Roll Docking AGV: Fork Spacing and Load-Cell Sensing

For the fork-spacing load cells of a roll direct-docking AGV, sensing performance is decided less by sensor resolution than by friction on the fork guide surfaces. KR102171461B1 “Roll direct docking automatic guided vehicle” (applicant Cowintech Co., Ltd.; filed and prioritized 2020-05-22; granted 2020-10-29) claims a spacing-maintaining unit that holds a pair of forks at a set spacing, with a pair of X-axis displacement load cells that sense the moving pressure generated when the forks move. The forks also carry a load cell that senses clamp gripping pressure. This post calculates fork stiffness and the ratio of load-cell signal to friction noise.

Roll Docking AGV: Fork Spacing and Load-Cell Sensing — design review drawing
Fork-spacing load cell — signal vs. guide friction. Values are the assumptions in the text.

1. Problem definition — what is the load cell measuring?

The specification says the X-axis load cell senses “moving pressure, that is, pressure generated according to moving speed”. When the X-axis rod pushes the forks, the force on the load cell always includes the friction needed to move the forks. The reaction when a fork touches the roll core is a small signal riding on top. So if friction exceeds the signal, can the load cell distinguish contact?

2. Kinematic analysis — claim elements

ElementClaim 1 featureMechanical interpretation
E1Pair of forks 21 moving horizontally on body 10, liftable roll transfer unit 20Two cantilever forks
E2Clamp 30 on top of the fork, chucking the roll coreCore gripper
E3Spacing unit 40: drive 41, X-axis rod 42, X-axis displacement load cells 43Pinion-rack drive + force sensing
E4Motion sensor 211 and gripping-pressure load cell 212 on the forkGrip pressure vs. lift height
E5Traveling unit 50Moves to the supply turret

The specification describes pinion 411 meshing with one face of the X-axis rod, buffer pad 32 on the clamp body to protect the core, and tilting module 53 that follows floor flatness. Roll weight and dimensions are not stated.

3. Calculation — fork deflection and signal-to-friction ratio

Design assumptions (to be reconfirmed by field measurement): roll mass 400 kg ($P$ = 1,962 N per fork), fork overhang $L$ = 300 mm, section 60 × 40 mm, S45C (elastic modulus 205,000 MPa, yield 345 MPa).

$$\delta=\frac{P L^{3}}{3EI}=\frac{1{,}962\times 300^{3}}{3\times 205{,}000\times 320{,}000}=0.269\ \mathrm{mm}$$

$$\sigma=\frac{P L}{b h^{2}/6}=\frac{588{,}600}{16{,}000}=36.8\ \mathrm{MPa},\qquad SF_{1}=\frac{345}{36.8}=9.4$$

With an allowable clamp alignment error of 0.5 mm (assumed), the deflection margin is:

$$SF_{2}=\frac{0.5}{0.269}=1.86$$

Fork stiffness is sufficient. The problem is on the load-cell side.

When a loaded fork moves in the spacing direction, guide friction is $F_\mu=\mu P$.

Guide typeFriction coefficient (assumed)Friction force±30% variation
Sliding plate0.15294 N±88 N
LM guide (rolling)0.0119.6 N±5.9 N

With a core-contact detection threshold of 50 N (assumed), a sliding guide’s ±88 N friction variation exceeds the threshold, so contact cannot be distinguished from friction. With an LM guide the signal is 8.5 times the ±5.9 N variation. Changing the guide type, rather than upgrading the load cell, decides sensing performance.

4. Shop-notes

  • Zero the load cell in the loaded state. An unloaded zero shifts by the friction increase after the roll is loaded. Use the average during low-speed travel after loading as the baseline and judge contact reaction as a difference.
  • Machinability. Two rows of LM guides on the fork guide surface need 0.02 mm mounting-surface parallelism. Face-mill the body top plate in one setup and machine the reference-side guide shoulder at the same time.
  • Alternative mechanism — ball-screw spacing drive. A ball screw instead of pinion-rack reduces backlash and improves spacing accuracy. Not adopted because: high screw efficiency makes back-driving easy, and contact reaction leaks into the drive, blurring the load-cell path. Self-holding would require an added brake.
  • Safety. The spacing adjuster is a crush zone between the two forks. Provide an interlock that prohibits entry to the roll loading area while spacing moves.

5. Design checklist

  • Were fork strength $SF_1$ and deflection $SF_2$ checked separately?
  • Were loaded guide friction and its variation calculated?
  • Is the contact detection threshold sufficiently larger than the friction variation?
  • Is the load-cell zero referenced to the loaded state?
  • Is crush protection at the fork spacing adjuster included?

Items requiring confirmation

  • Roll mass, fork dimensions and guide type are not stated in the specification. All figures here are assumptions.
  • The wording of claim 1 and quoted specification passages should be reconfirmed against the original publication (KIPRIS).

One-line summary: Fork-spacing load cells are buried in the ±88 N friction variation of a sliding guide, so sensing performance must be secured by adopting LM guides, not a better sensor.

Source: KR102171461B1, “Roll direct docking automatic guided vehicle”, claim 1 and specification (spacing unit, buffer pad, tilting module).

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