Claims
- 1. A Self Contained Continuously Variable Transmission (CVT) with an Integral Mechanical Torque Converter having Automatic Drive Control, comprising:
a stationary housing; a primary traction and control shaft (7) having helicoidal slots; a cylindrical impeller of increasing diameter (10); a double coupling shaft (19); a lock plate (6); a central splined bar (21) fixed to the housing; an input gear (1) that receives motion from an engine; an annular gear (2) meshing with said input gear (1); a front epicyclical gear system comprising
a planet gear carrier fixed to said annular gear (2); a set of three or more first planet gears (4) mounted on said planet carrier; a second annular gear (3) engaging first planet gears (4) and coupled to said cylindrical impeller (10); and, a sliding sun gear (5) fixedly coupled to said primary shaft (7) to rotate therewith, and meshing with said first planet gears (4), wherein the sun gear (5) with the primary shaft may slide between two positions, a first position in which the primary shaft is coupled to said double coupling shaft (19) and a second position in which the primary shaft is de-coupled from said double coupling shaft, and in which the sun gear is locked to said lock plate (6) and the primary shaft; a control system for controlling the sliding of said sun gear (5) comprising:
centrifugal counterweights (8) for causing said sun gear (5) and primary shaft (7) to slide between said two positions; and a torque sensor consisting of
a sensor spring (9) hooking said sun gear (5) to said lock plate (6), when it is at said second position; and a shifting mechanism (20) for adjusting the sensitivity of said torque sensor (9); a first unidirectional clutch (17) mounted on said cylindrical impeller (10) for locking to said housing and releasing said cylindrical impeller; a rear epicyclical gear system comprising:
a system with several satellites (11) moved by said cylindrical impeller (10); a set of several rear gears (13) connected by respective shafts to said satellites (11); a set of several pivoting arms (32) that carries said rear gears and shafts; a second set of several planet gears (14) engaged to said rear gears (13); a positioning spider (12) holding said pivoting arms (32) and said second set of planet gears, wherein said positioning spider (12) may be deployed along said primary shaft (7) by interaction of a pin fixed to said spider with said helicoidal slots and said splines of said splined bar (21); a central gear (15) mounted on said positioning spider and engaging said second set of planet gears (14); and an outer shaft (16) fixed to said central gear (15);
a second unidirectional clutch (18) arranged between said outer shaft (16) and said double coupling shaft (19) for engaging and disengaging said outer shaft (16) to said double coupling shaft (19), which outputs torque from said infinitely variable transmission.
- 2. The Continuously-Variable Transmission according to claim 1, further comprising a rear gear train (23, 24, 25, 26, 27, 28 and 29) for multiplying and reverse operation which will be the output of the transmission drivingly connected to said double coupling shaft (19).
- 3. The Continuously-Variable Transmission according to claim 2, wherein said primary shaft (7), input gear (1), first planet gears (4), satellites (11), rear gears and shafts (13), second planet gears (14) and elements (23), (27) and (28) of said rear gear train, have their own axis which is parallel with each other.
- 4. The Continuously-Variable Transmission according to claim 2, wherein said sliding sun gear (5), annular gear (2), primary shaft (7), double coupling shaft (19), lock plate (6), first unidirectional clutch (17), cylindrical impeller (10), second annular gear (3), positioning spider (12), central splined bar (21), outer shaft (16) and said second unidirectional clutch (18), and elements (25) and (26) of said rear gear train have a lengthwise axis that is common to all of them.
- 5. The Continuously-Variable Transmission according to claim 1, where said input gear (1) transmits the motion to said planet carrier, and to said sun gear (5) during the initial acceleration from zero to the optimum speed, by keeping said second annular gear (3) fixed by means of said first unidirectional clutch (17).
- 6. The Continuously-Variable Transmission according to claim 1, where said sun gear (5) has inclined tabs that deploy said sun gear (5) backwards when not receiving reaction torque, unlatching it from said lock plate (6), and so transmits the torque to said primary shaft (7), which engages said double coupling shaft (19) and disengages said spider (12) from moving.
- 7. The Continuously-Variable Transmission according to claim 1, wherein said torque sensor (9, 20 and 22) is comprised of a spring which tension cazable of being manually adjusted during the operation of the transmission by said mechanism (20) to surpass the measured force and thus, increase or reduce the operation speed of the power plant engaged to said input gear (1).
- 8. The Continuously-Variable Transmission according to claim 1, wherein the primary traction and control shaft (7) is engaged to said positioning spider (12) by means running through a helical groove and a slotted central bar, and depending on the torque that surpasses said sensing system, will deploy said positioning spider (12) lengthwise.
- 9. The Continuously-Variable Transmission according to claim 1, where said impeller of increasing diameter (10) may be conic or parabolic shaped, and is freed from the case where said sun gear (5) deploys to the front when receiving reaction torque, latching it to said lock plate (6) and to said torque sensor (9, 20, and 22), and so transmits the torque to said cylindrical impeller and satellite system.
- 10. The Continuously-Variable Transmission according to claim 1, where said cylindrical impeller and satellite system (11) may be a geared system comprising:
a spiral rack (34) circumferentially integrated to said cylindrical impeller (10), and satellite gears meshing with said rack, and linked to said rear gears and shafts Connection bars (35), slaving the pivoting arms (32) with each other.
- 11. The Continuously-Variable Transmission according to claim 10, wherein, said pivoting arms (32) pivot at the end of the arms of said spider and are spring loaded and are enslaved to each other by means of said connection bars, in order to maintain the same radius, and they extend so that said satellites engage to the spire of the nearest rack having a three-dimensional vector position, specifically for each position of the spider's advancing rate.
- 12. The Continuously-Variable Transmission according to claim 10, wherein the satellites are engaged to said gear rack, and cyclically change from the end of a spire to the beginning of it, at specific angular positions where the first and last spire teeth coincide, and several gear rack teeth may be detached without loosing the sequence, for being synchronized with the same central gear, transmitting the torque to the second epicyclical gear system.
- 13. The Continuously-Variable Transmission according to claim 1, wherein said rear gears and shafts (13), and are engaged to said second set of planet gears to said central gear that is joined to said outer shaft (16) and to said double coupling shaft (19) by said second unidirectional clutch (18).
- 14. The Continuously-Variable Transmission according to claim 1, wherein said second unidirectional clutch (18) restricts said outer shaft (16) from spinning during the initial transmission operation in order to allow the free rotation of said double coupling shaft (19), but once said outer shaft (16) reaches the same speed as said double coupling shaft (19), said second unidirectional clutch (18) will then match speeds of both shafts so that said outer shaft (16) will now transmit the traction, and the sequence change is synchronized.
- 15. The Continuously-Variable Transmission according to claim 2, wherein said double coupling shaft (19) engaging with said rear gear train is capable of sequentially shift upwards or downwards by means of the connecting link (29) every time said outer shaft (16) reaches certain longitudinal deployment.
Priority Claims (1)
Number |
Date |
Country |
Kind |
9911945 |
Dec 1999 |
MX |
|
CROSS-NOTING TO RELATED APPLICATIONS
[0001] This application is a Continuation-In-Part of application Ser. No. 10/168,056, filed Jun. 17, 2002, which is the National Stage of International Application No. PCT/MX00/00055, filed Dec. 15, 2000, which claims the benefit of Mexican Application No. 9911945, filed Dec. 17, 1999.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10168056 |
Nov 2002 |
US |
Child |
10464985 |
Jun 2003 |
US |