery above and below the conductor of said mesh-type pattern parts.
[0076] The thickness of said sheath is preferably configured to be 30 m-100 m.
[0077] Preferably, said sheath (200,300) is a PEN film. In the prior art, the use of polyimide as a sheath has been characterized by its excellent bend resistance but is vulnerable to fire.
[0078] Even when using polyimide with improved fire prevention performance, applying the present invention further improves the bend resistance.
[0079] The present invention solves the problem associated with using a PEN film as the sheath, which has advantages in fire protection but significantly poor bend resistance.
[0080] Therefore, the present invention constructs a cable harness (1000) in which said conductor (100) comprises a mesh-type pattern part that (110,120) continuously configures the conductor width (112), as well as a space part (114) that improves the bend resistance of the PEN film, thereby improving the bend resistance of the cable harness.
[0081] In addition to the PEN film, said sheath may be composed of PI film and PCT film, but the bend resistance may be further improved by applying the present invention.
[0082] Reference numeral 130 in
[0083] A thermistor refers to a resistor whose resistance changes significantly according to the temperature. It is also called a temperature-sensitive resistor.
[0084] In
[0085] The circuit line spacing width, which is the separation distance between the circuit lines, is configured to be 600 m, but it is variable.
[0086] For comparison under the same conditions, the general pattern part (a, b) is also configured with a circuit line width of 1,100 m, which is a 1.1 mm pattern.
[0087]
[0088]
[0089] By comparison, the cross-sectional view of the general pattern part (a, b) in the prior art is uniform.
[0090] The general pattern part (a, b) also constitutes the sheath (30,40).
[0091] In
[0092] On one side of one end and the other end of said conductor (100), the electrically conductive part (400,500) is configured on the upper part of the conductor (100).
[0093] The electrically conductive part is configured at the end of the cable harness so that electrical signals are transmitted through the conductor of the mesh-type pattern part.
[0094] The first mesh-type pattern part (110) corresponds to the conductor part (100) adjacent to the second mesh-type pattern part (120).
[0095] A general name that pertains to both the first and second mesh-type pattern parts (110,120) is designated the conductor part.
[0096] As shown in
[0097] The first conductive part (400) is configured at one end of the conductor, while the second conductive part (500) is configured at the other end.
[0098] On the other side of one end of said conductor, a stiffener (600) is configured at the upper part of the sheath (300) to enable a configuration that is capable for insertion of a cable harness.
[0099] Said conductor (100) is preferably made of copper.
[0100] The conductive parts (400, 500) of both ends of said cable harness may be surface-treated for SMT, such as with tin, gold plating, or OSP.
[0101] Said conductor width (112) and said space part (114) of said conductor part (100) are each preferably composed of a mesh type of 100 m.
[0102] The 1.1 mm single-strand pattern is divided into a 100 m circuit and a 100 m space in a mesh type.
[0103] The circuit width of one strand is made into a mesh by securing space between each circuit line to reduce bending fatigue.
[0104] It is predicted that as the conductor width (112) increases and the space part (114) decreases, the bend resistance will decrease.
[0105] The thickness of said conductor (100) is preferably 25 m to 30 m.
[0106] The thickness of cables used in automobiles is generally 25 m to 35 m.
[0107] The thickness of said PEN film is preferably 50 m.
[0108] The thickness of PEN film used in automobiles is generally 50 m.
[0109] The bend resistance of 50 m thick PEN film is lower than that of polyimide, so a mesh type was developed to improve the bend resistance.
[0110] The conductor width and space width can be adjusted based on a typical circuit.
[0111] The conductor width may be a minimum of 10 m, and the conductor space may be a maximum of 190 m to increase bend resistance.
[0112] Furthermore, the conductor width may be a maximum of 190 m, and the conductor space may be a minimum of 10 m to enhance electrical conduction properties.
[0113] The thickness of the conductor can range from at least 5 m to 250 m.
[0114] The above conditions satisfy the criteria for qualifying as an automotive cable harness.
[0115] The spacing between the first mesh-type pattern part (110) and the second mesh-type pattern part (120) of the conductor part is configured to be 600 m.
[0116] For fulfilling the same conditions, the spacing between the compared generic pattern parts (a,b) is also configured to be 600 m.
[0117] According to
[0118] When testing bend resistance, a bending test is repeatedly performed by placing a grip at both the first grip position (710) and the second grip position (720) of the cable harness (1000).
[0119] In Table 1, three mesh pattern samples (sample 1, sample 2, and sample 3) and three general pattern samples are coated with a 50 m thick PEN. For adhesion between the covering material and the mesh pattern, the mesh pattern is constructed with an adhesive of 25 m and a copper conductor thickness of 25 m.
[0120] This configuration allows the three samples to have an average bend resistance of 411times.
[0121] The three general pattern samples (sample 5, sample 6, and sample 7) have an average bend resistance of 210 times under the same conditions as the mesh pattern, so the mesh-type pattern has approximately twice the bend resistance bending as the general pattern.
[0122] Configuring the conductor part in a mesh pattern in this way improves the weak bend resistance of all films, including PEN films.
TABLE-US-00001 TABLE 1 Test result of No TYPE PEN Film/ADHESIVE Cu bending resistance 1 Mesh 50/25 ED 25 um 415 2 pattern 405 3 414 5 Normal 50/25 ED 25 um 210 6 pattern 209 7 212
[0123] In Table 1 above, ED in ED 25 m stands for electrodeposition, which refers to the electrolytic copper foil.
[0124]
[0125] As shown in
[0126] The temperature is adjusted between 40 C. and 85 C., and the humidity is set at 85%, 1 Cycle/8 Hr, 80 cycles.
[0127] Continue for 30 cycles: 2 hours at-40 C., 2 hours with a proportional change from 40 C. to 85 C., 2 hours at 85 C., 2 hours with a proportional change from 85 C. to 40 C., for a total of 8 hours in one cycle.
[0128] After conducting the temperature/humidity cycle test, an electrical test was conducted to check the OPEN/SHORT of the cable harness manufactured with a general pattern and a cable harness manufactured with a mesh pattern, and both showed excellent results.
[0129] Second, the results of the cable harness manufactured with the two patterns in the withstand voltage test were also favorable.
[0130] Under the voltage endurance test condition of 2.5 KV, both the cable harness manufactured with a general pattern and a cable harness manufactured with a mesh pattern showed excellent results when the leakage current was less than 1 mA.
[0131] The terms or words used in this design specification and claims are not to be construed in their ordinary or dictionary meaning, but should be interpreted in accordance with the meanings and concepts consistent with the technical concept of the present invention, based on the principle that the inventor may properly define the concept of a term to describe his invention best.
[0132] Therefore, the embodiments described in this design specification and the configurations illustrated in the drawings are only one of the most preferred embodiments of the present invention and are not intended to represent all of the technical ideas of the present invention. Various substitutions and variations may be used in their place when filing this application.
INDUSTRIAL APPLICABILITY
[0133] The present invention relates to an invention that significantly increases the bend resistance of a cable harness made in the form of a mesh, which commonly breaks or disconnects due to frequent bending of the cable harness and is an invention that has industrial applicability as a technology used in industrial sites such as automobiles.