Claims
- 1. An applied energy monitoring arrangement for a centrifuge instrument, the instrument being operable to rotate a rotor, the instrument having an energy containment system therein, the energy containment system having a predetermined containment energy threshold E.sub.c associated therewith, the containment energy threshold being representative of the energy able to be withstood by the containment system of the instrument in the event that a failure of a rotor produces a fragment, the applied energy monitoring arrangement comprising;
- means for generating a signal representative of the net energy applied to accelerate a rotor to successively higher angular velocities; and
- means for comparing the signal representative of the net applied energy to a predetermined reference energy value E.sub.ref, the reference energy value E.sub.ref being below the containment energy threshold E.sub.c of the instrument.
- 2. The applied energy monitoring arrangement of claim 1 wherein the centrifuge instrument has a motive source, and wherein
- the net applied energy signal generating means comprises:
- means for generating a signal representative of the net power applied to the motive source to accelerate the rotor to successively higher angular velocities;
- means for measuring the time interval during which the applied power accelerates the rotor to successively higher angular velocities;
- means responsive to the signal representative of net applied power and the time interval to generate the signal representative of the net applied energy.
- 3. The applied energy monitoring arrangement of claim 2 wherein the motive source of the instrument is an electric motor responsive to an applied current at an applied voltage,
- wherein the net applied power signal generating means comprises:
- means responsive to the applied current and to the applied voltage to generate a signal representative of the electric power applied to the electric motor.
- 4. The applied energy monitoring arrangement of claim 2 wherein the instrument includes a rotatable shaft onto which the rotor may be mounted, and
- wherein the net applied power signal generating means comprises:
- means for generating a signal representative of the torque applied to the shaft; and
- a tachometer for generating a signal representative of the angular velocity of the shaft.
- 5. The applied energy monitoring arrangement of claim 4 wherein the motive source of the instrument is an electric motor responsive to an applied current and exhibiting a predetermined motor constant, and
- wherein the net applied torque signal generating means comprises:
- means responsive to signals representative of the applied motor current and to the predetermined motor constant for generating the net applied torque signal.
- 6. The applied energy monitoring arrangement of claim 4 wherein the motive source of the instrument has a shaft on which the rotor is mounted, and
- wherein the net applied torque signal generating means comprises a meter operative connected to the shaft for measuring the torque applied thereto.
- 7. The applied energy monitoring arrangement of claim 4 wherein the motive source of the instrument exhibits a predetermined torque versus angular velocity characteristic derived using a rotor having a predetermined inertia, and
- wherein the net applied torque signal generating means comprises:
- a tachometer for generating a signal representative of the angular velocity of the shaft; and
- means responsive to the angular velocity signal for generating the applied torque signal in accordance with the predetermined torque versus angular velocity characteristic.
- 8. The applied energy monitoring arrangement of claim 1 wherein the instrument comprises input means for introducing an operator-determined set velocity, and wherein
- the net applied energy signal generating means comprises:
- means for generating a signal representative of the increment of energy applied to accelerate the rotor to velocity increment defined between predetermined first and second angular velocities; and
- means for scaling the signal representative of the energy increment by a predetermined scaling factor, the scaling factor being defined by the square of the operator-determined set velocity divided by the product of the sum of the first and second angular velocities and the difference between the first and second angular velocities.
Parent Case Info
This is a division of application Ser. No. 08/283,020, filed Jul. 29, 1994.
US Referenced Citations (6)
Foreign Referenced Citations (3)
Number |
Date |
Country |
3936202 |
Jun 1990 |
DEX |
57-50744 |
Mar 1982 |
JPX |
1131653 |
Oct 1968 |
GBX |
Divisions (1)
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Number |
Date |
Country |
Parent |
283020 |
Jul 1994 |
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