IP Library Granted Patent US 12,275,285
Granted Patent B2
US 12,275,285 · App. 17/600,241 · Granted Apr 15, 2025

Method for determining an axle load on a mechanically suspended vehicle

Inventors: Johann Lucas (Sehnde, DE); Andreas Thimm (Sarstedt, DE); Sebastian Jermis (Springe, DE); Britta Warnecke (Barsinghausen, DE)
Assignee: ZF CV Systems Europe BV
B60G17/0155B60G17/0162B60G17/017B60G17/019B60G2300/02B60G2400/104B60G2400/252B60G2400/60
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Quick Facts
Patent No.
US 12,275,285
App. No.
17/600,241
Granted
Apr 15, 2025
Kind
B2
Abstract

A mechanically suspended vehicle has a travel measurement device ( 9 ), a control unit ( 10 ) and an algorithm stored in the control unit ( 10 ). The algorithm performs a method for determining an axle load. In a first test routine a level signal of a travel measurement device is acquired and evaluated, wherein, in a loading operation of the vehicle, a loading curve (F_i) is determined, and, in an unloading operation of the vehicle, an unloading curve (F_u) is determined. The values of the two curves are used to calculate an averaged load-travel characteristic curve (F_m) to be stored in the control unit. After each start of the vehicle, an axle load determination routine is repeated cyclically, and axle load values are continuously determined with the averaged load-travel characteristic curve (F_m). An axle load average value is calculated from the axle load values and displayed as the current axle load value.

Claims (42)

1. A method for determining an axle load on a mechanically suspended vehicle via a travel measurement device ( 9 ), an electronic control unit ( 10 ) and an algorithm stored in the control unit ( 10 ), the method comprising:

first carrying out a test routine with respect to a mechanically suspended vehicle axle ( 4 ) by acquiring and evaluating a level signal of a travel measurement device ( 9 ) arranged on the vehicle axle ( 4 ), including the following steps:

determining, in a loading operation of the vehicle, a loading curve (F_i) is determined from a plurality of measured values, the loading curve indicating a level measured with the travel measurement device ( 9 ), or another measured variable correlated with the level,

determining, in an unloading operation of the vehicle, an unloading curve (F_u) from a plurality of measured values, the unloading curve indicating the level measured with the travel measurement device ( 9 ), or another measured variable correlated with the level,

calculating, from values of the loading curve (F_i) and of the unloading curve (F_u) an averaged load-travel characteristic curve (F_m), and

storing values of the averaged load-travel characteristic curve (F_m) in a non-volatile memory ( 10 b ) of the control unit ( 10 ), and

after each start of the vehicle, and after a predefined lower traveling speed limit (v_min) that is greater than zero has been exceeded, cyclically repeating an axle load determination routine while the vehicle is moving at a vehicle speed that is greater than the lower traveling speed limit that is greater than zero, including the following steps:

continuously determining, during a first predefined time period (Δt) defined by a given predetermined quantity of time, axle load values with the averaged load-travel characteristic curve (F_m), and calculating a first arithmetic axle load average value from the axle load values determined during the first predetermined time period (Δt),

continuously determining, during a second predefined time period (Δt) defined by the given predetermined quantity of time, axle load values with the averaged load-travel characteristic curve (F_m), and calculating a second arithmetic axle load average value from the axle load values determined during the second predetermined time period (Δt), and

displaying the first arithmetic axle load average value as a current axle load value, wherein the current axle load value remains valid until overwritten by the second arithmetic axle load average value.

2. The method as claimed in claim 1 , further comprising:

restarting the axle load determination routine when the vehicle is stationary and an axle load change (ΔF_G) is identified that exceeds a predefined axle load change limit value (ΔF_G_lim).

3. The method as claimed in claim 1 , wherein the test routine for calculating the averaged load-travel characteristic curve (F_m) is initiated manually by an operator.

4. The method as claimed in claim 1 , wherein the mechanically suspended vehicle axle is one of a plurality of mechanically suspended vehicle axles of the vehicle, wherein the test routine for calculating the averaged load-travel characteristic curve (F_m) is carried out individually for each mechanically suspended vehicle axle ( 4 ) of the plurality of mechanically suspended vehicle axles ( 4 ).

5. The method as claimed in claim 1 , wherein the mechanically suspended vehicle axle is one of a plurality of mechanically suspended vehicle axles ( 4 ) equipped with a travel measurement device ( 9 ) generating a level signal, wherein the axle load determination routine for determining the axle load is carried out individually for each mechanically suspended vehicle axle ( 4 ) of the plurality of mechanically suspended vehicle axles ( 4 ).

6. A non-volatile computer memory storing a computer program that, when executed, causes an electronic control unit ( 10 ) of a level control device of a vehicle to carry out the method as claimed in claim 1 .

7. A vehicle comprising an electronically controlled level control device ( 1 ) for axle load determination on a mechanically suspended vehicle axle ( 4 ), wherein the level control device ( 1 ) is also configured for level control at a pneumatically or hydraulically suspended vehicle axle ( 2 ) of the vehicle and for axle load determination on the pneumatically or hydraulically suspended vehicle axle ( 2 ), wherein the vehicle is configured to be operated selectively or cumulatively to carry out the method as claimed in claim 1 .

8. The method as claimed in claim 1 , further comprising:

disregarding, in calculating the axle load average value, such axle load values that have been determined during cornering or during another driving maneuver causing lateral accelerations of the vehicle.

9. The method as claimed in claim 8 , further comprising:

identifying cornering or another driving maneuver of the vehicle that causes lateral accelerations of the vehicle by continuously acquiring and evaluating a lateral acceleration signal from a lateral acceleration sensor, and

concluding that that the vehicle is cornering or making a driving maneuver causing lateral accelerations of the vehicle if the lateral acceleration signal represents an acceleration value that exceeds a predefined lateral acceleration limit value.

10. A method for determining an axle load on a mechanically suspended vehicle via a travel measurement device ( 9 ), an electronic control unit ( 10 ) and an algorithm stored in the control unit ( 10 ), the method comprising:

first carrying out a test routine with respect to a mechanically suspended vehicle axle ( 4 ) by acquiring and evaluating a level signal of a travel measurement device ( 9 ) arranged on the vehicle axle ( 4 ), including the following steps:

determining, in a loading operation of the vehicle, a loading curve (F_i) is determined from a plurality of measured values, the loading curve indicating a level measured with the travel measurement device ( 9 ), or another measured variable correlated with the level,

determining, in an unloading operation of the vehicle, an unloading curve (F_u) from a plurality of measured values, the unloading curve indicating the level measured with the travel measurement device ( 9 ), or another measured variable correlated with the level,

calculating, from values of the loading curve (F_i) and of the unloading curve (F_u) an averaged load-travel characteristic curve (F_m), and

storing values of the averaged load-travel characteristic curve (F_m) in a non-volatile memory ( 10 b ) of the control unit ( 10 ), and

after each start of the vehicle, and after a predefined lower traveling speed limit (v_min) that is greater than zero has been exceeded, cyclically repeating an axle load determination routine while the vehicle is moving at a vehicle speed that is greater than the lower traveling speed limit that is greater than zero, including the following steps:

continuously determining, during a first predefined time period (Δt) defined by a given predetermined quantity of time, axle load values with the averaged load-travel characteristic curve (F_m), and calculating a first arithmetic axle load average value from the axle load values determined during the first predetermined time period (Δt),

continuously determining, during a second predefined time period (Δt) defined by the given predetermined quantity of time, axle load values with the averaged load-travel characteristic curve (F_m), and calculating a second arithmetic axle load average value from the axle load values determined during the second predetermined time period (Δt), and

displaying the first arithmetic axle load average value as a current axle load value, wherein the current axle load value remains valid until overwritten by the second arithmetic axle load average value;

disregarding, in calculating the first and second arithmetic axle load average value, such axle load values that have been determined during cornering or during another driving maneuver causing lateral accelerations of the vehicle;

identifying cornering or another driving maneuver of the vehicle that causes lateral accelerations of the vehicle by continuously acquiring and evaluating a lateral acceleration signal from a lateral acceleration sensor, and

concluding that that the vehicle is cornering or making a driving maneuver causing lateral accelerations of the vehicle if the lateral acceleration signal represents an acceleration value that exceeds a predefined lateral acceleration limit value.

11. The method as claimed in claim 10 , further comprising:

restarting the axle load determination routine when the vehicle is stationary and an axle load change (ΔF_G) is identified that exceeds a predefined axle load change limit value (ΔF_G_lim).

12. The method as claimed in claim 10 , wherein the test routine for calculating the averaged load-travel characteristic curve (Fm) is initiated manually by an operator.

13. The method as claimed in claim 10 , wherein the mechanically suspended vehicle axle is one of a plurality of mechanically suspended vehicle axles of the vehicle, wherein the test routine for calculating the averaged load-travel characteristic curve (F_m) is carried out individually for each mechanically suspended vehicle axle ( 4 ) of the plurality of mechanically suspended vehicle axles ( 4 ).

14. The method as claimed in claim 10 , wherein the mechanically suspended vehicle axle is one of a plurality of mechanically suspended vehicle axles ( 4 ) equipped with a travel measurement device ( 9 ) generating a level signal, wherein the axle load determination routine for determining the axle load is carried out individually for each mechanically suspended vehicle axle ( 4 ) of the plurality of mechanically suspended vehicle axles ( 4 ).

15. The non-volatile computer memory storing a computer program that, when executed, causes the electronic control unit ( 10 ) of the level control device of the vehicle to carry out the method as claimed in claim 10 .

16. A vehicle comprising an electronically controlled level control device ( 1 ) for axle load determination on a mechanically suspended vehicle axle ( 4 ), wherein the level control device ( 1 ) is also configured for level control at a pneumatically or hydraulically suspended vehicle axle ( 2 ) of the vehicle and for axle load determination on the pneumatically or hydraulically suspended vehicle axle ( 2 ), wherein the vehicle is configured to be operated selectively or cumulatively to carry out the method as claimed in claim 10 .

Assignments (2)
CHANGE OF NAME Recorded Mar 23, 2023
From: ZF CV SYSTEMS HANNOVER GMBH
To: ZF CV SYSTEMS EUROPE BV
Reel/Frame 063069/0765 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 30, 2021
From: LUCAS, JOHANN; THIMM, ANDREAS; JERMIS, SEBASTIAN; WARNECKE, BRITTA
To: ZF CV SYSTEMS HANNOVER GMBH
Reel/Frame 057654/0915 →
Priority Claims (1)
DE 10 2019 111 187.0 · Apr 30, 2019 · national
Continuity (1)
Related Publication 20220288991A1 · Sep 15, 2022
References Cited (31)
US 5088762A · Fukuyama et al. · 1992 [cited by applicant]
US 6185439B1 · Guerrero · 2001 [cited by examiner]
US 20010013432A1 · Kawaguchi · 2001 [cited by examiner]
US 20040178005A1 · Carlstrom · 2004 [cited by examiner]
US 20090119000A1 · Baumann et al. · 2009 [cited by applicant]
US 20150204715A1 · Pita-Gil et al. · 2015 [cited by applicant]
US 20160305814A1 · Pita-Gil · 2016 [cited by applicant]
US 20200173838A1 · Nakayama · 2020 [cited by examiner]
CN 101610927A · 2009 [cited by applicant]
CN 104937384A · 2015 [cited by applicant]
CN 108025611A · 2018 [cited by applicant]
DE 10029332A1 · 2002 [cited by applicant]
DE 10053603A1 · 2002 [cited by applicant]
DE 102004010559A1 · 2005 [cited by applicant]
DE 102016004721A1 · 2017 [cited by applicant]
DE 102017009146A1 · 2018 [cited by applicant]
DE 102017011753A1 · 2019 [cited by applicant]
DE 102018132697A1 · 2020 [cited by applicant]
EP 656268B1 · 1998 [cited by examiner]
EP 1571014A2 · 2005 [cited by applicant]
EP 1571429A2 · 2005 [cited by applicant]
EP 3466754A1 · 2019 [cited by examiner]
JP H05231913A · 1993 [cited by examiner]
JP H08128884A · 1996 [cited by applicant]
JP 08207544A · 1996 [cited by examiner]
JP H08207544A · 1996 [cited by applicant]
Machine translation of JP-08207544-A (Year: 1996). [cited by examiner]
Machine translation of EP-3466754-A1 (Year: 2019). [cited by examiner]
Machine translation of JPH05231913A (Year: 1993). [cited by examiner]
European Patent Office, Rijswijk, Netherlands, International Search Report of International Application No. PCT/EP2020/060981, Mailed Jul. 24, 2020, 3 pages. [cited by applicant]
Wabco Gmbh, Company Publication: “ECAS in the Towing Vehicle,” 2nd Edition, 2007, 113 pages. [cited by applicant]