LED Astray

LEDs are easy — available, cheap, current knowledge. Why not use them for everything “light” — from enlargers to densitometers — the entire world of darkroom photography can be upgraded from the hot light era of last century to the energy efficient 21st century. We’ve come a long way from the 50s tube technology. Semiconductors advance rapidly, continuously. It is the way of industrial application.

So why not make it yourself using some breadboarding, a bit of code, and LEDs from a seemingly infinite range of suppliers.

  • are you building something to build it and prove something — learn something?
  • are you sharpening pencils rather than working
  • can it be bought cheaper
  • do you need it? now?
  • do you know why you would use it
  • does it replace existing
  • does it introduce additional complexity — do you know

LEDs are “additive” mode sources.

Enlarger Lamp Replacement

This seems to be the main source of information. Early efforts posted to the internet go back a decade. Many are for BW multigrade paper exposure and control. This replaces the color-heads that flourished during the 80s individual darkroom rush which was driven by people printing color. What is it that you are replacing, or upgrading?

The source of light? Color? A timer, an analyzer, a closed loop system?

There are, in November 2022, two companies making full function enlarger heads. That means they see a need and have engineered an answer. Maybe you should look at Heiland’s or Intrepid’s equipment before starting your own project. Intrepid 4×5 Enlarger Kit

Densitometer Replacement

More recent, but driven by the scarcity of densitometers most of which were discarded by professional labs as they closed down between 1990 and 2005. The first use of these was in color process analysis. That need reduced throughout the 60s and 70s as Type C printing took over from Dye Transfer. Dye transfer needs declined steadily after 1975.

The densitometer was used as a quality assurance and monitoring device. This was how labs maintained large chemical lines and automated printers. The explosion of small photography studios fed this. That has all been replaced by digital, which has dominated for more than a generation of photographers. — Digital uses more AIM points and spectrophotometers than film did/does.

How did those old densitometers do what they did? A light, filters, sensor(s) — sensor like a photocell, a lightmeter — early ones as well as very sensitive on-easel analyzers used photomultipliers.

the light wasn’t complex, it was just an ordinary off-the-shelf bulb. The filters where chosen from the status sets — one for transmission — the most needed in dye transfer. Or for reflection, the one for measuring standard quality strips for printing .. Much of the magic was in mechanical engineering, with much of that seemingly to obscure the otherwise simple mechanisms in the box.

There was a whole lot of discreet components on the boards. Over time integrated circuits replaced that, so much so that power supplies were the last holdout of the complex electronics. All of that could easily be upgraded by current electronics-software systems.

Do you need a densitometer — probably not. Do you know the difference between two and three point control?

The main need of a densitometer in an assembly process is control of separations, not in the analysis of the original film. In a lab operation where anything could come over the transom, examining the ‘chrome was important — it saved us time. Also, when we had many films to match print it saved us much expense, while assuring that the set of prints seemed as though they had been shot by the same camera/film and printed at the same time. This is what profiling achieves in the digital domain.

What I mean, what I did: my first three years making dye transfers I didn’t have a densitometer. These were my prints. I relied on other controls to get my results. With my second commercial printing, I bought my first densitometer. In effect, my client paid. That was a major realization — work on the clients money. If they can’t afford it, you can’t afford it either. Don’t become one of the many “equipment poor” photographers.

Status — the filters and light source specifications for a densitometer.

  • A == sets of filters for measuring color densities of positive materials (what you see)
  • M == the set used for measuring densities of negative color materials. These are densitometric values that you don’t directly see.

shorthand for terming readings is to call them A, or M reading. Additional distinction is whether a system is “colorimetric” or “densitometric” …THIS IS IMPORTANT IN SCANNING SYSTEMS.

Agnecolor: Laminar Flow

A product from the 60’s, it was small desktop color print processor. It was made in Patterson, NJ. The founder was Sam Needleman. Christopher Nisperos was the traveling salesman who demoed the unit at stores.

The Needleman patent is US3721175A. It expired in 1990.

Agnecolor Patent drawing.

Other ways of that day for processing color materials:

Making Emulsions: Key Patents

Emulsion Making:  US 5132203

Photographic emulsions are disclosed comprised of radiation sensitive silver iodobromide grains, at least 50 percent of the total projected area of said silver iodobromide grains being accounted for by tabular grains exhibiting a mean tabularity of greater than 5, at least 10 percent of which are comprised of two opposed parallel major crystal faces, a host stratum having an iodide content of at least 4 mole percent, and laminar strata containing less than 2 mole percent iodide interposed between said host stratum and said opposed major crystal faces.The emulsions are characterized in that each of the laminar strata is comprised of a surface layer forming one of the major surfaces and having a thickness in the range of from 20 to 350 Å and a subsurface layer located immediately beneath and in contact with the surface layer containing a hexacoordination complex of a Group VIII period 4 or 5 metal and at least three cyanide ligands. InventorEric L. BellKenneth J. ReedMyra T. Olm // be sure to check the 27 ‘cited by’ items, particularly those by Kodak.

 Coating – US 2761791

THE METHOD OF SIMULTANEOUSLY APPLYING THIN COATINGS OF A PLURALITY OF COLLOIDAL MATERIALS ONTO A WEB SUPPORT IN DISTINCT LAYER RELATIONSHIP COMPRISING THE STEPS OF MAKING A SOLUTION OF EACH OF SAID COLLOIDAL MATERIALS, FORMING A COATING BEAD OF SAID SOLUTIONS IN BRIDGING RELATION BETWEEN THE SURFACE OF THE SUPPORT AND A STATIONARY COATING DEVICE SPACED TRANSVERSELY THEREFROM, SIMULTANEOUSLY FEEDING EACH OF SAID SOLUTIONS IN THE FORM OF A LAYER INTO SAID BEAD AND IN SUPERPOSED RELATION TO THE OTHER SOLUTIONS WHEREBY THE INDIVIDUAL LAYERS ARE MAINTAINED IN DISTINCT SUPERPOSED RELATION, AND CONTINUOUSLY MOVING THE SURFACE OF SAID SUPPORT ACROSS AND IN CONTACT WITH SAID BEAD SO THAT THE SURFACE OF THE SUPPORT ENGAGES ONE OF THE OUTERMOST OF THE SUPERPOSED LAYERS IN SAID BEAD AND SIMULTANEOUSLY PICKS UP ALL OF SAID LAYERS AND MOVES AWAY FROM THE BEAD WITH THE SOLUTIONS IN DISTINCT SUPERPOSED LAYERS. Inventor: Theodore A Russell 1953 // it was based upon patents held by Bell Labs. … see Ilford’s US2941898A for more.

Dopants in Films – US 5360712

A process is disclosed of preparing a radiation sensitive silver halide emulsion comprising reacting silver and halide ions in a dispersing medium in the presence of a metal hexacoordination or tetracoordination complex having at least one organic ligand containing a least one carbon-to-carbon bond, at least one carbon-to-hydrogen bond, or at least one carbon-to-nitrogen-to-hydrogen bond sequence and at least half of the metal coordination sites occupied by halide or pseudohalide ligands. The metal forming the complex is chosen from periods 4, 5 and 6 and groups 3 to 13 inclusive of the periodic table of elements. The incorporation of the transition metal ion dopant and at least one organic ligand into the cubic crystal lattice of the silver halide grains can be used to improve photographic performance. InventorMyra T. OlmWoodrow G. McDugleSherrill A. PuckettTraci Y. KuromotoRaymond S. EachusEric L. BellRobert D. Wilson 1993

note: follow the patent to: WO2013032827A1 classification: G03C7/3041 Materials with specific sensitometric characteristics, e.g. gamma, density

Color Films – US 5302499

A color photographic recording material is disclosed which contains tabular silver halide emulsion grains of specified dimensions in at least two color records to enable improved speed and sharpness. InventorJames P. MerrillLois A. BuitanoAllan F. SowinskiRichard P. Szajewski, 1992

Classifications

G03C7/3022 Materials with specific emulsion characteristics, e.g. thickness of the layers, silver content, shape of AgX grains