How Does an Electrostatic Ink-Jet Printer Manipulate Charged Ink Drops?

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Electrostatic ink-jet printers manipulate charged ink drops by using deflecting electrodes to steer the drops vertically while the ink jet moves horizontally. The printer generates 30.0 µm diameter ink drops, charging them with 800,000 electrons and propelling them at 16.0 m/s. To achieve a maximum deflection of 3.0 mm for letters up to 6.0 mm tall, the necessary electric field strength between the electrodes must be calculated. Participants in the discussion express confusion about relating the electric field to the required acceleration and charge on the electrodes, with suggestions to show calculations for clarity. The conversation emphasizes the need for a solid understanding of the physics principles involved in the electrostatic manipulation of ink drops.
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1. One type of ink-jet printer, called an electrostatic ink-jet printer, forms the letters by using deflecting electrodes to steer charged ink drops up and down vertically as the ink jet sweeps horizontally across the page. The ink jet forms 30.0 (mu)m diameter drops of ink, charges them by spraying 800,000 electrons on the surface, and shoots them toward the page with a horizontal velocity of 16.0 m/s . Along the way, the drops pass through the long axis of two parallel electrodes that are 6.0 mm long, 4.0 wide, and spaced 1.0 mmapart. The distance from the center of the plates to the paper is 1.40 cm. To form the letters, which have a maximum height of 6.0 mm, the drops need to be deflected up or down a maximum of 3.0 mm. Ink, which consists of dye particles suspended in alcohol, has a density of 800 kg/m^3

QUESTION: Estimate the maximum electric field strength needed in the space between the electrodes.

What amount of charge is needed on each electrode to produce this electric field?




2. Help me get started!
I am given a velocity so I can solve for acceleration using F=EQ. That is the acceleration from the center of the electrodes to the paper. I am having trouble understanding the "format" of the electric field between the electrodes.
The E field of a plane is N/(2*Epsilon). and N=Q/AREA?
I know the E field between the electrodes must be strong enough to get the electrons to the paper. I just don't know how to relate the two. Help please. :bugeye:
 
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The charge on the plates of the capacitor is related to the voltage and capacitance by Q=CV. That's what you use for the 2nd part of the questions (about the charge on the capacitor plates).
 
Can someone please help with the first question?
 
sister007 said:
Can someone please help with the first question?

Do you recognize that you have a projectile problem (from your first semester physics class)?
 
Yes, I do, I can see that I can find acceleration and then I could find E, but its not the right E, so I am not sure how it relates. I need guidance.
 
It might be a good idea to show your attempt, including your calculations.
 
You want me to show my attempt at finding accereration?

-20^2=2(a)(.02+003), solve for a, a =8696 m/s^2,
the .003 being the middle of plate

if i was to go further and find E, I use the fact that f=eq, a=eq/m, and so e would be 4.95*10^-8
 
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