FLEXIBLE FLAT CABLE STRUCTURE CAPABLE OF IMPROVING CROSSTALK INTERFERENCE
20170243677 · 2017-08-24
Inventors
- RUEY BEEI WU (NEW TAIPEI CITY, TW)
- SHIH YA HUANG (NEW TAIPEI CITY, TW)
- CHIA TSUNG LIU (NEW TAIPEI CITY, TW)
- SHIH HSING KU (NEW TAIPEI CITY, TW)
Cpc classification
H05K2201/0145
ELECTRICITY
H05K1/024
ELECTRICITY
H05K1/0216
ELECTRICITY
International classification
Abstract
A flexible flat cable structure capable of improving crosstalk interference includes plural telecommunication signal conductors separated from one another and provided for transmitting differential signals, two support members installed on two lateral sides of the telecommunication signal conductor respectively, at least one filled material disposed between the telecommunication signal conductors. The ratio of the equivalent dielectric constant of the filled material to the equivalent dielectric constant of the support members falls within a range of 0.39˜0.27, and the ratio of the thickness of the filled material to the thickness of the support members falls within a range of 1.49˜1.37. Therefore, the flexible flat cable structure achieves the effects of reducing the time delay of the signal transmission of the flexible flat cable (FFC), suppressing the ringing noise of resonance, and improving the eye height of amplitude measurement, so as to suppress crosstalk interference and improve signal transmission quality effectively.
Claims
1. A flexible flat cable structure capable of improving crosstalk interference, comprising: a plurality of telecommunication signal conductors, separately arranged with respect to each other, and provided for transmitting a differential signal; two support members, installed on two lateral sides of the telecommunication signal conductor respectively; at least one filled material, disposed between the plurality of telecommunication signal conductors; wherein, the ratio of the equivalent dielectric constant of the filled material to the equivalent dielectric constant of the support members falls within a range of 0.39˜0.27, and the ratio of the thickness of the filled material to the thickness of the support members falls within a range of 1.49˜1.37; and the flexible flat cable structure capable of eliminating crosstalk interference effectively.
2. The flexible flat cable structure capable of improving crosstalk interference according to claim 1, wherein the ratio of the equivalent dielectric constant of the filled material to the equivalent dielectric constant of the support member falls within a range of 0.36˜0.30.
3. The flexible flat cable structure capable of improving crosstalk interference according to claim 2, wherein the ratio of the equivalent dielectric constant of the filled material to the equivalent dielectric constant of the support member falls within a range of 0.34˜0.33.
4. The flexible flat cable structure capable of improving crosstalk interference according to claim 1, wherein the ratio of the thickness of the filled material to the thickness of the support members falls within a range of 1.46˜1.40.
5. The flexible flat cable structure capable of improving crosstalk interference according to claim 4, wherein the ratio of the thickness of the filled material to the thickness of the support members falls within a range of 1.43˜1.42.
6. The flexible flat cable structure capable of improving crosstalk interference according to claim 1, wherein the ratio of the equivalent dielectric constant of the filled material to the equivalent dielectric constant of the support member falls within a range of 0.34˜0.33, and the ratio of the thickness of the filled material to the thickness of the support members falls within a range of 1.43˜1.42.
7. The flexible flat cable structure capable of improving crosstalk interference according to claim 1, wherein the support member is made of polyester.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0024] With reference to
[0025] With reference to
[0026] With reference to
[0027] In
[0028] With reference to
[0029] In a high-speed transmission of differential signals, a time delay caused by the transmission via the conductive wire occurs. The smaller the time delay, the smaller the resonance effect. Therefore, the crosstalk interference is reduced. On the other hand, the greater the time delay, the greater the resonance effect. Therefore, the crosstalk interference is increased. This disclosure adjusts the ratio of the equivalent dielectric constant of the filled material of the flexible flat cable to the equivalent dielectric constant of the support plate and the ratio of the thicknesses to minimize the time delay and the resonance effect, so as to reduce the crosstalk interference and improve the signal transmission quality significantly. According to the journal of IEEE Transaction (Volume: 5, Issue: 8) entitled “Ringing Noise Suppression for Differential Signaling in Unshielded Flexible Flat Cable” published by the inventors of this disclosure: HUANG, SHIH-YA, LIU, CHIA-TSUNG, WU, RUEY-BEEI) on August, 2015, the time delay is calculated by multiplying inductance matrix and capacitance matrix according to the following equation:
TDn=√{square root over (L.sub.m,nnC.sub.m,nn)}
wherein, TDn represents the time delay; Lm,nn represents the inductance matrix; Cm,nn represents the capacitance matrix; m,n represent the components of the matrix, n∈{1, 2}, m∈{1, 2}, and {1, 2} represent the sets of the differential signal mode 1 (as shown in
[0030] To find the conditions for minimizing the time delay, the discloser of this disclosure simulates the time delay for more than ten thousand times by using the aforementioned equation and compares the equivalent dielectric constants of different filled materials 26, the equivalent dielectric constant of different support members 14, 16, and the thicknesses of different filled materials 26 with the thickness of the support members 14, 16 (polyester/polyester). The results are shown in
[0031] In
TABLE-US-00001 TABLE 1 Dimensions of FFC Assembly Content Case 1 Case 2 Case 3 Width (Cw) of Telecommunication 300 Signal Conductor Thickness (Ct) of Telecommunication 100 Signal Conductor Pitch (P) between Telecommunication 500 Signal Conductors Length (L) of Telecommunication 243 (mm) Signal Conductor Thickness (Tp) of Support Member 60 175 350 Half Thickness (Ft/2) of Filled material 50 125 200 (Unit: μm)
[0032] The flexible flat cable structure capable of improving crosstalk interference in accordance with this disclosure is illustrated by three Cases (Case 1, Case 2 and Case 3) of different dimensions, wherein Case 2 (falling in the middle gray portion of
[0033] In Case 1, the support member (14, 16) has a thickness equal to 60 μm, the filled material 26 (polyester) has a half thickness (Ft/2) equal to 50 μm. As shown in
[0034] This disclosure uses the simulation software of the Keysight's Advanced Design System (ADS) to simulate the eye patterns of Cases 1, 2, and 3 as shown in
[0035] In Case 2, the support member (14, 16) has a thickness equal to 175 μm, the filled material 26 (polyester) has a half thickness (Ft/2) equal to 125 μm. In
[0036] With reference to
[0037] In Case 3, the support member (14, 16) has a thickness equal to 350 μm, the filled material 26 (polyester) has a half thickness (Ft/2) equal to 200 μm. As shown in
[0038] In the foregoing analysis, the flexible flat cable structure capable of improving crosstalk interference in accordance with this disclosure is applied to a differential signal transmission line to perfolm signal transmissions, and the ratio of the equivalent dielectric constant of the filled material of the flexible flat cable to the equivalent dielectric constant of the support plate and the ratio of the thicknesses are adjusted to minimize the time delay and reduce the resonance effect and crosstalk interference. The following conclusion is drawn after the analysis takes place. If the ratio of the equivalent dielectric constant of the filled material 26 (polyester) to the equivalent dielectric constant of the support member (14, 16) falls within a range of 0.34—0.33, and the ratio of the thickness of the filled material 26 (polyester) to the thickness of the support member (14, 16) falls within a range of 1.43˜1.42, the time delay will be minimized, and the crosstalk noise and resonance interference will reduced most effectively.
[0039] However, the ratio of the equivalent dielectric constant of the filled material 26 (polyester) to the equivalent dielectric constant of the support member (14, 16) may be increased slightly to 0.360.30 to further reduce the crosstalk noise. If the ratio of the equivalent dielectric constant of the filled material 26 (polyester) to the equivalent dielectric constant of the support member (14, 16) is further increased to 0.39˜0.27, the crosstalk noise will be reduced even more.
[0040] In addition, the ratio of the thickness of the filled material 26 (filled material/polyester) to the thickness of the support member (14, 16) may be slightly increased to 1.46˜1.40 to eliminate crosstalk noise with a better effect. If the ratio of the thickness of the filled material 26 (filled material/polyester) to the thickness of the support member (14, 16) is further increased to 1.49˜4.37 to eliminate crosstalk noise with a better effect.
[0041] In this disclosure, the flexible flat cable structure capable of improving crosstalk interference and adjusting the ratio of the equivalent dielectric constant of the filled material of the flexible flat cable (FFC) to the equivalent dielectric constant of the support plate and the ratio of the thicknesses to avoid the crosstalk problem caused by resonance, so as to achieve the effects of improving the signal transmission quality, reducing the time delay of the signal transmission of the flexible flat cable (FFC), suppressing the ringing noise of resonance, and improving the eye height of amplitude measurement. As a result, the crosstalk interference is suppressed and the signal transmission quality is improved effectively.
[0042] While the invention has been described by means of specific embodiments, numerous modifications and variations could be made thereto by those skilled in the art without departing from the scope and spirit of the invention set forth in the claims.