Ironing systems and methods
An ironing system includes a ram, a sensor system, and a punch nose. The ram includes a ram body and a ram nose, and the ram includes an inner surface that defines an inner chamber. The punch nose is connected to the ram nose via the sensor, and the sensor is configured to detect a force on the punch nose during an ironing process. An adaptor may be coupled to the inner surface of the ram, and the adaptor may support the sensor on the ram body.
1 . A can forming system comprising:
a ram comprising a ram body and a ram nose, wherein the ram comprises an inner surface defining an inner chamber; and
a sensor system comprising:
a sensor, wherein the sensor is configured to detect a force during a can forming process; and
an adaptor coupled to the inner surface of the ram, wherein the adaptor supports the sensor on the ram body, wherein the adaptor comprises a central aperture and a plurality of passages surrounding the central aperture, wherein the sensor is supported in the central aperture of the adaptor, and wherein each of the plurality of passages extends along a length of the adaptor.
2 . The can forming system of claim 1 , further comprising a punch supported on the ram nose, wherein the punch comprises a punch nose and a punch sleeve, wherein the punch nose is configured to engage a metal blank during processing, and wherein the punch sleeve is supported on the ram nose between the punch nose and the ram body.
3 . The can forming system of claim 2 , wherein the punch nose is coupled to the sensor.
4 . The can forming system of claim 3 , wherein a gap is defined between the punch nose and the punch sleeve.
5 . The can forming system of claim 2 , further comprising a punch sleeve retention nut, wherein the punch sleeve retention nut is coupled to an outer surface of the ram nose such that at least a portion of the punch sleeve is retained on the ram nose between the punch sleeve retention nut and the ram body.
6 . The can forming system of claim 1 , wherein the inner surface of the ram comprises a shoulder, and wherein the forming system further comprises an adaptor nut coupled to the inner surface of the ram such that a portion of the adaptor is retained between the adaptor nut and the shoulder.
7 . A can forming system comprising:
a ram comprising a ram body and a ram nose;
a punch comprising a punch nose and a punch sleeve, wherein the punch nose is configured to engage a metal blank during a can forming process;
a sensor system comprising a sensor coupled to punch nose, wherein the sensor is configured to detect a force on the punch nose during the can forming process; and
an adaptor, the ram comprises an inner surface defining an inner chamber, wherein the sensor is supported on the adaptor, and wherein the adaptor is coupled with the inner surface of the ram in the inner chamber, wherein the adaptor comprises a central aperture and a plurality of passages surrounding the central aperture, wherein the sensor is supported in the central aperture of the adaptor, and wherein each of the plurality of passages extends along a length of the adaptor.
8 . The can forming system of claim 7 , further comprising a punch sleeve retention nut coupled to an outer surface of the ram nose, wherein the punch sleeve is supported on the ram nose between the punch sleeve retention nut and the ram body.
9 . The can forming system of claim 7 , wherein the ram comprises an inner surface defining an inner chamber, wherein the sensor is supported in the inner chamber, and wherein the punch nose is threadably coupled with the sensor.
10 . The can forming system of claim 7 , wherein the sensor is indirectly connected to the ram nose.
11 . The can forming system of claim 7 , wherein the sensor is coupled to the punch nose such that a gap is defined between the punch nose and the punch sleeve.
12 . A can forming system comprising:
a ram comprising a ram body and a ram nose, wherein the ram comprises an inner surface defining an inner chamber;
a sensor system comprising a sensor; and
a punch nose connected to the inner surface of the ram on the ram nose via the sensor, wherein the sensor is configured to detect a force on the punch nose during a can forming process,
wherein the sensor system further comprises an adaptor, wherein the adaptor supports the sensor, and wherein the adaptor is coupled to the inner surface of the ram, wherein the adaptor comprises a central aperture and a plurality of passages surrounding the central aperture, wherein the sensor is supported in the central aperture of the adaptor, and wherein each of the plurality of passages extends along a length of the adaptor.
13 . The can forming system of claim 12 , wherein the inner surface of the ram comprises a shoulder, and wherein the forming system further comprises an adaptor nut coupled to the inner surface of the ram such that a portion of the adaptor is retained between the adaptor nut and the shoulder.
14 . The can forming system of claim 12 , further comprising a punch sleeve supported on the ram nose between the punch nose and the ram body, wherein the punch nose is connected to the sensor such that a gap is defined between the punch sleeve and the punch nose.
15 . The can forming system of claim 14 , further comprising a punch sleeve retention nut connected to the ram nose such that at least a portion of the punch sleeve is retained on the ram nose between the punch sleeve retention nut and the ram body.